This is a Validated Antibody Database (VAD) review about human LAMP-1, based on 484 published articles (read how Labome selects the articles), using LAMP-1 antibody in all methods. It is aimed to help Labome visitors find the most suited LAMP-1 antibody. Please note the number of articles fluctuates since newly identified citations are added and citations for discontinued catalog numbers are removed regularly.
LAMP-1 synonym: CD107a; LAMPA; LGP120

Santa Cruz Biotechnology
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; loading ...; fig s5f
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples at 1:200 (fig s5f). iScience (2022) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:1000; loading ...; fig e2b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunohistochemistry on mouse samples at 1:1000 (fig e2b). EMBO J (2022) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry - paraffin section; mouse; loading ...; fig 1g
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 1D4B) was used in immunohistochemistry - paraffin section on mouse samples (fig 1g). Int J Mol Sci (2022) ncbi
mouse monoclonal (H4A3)
  • western blot; mouse; 1:200; loading ...; fig s6b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on mouse samples at 1:200 (fig s6b). Mol Neurodegener (2022) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:400; loading ...
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples at 1:400. EMBO Mol Med (2021) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:200; loading ...; fig 6f
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in western blot on human samples at 1:200 (fig 6f). Cell Death Discov (2021) ncbi
mouse monoclonal
  • immunocytochemistry; human; loading ...; fig 3a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H4A3) was used in immunocytochemistry on human samples (fig 3a). elife (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 3a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H4A3) was used in immunocytochemistry on human samples (fig 3a). elife (2021) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:2000; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, Sc-19992) was used in immunohistochemistry on mouse samples at 1:2000 (fig 4a). Cells (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; loading ...; fig 4i
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on mouse samples (fig 4i). Cell Death Differ (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig 6e
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples at 1:100 (fig 6e). J Neurosci (2021) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; 1:200; loading ...; fig s16a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunocytochemistry on mouse samples at 1:200 (fig s16a). Diabetologia (2021) ncbi
mouse monoclonal (E-5)
  • western blot; mouse; 1:1000; loading ...; fig 5d
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-17768) was used in western blot on mouse samples at 1:1000 (fig 5d). Cell Death Dis (2021) ncbi
mouse monoclonal (H4A3)
  • western blot; mouse; 1:5000; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on mouse samples at 1:5000 (fig 4a). Antioxidants (Basel) (2020) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; 1:200; loading ...; fig 1b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunocytochemistry on mouse samples at 1:200 (fig 1b). elife (2020) ncbi
mouse monoclonal (E-5)
  • western blot; mouse; 1:250; loading ...; fig s1a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-17768) was used in western blot on mouse samples at 1:250 (fig s1a). Autophagy (2021) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; rhesus macaque; 1:50; loading ...; fig 7a
Santa Cruz Biotechnology LAMP-1 antibody (Santa, sc-19992) was used in immunocytochemistry on rhesus macaque samples at 1:50 (fig 7a). Aging (Albany NY) (2020) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:200; loading ...; fig 5a
Santa Cruz Biotechnology LAMP-1 antibody (Santa, SC-20011) was used in immunocytochemistry on mouse samples at 1:200 (fig 5a). elife (2020) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; human; loading ...; fig 2f
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotech, SC-19992) was used in immunocytochemistry on human samples (fig 2f). Sci Transl Med (2020) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:50; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, SC-20011) was used in immunocytochemistry on human samples at 1:50 (fig 4a). Nat Commun (2019) ncbi
mouse monoclonal (H5G11)
  • immunocytochemistry; human; loading ...; fig 1f
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-18821) was used in immunocytochemistry on human samples (fig 1f). Cell Death Dis (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:50; loading ...; fig s2
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, SC-20011) was used in immunocytochemistry on human samples at 1:50 (fig s2). J Cell Sci (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; loading ...; fig 7b
Santa Cruz Biotechnology LAMP-1 antibody (Santa, H4A3) was used in immunocytochemistry on human samples at 1:200 (fig 7b). Nat Commun (2019) ncbi
mouse monoclonal
  • immunocytochemistry; human; 1:200; loading ...; fig 7b
Santa Cruz Biotechnology LAMP-1 antibody (Santa, H4A3) was used in immunocytochemistry on human samples at 1:200 (fig 7b). Nat Commun (2019) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry - free floating section; mouse; 1:10; loading ...; fig s8c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunohistochemistry - free floating section on mouse samples at 1:10 (fig s8c). Nat Neurosci (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig 5a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on human samples at 1:100 (fig 5a). Nat Commun (2019) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry - frozen section; mouse; loading ...; fig 2b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 1D4B) was used in immunohistochemistry - frozen section on mouse samples (fig 2b). MBio (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 2a
  • western blot; human; loading ...; fig 2c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 2a) and in western blot on human samples (fig 2c). Front Endocrinol (Lausanne) (2019) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 2f
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on human samples (fig 2f). Oncogene (2019) ncbi
mouse monoclonal (H5G11)
  • flow cytometry; human; loading ...; fig s2c
  • immunocytochemistry; human; loading ...; fig 2a, 3c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-18821) was used in flow cytometry on human samples (fig s2c) and in immunocytochemistry on human samples (fig 2a, 3c). Proc Natl Acad Sci U S A (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H4A3) was used in flow cytometry on human samples (fig 4a). J Immunol (2018) ncbi
mouse monoclonal
  • flow cytometry; human; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H4A3) was used in flow cytometry on human samples (fig 4a). J Immunol (2018) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 5a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in western blot on human samples (fig 5a). Autophagy (2018) ncbi
mouse monoclonal (E-5)
  • immunohistochemistry; mouse; 1:400; loading ...; fig s1
Santa Cruz Biotechnology LAMP-1 antibody (santa, sc-17768) was used in immunohistochemistry on mouse samples at 1:400 (fig s1). J Clin Invest (2018) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; rat; 1:400; loading ...; fig s1
Santa Cruz Biotechnology LAMP-1 antibody (Santa, sc-19992) was used in immunohistochemistry on rat samples at 1:400 (fig s1). J Clin Invest (2018) ncbi
mouse monoclonal (E-5)
  • western blot; mouse; 1:200; loading ...; fig 9d
Santa Cruz Biotechnology LAMP-1 antibody (Santa, sc-17768) was used in western blot on mouse samples at 1:200 (fig 9d). Cancer Res (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; loading ...; fig s2c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on mouse samples (fig s2c). Neuron (2018) ncbi
mouse monoclonal (H5G11)
  • immunocytochemistry; human; loading ...; fig 2e
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, SC-18821) was used in immunocytochemistry on human samples (fig 2e). Cell Mol Life Sci (2018) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; loading ...; fig 3e
Santa Cruz Biotechnology LAMP-1 antibody (Santa, sc-19992) was used in immunocytochemistry on mouse samples (fig 3e). J Immunol (2018) ncbi
mouse monoclonal (E-5)
  • immunocytochemistry; human; loading ...; fig 6f
  • western blot; human; 1:1000; loading ...; fig 6b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-17768) was used in immunocytochemistry on human samples (fig 6f) and in western blot on human samples at 1:1000 (fig 6b). Mol Ther Nucleic Acids (2017) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; loading ...; fig 1g
Santa Cruz Biotechnology LAMP-1 antibody (SantaCruz, sc-19992) was used in immunocytochemistry on mouse samples (fig 1g). J Clin Invest (2017) ncbi
mouse monoclonal (E-5)
  • western blot; human; loading ...; fig 5g
In order to investigate the mechanism of the inductive effect of MLKL in necroptosis, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-17768) was used in western blot on human samples (fig 5g). Proc Natl Acad Sci U S A (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1f
Santa Cruz Biotechnology LAMP-1 antibody (SantaCruz, SC-20011) was used in immunocytochemistry on human samples (fig 1f). FEBS Lett (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 1c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on human samples (fig 1c). J Cell Biol (2017) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; human; 1:50; fig 3g
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc19992) was used in immunocytochemistry on human samples at 1:50 (fig 3g). Nat Commun (2017) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:400; loading ...; fig 1c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 1D4B) was used in immunohistochemistry on mouse samples at 1:400 (fig 1c). J Clin Invest (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig 4a
In order to study the antigen presentation by HLA-DP84Gly through the class I antigen processing pathway, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on human samples at 1:100 (fig 4a). Nat Commun (2017) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry - free floating section; mouse; 1:1000; loading ...; fig s4
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunohistochemistry - free floating section on mouse samples at 1:1000 (fig s4). PLoS ONE (2017) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; human; loading ...; fig 3b
In order to explore the regulatory mechanisms and consequences of tubule fission failure, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, 1D4B) was used in immunocytochemistry on human samples (fig 3b). J Cell Biol (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig s3a
In order to explore the regulatory mechanisms and consequences of tubule fission failure, Santa Cruz Biotechnology LAMP-1 antibody (Santa cruz, H4A3) was used in immunocytochemistry on human samples (fig s3a). J Cell Biol (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:1000; loading ...; fig 3c
In order to identify the protein ATM as a target for senescence alleviation through chemical screen, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on human samples at 1:1000 (fig 3c). Nat Chem Biol (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1b
  • immunocytochemistry; mouse
In order to investigate how LC3-associated phagocytosis targets Legionella dumoffii to limit bacterial infection, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 1b) and in immunocytochemistry on mouse samples . Sci Rep (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig 3B
In order to identify cellular processes that regulate HIF1alpha, Santa Cruz Biotechnology LAMP-1 antibody (Santa cruz, SC-20011) was used in immunocytochemistry on human samples at 1:100 (fig 3B). elife (2017) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; 1:500; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc19992) was used in immunocytochemistry on mouse samples at 1:500 (fig 4a). Nat Commun (2017) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:50; loading ...; fig 3a
In order to show cadmium-induced neurotoxicity occurs via inhibiting autophagosome-lysosome fusion and impairs lysosomal function, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunohistochemistry on mouse samples at 1:50 (fig 3a). Sci Rep (2017) ncbi
mouse monoclonal (E-5)
  • immunohistochemistry; mouse; loading ...; fig s1b
Santa Cruz Biotechnology LAMP-1 antibody (Santacruz, sc-17768) was used in immunohistochemistry on mouse samples (fig s1b). PLoS Pathog (2017) ncbi
mouse monoclonal (H5G11)
  • immunocytochemistry; human; fig e6a
In order to show the role of Pex3 and Pex14 in generating human peroxisomes, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, H5G11) was used in immunocytochemistry on human samples (fig e6a). Nature (2017) ncbi
mouse monoclonal (E-5)
  • western blot; mouse; loading ...; fig 6a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, E-5) was used in western blot on mouse samples (fig 6a). PLoS Pathog (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 4a1
Santa Cruz Biotechnology LAMP-1 antibody (Santa-Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 4a1). Toxins (Basel) (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1d
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 1d). PLoS ONE (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig 1h
In order to demonstrate a crosstalk between stromal fibroblasts and epithelial cells under starvation, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples at 1:100 (fig 1h). Nat Commun (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:100
  • western blot; mouse; 1:200; loading ...; fig s5a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, SC20011) was used in immunocytochemistry on mouse samples at 1:100 and in western blot on mouse samples at 1:200 (fig s5a). PLoS Genet (2017) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; 1:50
In order to describe the role of Anks1a in COPII-mediated EphA2 export from the endoplasmic reticulum, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 1D4B) was used in western blot on mouse samples at 1:50. Nat Commun (2016) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; loading ...; fig 4c
In order to investigate the cellular uptake of gold nanorods, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunohistochemistry on human samples (fig 4c). Bioconjug Chem (2016) ncbi
mouse monoclonal (E-5)
  • immunocytochemistry; mouse; loading ...; fig 7e
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-17768) was used in immunocytochemistry on mouse samples (fig 7e). Neuropharmacology (2016) ncbi
mouse monoclonal (H5G11)
  • western blot; human; loading ...; fig 7e
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-18821) was used in western blot on human samples (fig 7e). EMBO Mol Med (2016) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:2000; loading ...; fig 5d
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 20011) was used in western blot on human samples at 1:2000 (fig 5d). Autophagy (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 6b
In order to elucidate the link among adenosine monophosphate-activated protein kinase, autophagy and hepatitis B virus production, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 6b). Autophagy (2016) ncbi
mouse monoclonal (H4A3)
  • western blot; brewer's yeast; 1:1000; fig s4
Santa Cruz Biotechnology LAMP-1 antibody (santa Cruz, sc-20011) was used in western blot on brewer's yeast samples at 1:1000 (fig s4). Sci Rep (2016) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; loading ...; fig s2c
In order to characterize age-related myelin fragmentation, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunohistochemistry on mouse samples (fig s2c). Nat Neurosci (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse
  • immunocytochemistry; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on mouse samples and in immunocytochemistry on human samples . PLoS ONE (2016) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; 1:100; loading ...; fig 4a
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunohistochemistry on human samples at 1:100 (fig 4a). J Immunol (2016) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; fig 3
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in western blot on mouse samples (fig 3). Autophagy (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; fig 4
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 20011) was used in immunocytochemistry on human samples at 1:100 (fig 4). Autophagy (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; fig 3
  • western blot; human; 1:1000; fig 2
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples at 1:200 (fig 3) and in western blot on human samples at 1:1000 (fig 2). elife (2016) ncbi
mouse monoclonal (E-5)
  • immunocytochemistry; human; loading ...; fig 4e
In order to research the role of C9orf72 in macrophage and microglial function, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-17768) was used in immunocytochemistry on human samples (fig 4e). Science (2016) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; loading ...; fig 3c
In order to research the role of C9orf72 in macrophage and microglial function, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-19992) was used in immunocytochemistry on mouse samples (fig 3c). Science (2016) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:200; tbl 2
In order to characterize autophagic and lysosomal defects in human tauopathies from post-mortem brain from patients with familial Alzheimer disease, progressive supranuclear palsy, and coricobasal degeneration, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on human samples at 1:200 (tbl 2). Acta Neuropathol Commun (2016) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; fig 3
In order to characterize induction of novel autophagic clusters in sensory neurons by interferon and herpes simplex virus signaling, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 1D4B) was used in immunocytochemistry on mouse samples (fig 3). J Virol (2016) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; loading ...; fig s5b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 19992) was used in western blot on mouse samples (fig s5b). Sci Rep (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 1
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 1). PLoS ONE (2016) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; human
In order to study the importance of basal autophagy in the maintenance of the stem-cell quiescent state, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-19992) was used in immunohistochemistry on human samples . Nature (2016) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; fig 4
In order to investigate a mechanism of late endosomal maturation, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-19992) was used in immunocytochemistry on mouse samples (fig 4). Mol Biol Cell (2016) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; fig 1b
In order to examine the relationship between NEDD4 and IFITM3, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-19992) was used in immunocytochemistry on mouse samples (fig 1b). PLoS Pathog (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on human samples . Cell Mol Life Sci (2016) ncbi
mouse monoclonal (H5G11)
  • immunocytochemistry; human; fig s5
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc18821) was used in immunocytochemistry on human samples (fig s5). Mol Biol Cell (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 3
  • western blot; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in immunocytochemistry on human samples (fig 3) and in western blot on human samples . Nat Immunol (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s4b
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on human samples (fig s4b). EMBO J (2015) ncbi
mouse monoclonal (E-5)
  • immunohistochemistry; rat; 1:100; fig 4
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc17768) was used in immunohistochemistry on rat samples at 1:100 (fig 4). Hum Mol Genet (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; fig 6
In order to investigate how PINK1 recruits Parkin, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H4A3) was used in immunocytochemistry on human samples at 1:200 (fig 6). J Cell Biol (2015) ncbi
mouse monoclonal (H5G11)
  • western blot; guinea pig; fig 5
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H5G11) was used in western blot on guinea pig samples (fig 5). Methods Mol Biol (2015) ncbi
mouse monoclonal (H4A3)
  • western blot; human; fig 3
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-20011) was used in western blot on human samples (fig 3). Cell Oncol (Dordr) (2015) ncbi
mouse monoclonal (H5G11)
  • immunocytochemistry; human
In order to assess the intracellular distribution of the wild type and mutant carboxyl ester lipase proteins in cellular models, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-18821) was used in immunocytochemistry on human samples . J Biol Chem (2014) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; rat
In order to examine the function of R1N1 in regards to Listeria monocytogenes infection, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, SC-19992) was used in immunocytochemistry on rat samples . Traffic (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; fission yeast; fig 2
In order to study the mechanisms that regulate autophagy, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-20011) was used in immunocytochemistry on fission yeast samples (fig 2). Autophagy (2014) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; 1:100
In order to describe the post-mortem neuropathological characteristics of five EHEC patients, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, Sc-20011) was used in immunohistochemistry on human samples at 1:100. Brain Pathol (2015) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; loading ...; fig 6c
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, 1D4B) was used in immunohistochemistry on mouse samples (fig 6c). PLoS ONE (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 3
In order to investigate the structures utilized by Coxsackievirus A9 for internalization and uncoating, Santa Cruz Biotechnology LAMP-1 antibody (Santa, sc-20011) was used in immunocytochemistry on human samples (fig 3). J Virol (2014) ncbi
mouse monoclonal (H5G11)
  • immunocytochemistry; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc18821) was used in immunocytochemistry on human samples . Mol Biol Cell (2013) ncbi
mouse monoclonal (E-5)
  • western blot; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, sc-17768) was used in western blot on human samples . Cell Cycle (2013) ncbi
mouse monoclonal (E-5)
  • western blot; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotech, sc-17768) was used in western blot on human samples . Cell Cycle (2013) ncbi
mouse monoclonal (E-5)
  • immunocytochemistry; human
  • western blot; human
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz, SC-17768) was used in immunocytochemistry on human samples and in western blot on human samples . Cell Cycle (2012) ncbi
mouse monoclonal (E-5)
  • immunocytochemistry; mouse; 1:250
Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, sc-17768) was used in immunocytochemistry on mouse samples at 1:250. J Comp Neurol (2009) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human
In order to study the regulation of Niemann-Pick C1 gene in human fibroblasts, Santa Cruz Biotechnology LAMP-1 antibody (Santa Cruz Biotechnology, H4A3) was used in immunocytochemistry on human samples . J Lipid Res (2008) ncbi
Abcam
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:500; loading ...; fig 1b
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples at 1:500 (fig 1b). J Biol Chem (2022) ncbi
domestic rabbit polyclonal
  • western blot; human; fig 4i
Abcam LAMP-1 antibody (abcam, ab24170) was used in western blot on human samples (fig 4i). Int J Mol Sci (2022) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; loading ...; fig 5a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in western blot on mouse samples (fig 5a). Sci Adv (2022) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s7d
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples (fig s7d). iScience (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; loading ...; fig 13e
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on mouse samples (fig 13e). Mol Metab (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; 1:1000; loading ...; fig 2j
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on mouse samples at 1:1000 (fig 2j). Mol Ther Methods Clin Dev (2021) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:100; loading ...; fig 3
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples at 1:100 (fig 3). Antioxidants (Basel) (2021) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:500; loading ...; fig 5d
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry on mouse samples at 1:500 (fig 5d). Proc Natl Acad Sci U S A (2021) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:500; fig 6g
  • western blot; mouse; 1:500; loading ...; fig 6c
Abcam LAMP-1 antibody (abcam, ab25245) was used in immunohistochemistry on mouse samples at 1:500 (fig 6g) and in western blot on mouse samples at 1:500 (fig 6c). J Neuroinflammation (2021) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:200; loading ...; fig 3h
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry on mouse samples at 1:200 (fig 3h). Mol Neurodegener (2021) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; 1:300; loading ...
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on mouse samples at 1:300. Sci Adv (2021) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; human; loading ...; fig 1d
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on human samples (fig 1d). Nat Commun (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; zebrafish ; 1:1000; loading ...; fig s2a
Abcam LAMP-1 antibody (Abcam, ab62562) was used in immunohistochemistry on zebrafish samples at 1:1000 (fig s2a). Mol Biol Cell (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; 1:1000; loading ...; fig 6d
  • western blot; mouse; 1:20; loading ...; fig 6c
Abcam LAMP-1 antibody (Abcam, Ab24170) was used in immunohistochemistry on mouse samples at 1:1000 (fig 6d) and in western blot on mouse samples at 1:20 (fig 6c). Cell Death Dis (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 5a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:1000 (fig 5a). Redox Biol (2021) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:1000; loading ...; fig 3b
Abcam LAMP-1 antibody (Abcam, ab25630) was used in western blot on human samples at 1:1000 (fig 3b). Int J Mol Sci (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 8e
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:1000 (fig 8e). Aging Cell (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - free floating section; rat; 1:500; loading ...; fig 3a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry - free floating section on rat samples at 1:500 (fig 3a). Neurobiol Dis (2021) ncbi
domestic rabbit polyclonal
  • western blot; rat; loading ...; fig 1a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on rat samples (fig 1a). Front Cell Dev Biol (2020) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:200; loading ...
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples at 1:200. Commun Biol (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:2000; loading ...; fig 1d
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry - paraffin section on mouse samples at 1:2000 (fig 1d). iScience (2021) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 1a
  • immunocytochemistry; human; 1:200; loading ...; fig 3c
  • western blot; human; 1:1000; loading ...; fig 3a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:1000 (fig 1a), in immunocytochemistry on human samples at 1:200 (fig 3c) and in western blot on human samples at 1:1000 (fig 3a). Cell Death Dis (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; 1:500; loading ...; fig 8a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on mouse samples at 1:500 (fig 8a). Nat Commun (2021) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; 1:100; loading ...; fig 6a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on mouse samples at 1:100 (fig 6a). J Neurochem (2021) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; human; 1:100
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry on human samples at 1:100. elife (2020) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:1000; fig s3-4b
Abcam LAMP-1 antibody (Abcam, ab25630) was used in western blot on human samples at 1:1000 (fig s3-4b). elife (2020) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig s14d
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:1000 (fig s14d). Nat Commun (2020) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry - frozen section; mouse; 1:500; loading ...; fig 6h
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry - frozen section on mouse samples at 1:500 (fig 6h). Acta Neuropathol (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; human; 1:200; loading ...; fig 1d
  • western blot; mouse; 1:1000; loading ...; fig 3a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on human samples at 1:200 (fig 1d) and in western blot on mouse samples at 1:1000 (fig 3a). Aging (Albany NY) (2020) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; 1:2000; loading ...; fig 7a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry on mouse samples at 1:2000 (fig 7a). J Neurosci (2020) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:1000; loading ...; fig 8a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:1000 (fig 8a). J Neuroinflammation (2020) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:20; loading ...; fig 4b
Abcam LAMP-1 antibody (Abcam, Ab25630) was used in immunocytochemistry on human samples at 1:20 (fig 4b). Sci Adv (2019) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; human; loading ...; fig 2d
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on human samples (fig 2d). Cell Rep (2019) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - free floating section; mouse; loading ...; fig s1g
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry - free floating section on mouse samples (fig s1g). Science (2020) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; fruit fly ; 1:500; loading ...; fig 4b
Abcam LAMP-1 antibody (Abcam, ab30687) was used in immunohistochemistry - frozen section on fruit fly samples at 1:500 (fig 4b). FEBS Open Bio (2020) ncbi
domestic rabbit monoclonal
  • immunocytochemistry; human; 1:100; loading ...; fig s4e
Abcam LAMP-1 antibody (Abcam, ab108597) was used in immunocytochemistry on human samples at 1:100 (fig s4e). Sci Adv (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:100; loading ...; fig 5d
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples at 1:100 (fig 5d). elife (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig e1a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples (fig e1a). Nature (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig e3c
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples (fig e3c). Nature (2019) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:500; loading ...; fig 5b
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:500 (fig 5b). elife (2019) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; loading ...; fig 3b
  • western blot; mouse; loading ...; fig 4a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on mouse samples (fig 3b) and in western blot on mouse samples (fig 4a). Autophagy (2019) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse; loading ...; fig 3a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on mouse samples (fig 3a). Cell Rep (2019) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:1000; loading ...; fig 3s1a
Abcam LAMP-1 antibody (Abcam, ab25630) was used in western blot on human samples at 1:1000 (fig 3s1a). elife (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig 3g
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples (fig 3g). Science (2018) ncbi
domestic rabbit polyclonal
  • western blot; mouse; 1:800; loading ...; fig 2b
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples at 1:800 (fig 2b). Cell Death Dis (2018) ncbi
mouse monoclonal (H4A3)
  • western blot; human; fig s3e
Abcam LAMP-1 antibody (Abcam, ab25630) was used in western blot on human samples (fig s3e). Cell Death Differ (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; loading ...; fig 1g
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples (fig 1g). Nat Commun (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - free floating section; mouse; 1:200; loading ...; fig 2c
Abcam LAMP-1 antibody (Abcam, AB24170) was used in immunohistochemistry - free floating section on mouse samples at 1:200 (fig 2c). Nat Med (2018) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry - frozen section; mouse; 1:200; loading ...; fig 6a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry - frozen section on mouse samples at 1:200 (fig 6a). Hum Mol Genet (2018) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; mouse; loading ...; fig 3
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunohistochemistry on mouse samples (fig 3). Hum Genet (2018) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig 3g
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples (fig 3g). Cell Stem Cell (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig s2e
Abcam LAMP-1 antibody (Abcam, 25630) was used in immunocytochemistry on human samples (fig s2e). Cell Host Microbe (2018) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; rat; loading ...; fig 5d
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunohistochemistry on rat samples (fig 5d). Front Mol Neurosci (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; African green monkey; fig 3b
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on African green monkey samples (fig 3b). J Biol Chem (2018) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:200; loading ...; fig s5a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples at 1:200 (fig s5a). Science (2018) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; loading ...; fig 5a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples (fig 5a). J Cell Biol (2018) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; human; 1:1000; fig 8a
Abcam LAMP-1 antibody (Abcam, 1D4B) was used in immunohistochemistry on human samples at 1:1000 (fig 8a). Nat Commun (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; mouse; 1:200; loading ...; fig 4
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry - paraffin section on mouse samples at 1:200 (fig 4). Cell Mol Gastroenterol Hepatol (2018) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; 1:1000; fig 3e
Abcam LAMP-1 antibody (Abcam, ab25245) was used in western blot on mouse samples at 1:1000 (fig 3e). Cell Immunol (2018) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; rat; 1:200; loading ...; fig 1c
  • western blot; rat; 1:1000; loading ...; fig 5c
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on rat samples at 1:200 (fig 1c) and in western blot on rat samples at 1:1000 (fig 5c). Stroke (2018) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; loading ...; fig 5a
Abcam LAMP-1 antibody (Abcam, Ab24170) was used in western blot on human samples at 1:1000 (fig 5a). Am J Pathol (2018) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; loading ...; fig 5c
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples (fig 5c). EMBO J (2018) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; fig 1b
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunohistochemistry on human samples (fig 1b). Biol Open (2017) ncbi
domestic rabbit polyclonal
  • western blot; mouse; loading ...; fig 4a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples (fig 4a). J Clin Invest (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; loading ...; fig 4m
In order to investigate Rab7 and Arl8b crosstalk, Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples (fig 4m). J Cell Biol (2017) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; rat; 1:100; loading ...; tbl 1
In order to examine if heat shock protein 25 induces astroglial apoptosis or clasmatodendrosis in status epilepticus-induced rat hippocampi, Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on rat samples at 1:100 (tbl 1). Front Cell Neurosci (2017) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; mouse; 1:100; loading ...; fig 3a
  • western blot; mouse; 1:1000; loading ...; fig 6a
In order to show cadmium-induced neurotoxicity occurs via inhibiting autophagosome-lysosome fusion and impairs lysosomal function, Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry on mouse samples at 1:100 (fig 3a) and in western blot on mouse samples at 1:1000 (fig 6a). Sci Rep (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; loading ...; fig 4a
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples at 1:200 (fig 4a). Cell Death Dis (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; fruit fly ; loading ...; fig 2c
Abcam LAMP-1 antibody (Abcam, ab25630) was used in western blot on fruit fly samples (fig 2c). PLoS ONE (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; African green monkey; 1:600; loading ...; fig s1a
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on African green monkey samples at 1:600 (fig s1a). J Cell Sci (2017) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; loading ...; fig s1c
Abcam LAMP-1 antibody (Abcam, ab25245) was used in western blot on mouse samples (fig s1c). Oncotarget (2017) ncbi
domestic rabbit polyclonal
  • western blot; mouse; fig 8
In order to study the role of CD146 in the formation and retention of macrophage foam cells, Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on mouse samples (fig 8). Cell Res (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; rat; fig 1b
In order to measure degranulation of rat cytotoxic cells., Abcam LAMP-1 antibody (AbCam, H4A3) was used in flow cytometry on rat samples (fig 1b). Front Immunol (2016) ncbi
rat monoclonal (1D4B)
  • immunohistochemistry; mouse; loading ...; fig 7a
In order to investigate how FYCO1 contributes to the integrity of the chromatoid body, Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunohistochemistry on mouse samples (fig 7a). Autophagy (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:200; fig s4
Abcam LAMP-1 antibody (Abcam, Ab24170) was used in immunocytochemistry on human samples at 1:200 (fig s4). Sci Rep (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 9b
In order to research the interaction of cellular protein TRAPPC6A with influenza A virus M2 protein, Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples (fig 9b). J Virol (2017) ncbi
monoclonal
  • western blot; rat; loading ...
Abcam LAMP-1 antibody (Abcam, ab13523) was used in western blot on rat samples . Oncotarget (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry; fruit fly ; 1:500; fig 5
Abcam LAMP-1 antibody (abcam, ab30687) was used in immunohistochemistry on fruit fly samples at 1:500 (fig 5). elife (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; fig 2
In order to study the involvement of the host protein ORP1L and interactions between the endoplasmic reticulum and the Coxiella burnetii parasitophorous vacuole, Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples (fig 2). Cell Microbiol (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:500; fig 1
In order to study a phosphoinositide-based mechanism that Arf6 uses to control retromer traffic and intracellular cholesterol distribution, Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on mouse samples at 1:500 (fig 1). Nat Commun (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - paraffin section; rat; 1:100; loading ...; fig 1d
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry - paraffin section on rat samples at 1:100 (fig 1d). Front Cell Neurosci (2016) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; mouse
  • immunocytochemistry; human
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on mouse samples and in immunocytochemistry on human samples . PLoS ONE (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; fig 5
Abcam LAMP-1 antibody (abcam, 24170) was used in immunocytochemistry on mouse samples (fig 5). Protein Cell (2016) ncbi
domestic rabbit polyclonal
  • western blot; rat; fig 10
  • western blot; mouse; fig 8
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on rat samples (fig 10) and in western blot on mouse samples (fig 8). Autophagy (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:750; fig 5
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples at 1:750 (fig 5). Mol Brain (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:500; fig 3
Abcam LAMP-1 antibody (abcam, ab25630) was used in immunocytochemistry on human samples at 1:500 (fig 3). PLoS Pathog (2016) ncbi
domestic rabbit polyclonal
  • western blot; human; fig s2
In order to study disruption of ATG9A trafficking and autophagosome closure by excess sphinogomyelin, Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on human samples (fig s2). Autophagy (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1 ug/ml; fig 10
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples at 1 ug/ml (fig 10). Part Fibre Toxicol (2016) ncbi
rat monoclonal (1D4B)
  • immunocytochemistry; human; 1:300; fig 1
Abcam LAMP-1 antibody (Abcam, ab25245) was used in immunocytochemistry on human samples at 1:300 (fig 1). Front Cell Infect Microbiol (2016) ncbi
domestic rabbit polyclonal
  • western blot; human; 1:1000; fig 2s1
Abcam LAMP-1 antibody (Abcam, ab24170) was used in western blot on human samples at 1:1000 (fig 2s1). elife (2016) ncbi
rat monoclonal (1D4B)
  • western blot; mouse; 1:2000; loading ...; fig 7a
Abcam LAMP-1 antibody (Abcam, ab25245) was used in western blot on mouse samples at 1:2000 (fig 7a). Autophagy (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; loading ...; fig 4
In order to research the involvement of miRNA in cholesterol homeostasis, Abcam LAMP-1 antibody (Abcam, 24170) was used in immunocytochemistry on human samples (fig 4). Arterioscler Thromb Vasc Biol (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 10 ug/ml; fig 3
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples at 10 ug/ml (fig 3). Nat Commun (2016) ncbi
mouse monoclonal (H4A3)
  • western blot; human; fig 4f
Abcam LAMP-1 antibody (Abcam, ab25630) was used in western blot on human samples (fig 4f). Oncotarget (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; fruit fly ; 1:500; fig 6
In order to analyze regulation of V-ATPase and the lysosomal-autophagic pathway by Drosophila Mitf, Abcam LAMP-1 antibody (Abcam, ab30687) was used in immunocytochemistry on fruit fly samples at 1:500 (fig 6). Autophagy (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:1000; fig 2c
  • immunocytochemistry; human; 1:1000; fig 2a
  • western blot; human; 1:1000; fig 2s2g
In order to survey mTORC1 activity reguled by control of TSC2-Rheb signaling by arginine, Abcam LAMP-1 antibody (Abcam, H4A3) was used in immunocytochemistry on mouse samples at 1:1000 (fig 2c), in immunocytochemistry on human samples at 1:1000 (fig 2a) and in western blot on human samples at 1:1000 (fig 2s2g). elife (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:20; loading ...; fig 7d
In order to demonstrate that receptor tyrosine kinase-like orphan receptor 1 is a scaffold for cavin-1 and caveolin-1, Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on human samples at 1:20 (fig 7d). Nat Commun (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 7
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples (fig 7). J Immunol (2016) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; mouse; 1:100; fig 3
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 3). FASEB J (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; African green monkey; 1:200; loading ...; fig 5b
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on African green monkey samples at 1:200 (fig 5b). Nat Commun (2015) ncbi
rat monoclonal (1D4B)
  • western blot; human; 1:5000; loading ...; fig 3b
Abcam LAMP-1 antibody (Abcam, ab25245) was used in western blot on human samples at 1:5000 (fig 3b). PLoS ONE (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; fig s10
In order to determine the role of PICALM in Abeta transcytosis across the blood brain barrier, Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples at 1:200 (fig s10). Nat Neurosci (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:1000; fig 2
Abcam LAMP-1 antibody (Abcam, H4A3) was used in immunocytochemistry on human samples at 1:1000 (fig 2). Nat Commun (2015) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:300
In order to identify substrates of human PPT1 using neuronal cells, Abcam LAMP-1 antibody (Abcam plc, ab25630) was used in western blot on human samples at 1:300. J Proteomics (2015) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; rat; 1:100; fig 5
Abcam LAMP-1 antibody (Abcam, ab24170) was used in immunocytochemistry on rat samples at 1:100 (fig 5). Mol Neurobiol (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples . Methods Mol Biol (2015) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry - frozen section; mouse; fig 5f
In order to study the effect of bisecting N-acetylglucosamine on beta-site amyloid precursor protein cleaving enzyme-1 (BACE1) activity, Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunohistochemistry - frozen section on mouse samples (fig 5f). EMBO Mol Med (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 1
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples (fig 1). Nature (2015) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; 1:200; loading ...; fig 4a
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunohistochemistry on human samples at 1:200 (fig 4a). Stem Cells (2015) ncbi
monoclonal
  • immunocytochemistry; human
  • western blot; human
In order to investigate the intracellular trafficking of an NF-kappaB-cleaving toxin from Photobacterium damselae subsp. piscicida, Abcam LAMP-1 antibody (Abcam, ab13523) was used in immunocytochemistry on human samples and in western blot on human samples . Infect Immun (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; fig 7
Abcam LAMP-1 antibody (Abcam, Ab25630) was used in immunocytochemistry on human samples at 1:100 (fig 7). PLoS ONE (2014) ncbi
monoclonal
  • immunocytochemistry; African green monkey; 1:50; loading ...; fig 1c
Abcam LAMP-1 antibody (Abcam, ab13523) was used in immunocytochemistry on African green monkey samples at 1:50 (fig 1c). Nat Neurosci (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human
Abcam LAMP-1 antibody (Abcam, ab25630) was used in immunocytochemistry on human samples . J Cell Sci (2012) ncbi
BioLegend
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2b
BioLegend LAMP-1 antibody (BioLegend, 328608) was used in flow cytometry on human samples (fig 2b). Sci Adv (2022) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig s5e, 5e
BioLegend LAMP-1 antibody (BioLegend, 328608) was used in flow cytometry on human samples (fig s5e, 5e). Sci Adv (2022) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:500; fig 3a
BioLegend LAMP-1 antibody (BioLegend, 328609) was used in immunocytochemistry on human samples at 1:500 (fig 3a). Invest Ophthalmol Vis Sci (2021) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:100; fig 4i
BioLegend LAMP-1 antibody (Biolegend, 328634) was used in flow cytometry on human samples at 1:100 (fig 4i). Nat Med (2021) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 1e
BioLegend LAMP-1 antibody (Biolegend, 328625) was used in flow cytometry on human samples (fig 1e). Cell Host Microbe (2021) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 7e
BioLegend LAMP-1 antibody (Biolegend, 328634) was used in flow cytometry on human samples (fig 7e). Am J Respir Crit Care Med (2021) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:200; loading ...; fig 5d
BioLegend LAMP-1 antibody (Biolegend, 328606) was used in flow cytometry on human samples at 1:200 (fig 5d). elife (2020) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; mouse; 1:200; loading ...; fig s2a
BioLegend LAMP-1 antibody (BioLegend, H4A3) was used in flow cytometry on mouse samples at 1:200 (fig s2a). J Exp Med (2020) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 6d
BioLegend LAMP-1 antibody (BioLegend, H4A3) was used in flow cytometry on human samples (fig 6d). Nature (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 3f
BioLegend LAMP-1 antibody (Biolegend, 328620) was used in flow cytometry on human samples (fig 3f). elife (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; mouse; loading ...; fig 5f
BioLegend LAMP-1 antibody (Biolegend, 328620) was used in flow cytometry on mouse samples (fig 5f). J Immunother Cancer (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 3d
BioLegend LAMP-1 antibody (BioLegend, 328630) was used in flow cytometry on human samples (fig 3d). J Exp Med (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 4d
BioLegend LAMP-1 antibody (Biolegend, H4A3) was used in flow cytometry on human samples (fig 4d). Cell Stem Cell (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 4c
BioLegend LAMP-1 antibody (BioLegend, 328624) was used in flow cytometry on human samples (fig 4c). J Clin Invest (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 4a
BioLegend LAMP-1 antibody (Biolegend, 328640) was used in flow cytometry on human samples (fig 4a). Cell (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; pigs ; fig 3e
BioLegend LAMP-1 antibody (BioLegend, 328602) was used in immunocytochemistry on pigs samples (fig 3e). Biochim Biophys Acta Mol Cell Biol Lipids (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 6a
In order to study the cytolytic effector capacity of HIV-specific CD8+ T cells, BioLegend LAMP-1 antibody (Biolegend, H4A3) was used in flow cytometry on human samples (fig 6a). PLoS Pathog (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 1
In order to assess arming of MAIT cell cytolytic antimicrobial activity and induction by IL-7 and faulty in HIV-1 infection, BioLegend LAMP-1 antibody (Biolegend, H4A3) was used in flow cytometry on human samples (fig 1). PLoS Pathog (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BioLegend LAMP-1 antibody (Biolegend, Clone H4A3) was used in flow cytometry on human samples . Int J Infect Dis (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BioLegend LAMP-1 antibody (Biolegend, Clone H4A3) was used in flow cytometry on human samples . Int J Infect Dis (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 4
BioLegend LAMP-1 antibody (Biolegend, H4A3) was used in flow cytometry on human samples (fig 4). J Immunol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 4
BioLegend LAMP-1 antibody (BioLegend, H4A3) was used in flow cytometry on human samples (fig 4). J Virol (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:100; fig 5
In order to characterize the PmpG-1-vault vaccine-induced immune response, BioLegend LAMP-1 antibody (Biolegend, H4A3) was used in immunocytochemistry on mouse samples at 1:100 (fig 5). Vaccine (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 3d
In order to discuss the therapeutic use of ex vivo-generated Akt-inhibited minor histocompatibility antigen-specific CD8+ T cells, BioLegend LAMP-1 antibody (BioLegend, H4A3) was used in flow cytometry on human samples (fig 3d). Blood (2014) ncbi
Invitrogen
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; fig 3b
Invitrogen LAMP-1 antibody (Invitrogen, 11-1079-42) was used in flow cytometry on human samples (fig 3b). Mol Cancer (2022) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; mouse; loading ...; fig 1b
Invitrogen LAMP-1 antibody (eBioscience, 12-1079-42) was used in flow cytometry on mouse samples (fig 1b). J Clin Invest (2020) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; 1:40; loading ...; fig 3c
Invitrogen LAMP-1 antibody (Thermo, 15-1079-42) was used in flow cytometry on human samples at 1:40 (fig 3c). elife (2020) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig 8d
Invitrogen LAMP-1 antibody (Thermo, PA1-654A) was used in immunocytochemistry on mouse samples (fig 8d). elife (2019) ncbi
rat monoclonal (eBio1D4B (1D4B))
  • flow cytometry; mouse; 1:1000; loading ...; fig 6e
Invitrogen LAMP-1 antibody (eBioscience, 50-1071-82) was used in flow cytometry on mouse samples at 1:1000 (fig 6e). elife (2018) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; loading ...; fig 2a
Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples (fig 2a). J Immunol (2018) ncbi
mouse monoclonal (eBioH4A3)
  • immunocytochemistry; human; loading ...; fig 3f
Invitrogen LAMP-1 antibody (eBiosciences, H4A4) was used in immunocytochemistry on human samples (fig 3f). Nature (2017) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; fig s1b
In order to investigate the role of Eomes in the retention of liver natural killer cells, Invitrogen LAMP-1 antibody (eBiosciences, eBioH4A3) was used in flow cytometry on human samples (fig s1b). J Immunol (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; rhesus macaque; fig 4d
In order to examine the contribution of HIV-derived conserved elements in vaccination, Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on rhesus macaque samples (fig 4d). J Immunol (2016) ncbi
mouse monoclonal (eBioH4A3)
  • immunocytochemistry; human; loading ...; fig 6a
In order to study the use of SH-BC-893 as an anti-cancer treatment, Invitrogen LAMP-1 antibody (ebioscience, 53-1079-42) was used in immunocytochemistry on human samples (fig 6a). J Clin Invest (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; loading ...; fig 1d
In order to determine the S. Typhi, S. Paratyphi A, and S. Paratyphi B cross-reactive CD4 positive T cell responses elicited by immunization with Ty21a, Invitrogen LAMP-1 antibody (eBiosciences, eBioH4A3) was used in flow cytometry on human samples (fig 1d). Clin Immunol (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; rhesus macaque; loading ...; fig 5a
Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on rhesus macaque samples (fig 5a). Front Immunol (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; loading ...; fig 4d
In order to study the cytolytic effector capacity of HIV-specific CD8+ T cells, Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples (fig 4d). PLoS Pathog (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; fig 7
In order to study the functions of WASp knock out natural killer cells, Invitrogen LAMP-1 antibody (eBioscience, 15-107942) was used in flow cytometry on human samples (fig 7). Sci Rep (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; rhesus macaque; loading ...
In order to optimize vaccination with Aventis Pasteur's canarypox vector-HIV, Invitrogen LAMP-1 antibody (eBioscience, 11-1079-42) was used in flow cytometry on rhesus macaque samples . Nat Med (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; fig 4
In order to study chronic hepatitis C virus infections and the functional dichotomy of V-delta2 gamma-delta T cells and their role in cytotoxicity and not IFN-gamma production, Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples (fig 4). Sci Rep (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; loading ...; fig 4a
In order to examine the expression of CD300 molecules on natural killer cells, Invitrogen LAMP-1 antibody (eBiosciences, eBioH4A3) was used in flow cytometry on human samples (fig 4a). Sci Rep (2016) ncbi
mouse monoclonal (Ly1C6)
  • western blot; human; fig 2
In order to investigate luminal and extracellular pH regulation by Vacuolar H+-ATPase isoform expression and targeting to the endosomes and plasma membrane, Invitrogen LAMP-1 antibody (Thermo Fisher, MA1?C164) was used in western blot on human samples (fig 2). J Biol Chem (2016) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; fig s3
Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples (fig s3). J Immunol (2015) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human
Invitrogen LAMP-1 antibody (eBioscience, ebioH4A3) was used in flow cytometry on human samples . J Virol (2015) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human
Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples . J Immunol (2014) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human
In order to developed a strategy to expand umbilical cord blood T cells and test their effects after transplantation, Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples . Leukemia (2015) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human
Invitrogen LAMP-1 antibody (eBioscience, eBioH4A3) was used in flow cytometry on human samples . Immunology (2014) ncbi
mouse monoclonal (eBioH4A3)
  • flow cytometry; human; 0.5 ug/ml
Invitrogen LAMP-1 antibody (eBioscience, H4A3) was used in flow cytometry on human samples at 0.5 ug/ml. J Virol (2014) ncbi
mouse monoclonal (H4A3)
  • western blot; human; fig 2
In order to investigate the role of lysosomal-associated membrane protein 1 in platelets, Invitrogen LAMP-1 antibody (noco, noca) was used in western blot on human samples (fig 2). J Biol Chem (1990) ncbi
Novus Biologicals
mouse monoclonal (5.00E+07)
  • immunohistochemistry; mouse; loading ...; fig 1f
Novus Biologicals LAMP-1 antibody (Novus, NBP2-52721) was used in immunohistochemistry on mouse samples (fig 1f). Cells (2021) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:1000; loading ...; fig 3b
Novus Biologicals LAMP-1 antibody (Novus, NB120-19294) was used in immunocytochemistry on human samples at 1:1000 (fig 3b). elife (2020) ncbi
mouse monoclonal (5H6)
  • immunohistochemistry; mouse; loading ...; fig 1a
Novus Biologicals LAMP-1 antibody (Novus, NBP2-25154) was used in immunohistochemistry on mouse samples (fig 1a). Nat Commun (2018) ncbi
Bio-Rad
mouse monoclonal (4E9/11)
  • immunohistochemistry - paraffin section; pigs ; 1:1000; loading ...; fig 1
Bio-Rad LAMP-1 antibody (Biorad, 4E9/11) was used in immunohistochemistry - paraffin section on pigs samples at 1:1000 (fig 1). PLoS Negl Trop Dis (2016) ncbi
Cell Signaling Technology
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; loading ...; fig 7b
Cell Signaling Technology LAMP-1 antibody (CST, 9091) was used in immunocytochemistry on human samples at 1:200 (fig 7b). Nat Cancer (2022) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; 1:1000; fig 4b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in western blot on human samples at 1:1000 (fig 4b). Acta Neuropathol (2021) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 4d
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091T) was used in immunocytochemistry on human samples (fig 4d). Proc Natl Acad Sci U S A (2021) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; 1:1000; loading ...; fig 6b
Cell Signaling Technology LAMP-1 antibody (Cell signaling, 9091) was used in western blot on human samples at 1:1000 (fig 6b). iScience (2021) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; 1:200; loading ...; fig 3b
Cell Signaling Technology LAMP-1 antibody (cell signaling, 3243) was used in western blot on mouse samples at 1:200 (fig 3b). Antioxidants (Basel) (2021) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; 1:2000; fig 3??s1b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 3243) was used in western blot on mouse samples at 1:2000 (fig 3??s1b). elife (2021) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human; 1:1000; loading ...; fig s5c
  • western blot; mouse; 1:1000; loading ...; fig s5c
Cell Signaling Technology LAMP-1 antibody (CST, 3243S) was used in western blot on human samples at 1:1000 (fig s5c) and in western blot on mouse samples at 1:1000 (fig s5c). Nat Commun (2021) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:100; loading ...; fig 5h
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples at 1:100 (fig 5h). Nat Commun (2021) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; mouse; 1:500; loading ...; fig 4g
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in western blot on mouse samples at 1:500 (fig 4g). Commun Biol (2021) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in immunocytochemistry on human samples . EMBO Rep (2021) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 4a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091S) was used in immunocytochemistry on human samples (fig 4a). Proc Natl Acad Sci U S A (2020) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; fig 1e
Cell Signaling Technology LAMP-1 antibody (CST, 9091) was used in immunocytochemistry on human samples at 1:200 (fig 1e). Alzheimers Res Ther (2020) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; 1:1000; loading ...; fig 4b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in western blot on human samples at 1:1000 (fig 4b). Nat Commun (2020) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:1000; loading ...; fig 1b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, D2D11) was used in immunocytochemistry on human samples at 1:1000 (fig 1b). Nature (2020) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 1
Cell Signaling Technology LAMP-1 antibody (CST, 9091) was used in immunocytochemistry on human samples (fig 1). J Cell Mol Med (2020) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; loading ...; fig 4b
  • western blot; human; loading ...; fig 5a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 3243) was used in western blot on mouse samples (fig 4b) and in western blot on human samples (fig 5a). J Agric Food Chem (2019) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human; 1:1000; loading ...; fig 5d
Cell Signaling Technology LAMP-1 antibody (CST, 3243) was used in western blot on human samples at 1:1000 (fig 5d). Science (2019) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; loading ...; fig 6c
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in western blot on human samples (fig 6c). elife (2019) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; 1:3000; loading ...; fig 4c
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, D2D11) was used in western blot on human samples at 1:3000 (fig 4c). Cell Stem Cell (2019) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:100; loading ...; fig s3h
Cell Signaling Technology LAMP-1 antibody (Cell Signalling, D2D11) was used in immunocytochemistry on human samples at 1:100 (fig s3h). Nat Commun (2019) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; loading ...; fig s2a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 3243) was used in western blot on mouse samples (fig s2a). EMBO J (2019) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human; loading ...; fig 6b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 3243) was used in western blot on human samples (fig 6b). Autophagy (2019) ncbi
domestic rabbit monoclonal (D2D11)
  • proximity ligation assay; human; 1:200; loading ...; fig 5e
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in proximity ligation assay on human samples at 1:200 (fig 5e). Cell Rep (2018) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 1d
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in immunocytochemistry on human samples (fig 1d). Cell Metab (2019) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; loading ...; fig 4a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in western blot on human samples (fig 4a). Autophagy (2019) ncbi
domestic rabbit monoclonal (D2D11)
  • immunohistochemistry; human; loading ...; fig 3a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, D2D11) was used in immunohistochemistry on human samples (fig 3a). J Cell Biol (2018) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human; 1:1000; loading ...; fig 2b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 3243) was used in western blot on human samples at 1:1000 (fig 2b). J Exp Med (2018) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; loading ...; fig 2d
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in immunocytochemistry on human samples at 1:200 (fig 2d). Nat Commun (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; loading ...; fig 3c
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091P) was used in immunocytochemistry on human samples at 1:200 (fig 3c). Mol Cell (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; loading ...; fig s10a
In order to describe the effects of 6-Bio using a preclinical model of Parkinson disease, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in western blot on human samples (fig s10a). Autophagy (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunohistochemistry; human; loading ...; fig 4
In order to study the expression of MHC class I chain-related protein A and B in tumour and normal tissue, Cell Signaling Technology LAMP-1 antibody (cell signalling, 9091) was used in immunohistochemistry on human samples (fig 4). Br J Cancer (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; loading ...; fig 7a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, D2D11) was used in immunocytochemistry on human samples at 1:200 (fig 7a). J Cell Sci (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 4c
In order to investigate TGF-beta-mediated fibrillogenesis, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, D2D11) was used in immunocytochemistry on human samples (fig 4c). Mol Biol Cell (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig s5a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig s5a). Nature (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • flow cytometry; human; loading ...; fig 6a
Cell Signaling Technology LAMP-1 antibody (CST, 9091) was used in flow cytometry on human samples (fig 6a). Sci Rep (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 2c
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig 2c). Oncotarget (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 1e
In order to find and characterize a polypeptide encoded by the long non-coding RNA, LINC00961, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig 1e). Nature (2017) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; loading ...; fig s6f
In order to find and characterize a polypeptide encoded by the long non-coding RNA, LINC00961, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 3243) was used in western blot on mouse samples (fig s6f). Nature (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; loading ...; fig 4c
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples at 1:200 (fig 4c). Int J Mol Sci (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig 5
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig 5). PLoS ONE (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; loading ...; fig 3a
  • western blot; human; loading ...; fig 1c
In order to determine the role of SNAPIN in macrophages, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples at 1:200 (fig 3a) and in western blot on human samples (fig 1c). Autophagy (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; mouse; 1:1000; loading ...; fig 1b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in western blot on mouse samples at 1:1000 (fig 1b). EMBO Mol Med (2017) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 2
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091P) was used in immunocytochemistry on human samples (fig 2). Biosci Rep (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 4
In order to assess the effect of polyinosinic-polycytidylic acid on the barrier function and tight junction integrity of primary human lung microvascular endothelial cells, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig 4). PLoS ONE (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 3
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Tech, 9091) was used in immunocytochemistry on human samples (fig 3). PLoS ONE (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 2
In order to analyze prevention of BECN2-mediated drug tolerance to cannabioids by autophagy activation by novel inducers, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig 2). Autophagy (2016) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; loading ...; fig 6c
In order to characterize cardiac defects in interleukin-18 knock out mice, Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 3243) was used in western blot on mouse samples (fig 6c). Am J Physiol Heart Circ Physiol (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunohistochemistry; human; 1:1000; loading ...; fig 4a
  • western blot; human; 1:2000; loading ...; fig 7b
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunohistochemistry on human samples at 1:1000 (fig 4a) and in western blot on human samples at 1:2000 (fig 7b). Int J Oncol (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; mouse; fig 6
Cell Signaling Technology LAMP-1 antibody (Cell signaling, 9091) was used in western blot on mouse samples (fig 6). Autophagy (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig s1a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, D2D11) was used in immunocytochemistry on human samples (fig s1a). EMBO Rep (2016) ncbi
domestic rabbit monoclonal (C54H11)
  • immunohistochemistry - frozen section; mouse; 1:1000; tbl 1
In order to utilize a time course study of sciatic nerves from aging mice to gain a neurogenic perspective of sarcopenia, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 3243) was used in immunohistochemistry - frozen section on mouse samples at 1:1000 (tbl 1). J Neuropathol Exp Neurol (2016) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human; 1:1000; fig 6a
Cell Signaling Technology LAMP-1 antibody (Cell Signalling, 3243) was used in western blot on human samples at 1:1000 (fig 6a). PLoS ONE (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:400; fig 6
In order to investigate the effect of Obatoclax in esophageal cancer cells, Cell Signaling Technology LAMP-1 antibody (Cell Signaling Tech, 9091) was used in immunocytochemistry on human samples at 1:400 (fig 6). Oncotarget (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; fig 2
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Tech, CST-9091) was used in western blot on human samples (fig 2). Oncotarget (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 4
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technologies, D2D11) was used in immunocytochemistry on human samples (fig 4). PLoS ONE (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; loading ...; fig s1a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples (fig s1a). Sci Rep (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 6
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in immunocytochemistry on human samples (fig 6). J Cell Sci (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:1000; fig 3
  • western blot; human; 1:1000; fig 3
In order to investigate impairment of autophagy flux and induction of cell death independent of necroptosis and apoptosis by dual PI-3 kinase/mTOR inhibition, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples at 1:1000 (fig 3) and in western blot on human samples at 1:1000 (fig 3). Oncotarget (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:100; loading ...
In order to evaluate the anticancer potential of autophagy modulators, Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in immunocytochemistry on human samples at 1:100. Methods Mol Biol (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:200; fig 5
  • western blot; human; fig 4
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091) was used in immunocytochemistry on human samples at 1:200 (fig 5) and in western blot on human samples (fig 4). Mol Cancer Res (2016) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 2n
In order to characterize restriction of Toxoplasma gondii growth in a strain-specific manner in IFN-gamma-activated human cells due to a noncanonical autophagy pathway, Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, D2D11) was used in immunocytochemistry on human samples (fig 2n). MBio (2015) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human; fig 3a
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 3243) was used in western blot on human samples (fig 3a). J Virol (2015) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; fig 7g
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, D2D11) was used in western blot on human samples (fig 7g). J Cell Biol (2015) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 4
In order to determine the requirement for GARP-dependent endosome-to-TGN retrograde transport in post-golgi anterograde transport, Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, D2D11) was used in immunocytochemistry on human samples (fig 4). Mol Biol Cell (2015) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse; 1:1000
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, C54H11) was used in western blot on mouse samples at 1:1000. PLoS ONE (2015) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; fig 3
Cell Signaling Technology LAMP-1 antibody (Cell signaling, D2D11) was used in immunocytochemistry on human samples (fig 3). Cancer Immunol Res (2015) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 3243S) was used in western blot on human samples . J Biol Chem (2014) ncbi
domestic rabbit monoclonal (D2D11)
  • immunocytochemistry; human; 1:100
  • western blot; human
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, 9091S) was used in immunocytochemistry on human samples at 1:100 and in western blot on human samples . J Biol Chem (2014) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; mouse
Cell Signaling Technology LAMP-1 antibody (Cell Signaling Technology, C54H11) was used in western blot on mouse samples . PLoS ONE (2014) ncbi
domestic rabbit monoclonal (C54H11)
  • western blot; human
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, C54H11) was used in western blot on human samples . Mol Vis (2014) ncbi
domestic rabbit monoclonal (D2D11)
  • western blot; human; 1:1000
Cell Signaling Technology LAMP-1 antibody (Cell Signaling, 9091) was used in western blot on human samples at 1:1000. Cell Death Dis (2013) ncbi
BD Biosciences
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:40; loading ...; fig 3a, s4a
BD Biosciences LAMP-1 antibody (BD Biosciences, 555801) was used in flow cytometry on human samples at 1:40 (fig 3a, s4a). J Immunother Cancer (2022) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:100; loading ...; fig s5g
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples at 1:100 (fig s5g). Nature (2021) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:50; loading ...; fig 7d
BD Biosciences LAMP-1 antibody (BD Pharmingen, 561348) was used in flow cytometry on human samples at 1:50 (fig 7d). elife (2021) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:20; loading ...; fig s1-3a
BD Biosciences LAMP-1 antibody (BD Pharmingen, 560664) was used in flow cytometry on human samples at 1:20 (fig s1-3a). elife (2020) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1a
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 1a). Nat Commun (2020) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s2a
BD Biosciences LAMP-1 antibody (BD, 562623) was used in flow cytometry on human samples (fig s2a). Stem Cell Reports (2020) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1e
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 1e). J Immunol (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1g
BD Biosciences LAMP-1 antibody (BD Biosciences, 555802) was used in flow cytometry on human samples (fig 1g). Cell (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2d
BD Biosciences LAMP-1 antibody (BD, 641581) was used in flow cytometry on human samples (fig 2d). Cell (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; loading ...; fig s1e
BD Biosciences LAMP-1 antibody (BD pharmingen, 555798) was used in immunocytochemistry on human samples at 1:200 (fig s1e). J Cell Sci (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 3a
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 3a). Blood (2019) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5a, 5b, 5f, s6
BD Biosciences LAMP-1 antibody (BD, 555800) was used in flow cytometry on human samples (fig 5a, 5b, 5f, s6). Cell (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2b
BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig 2b). Front Immunol (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s6a
BD Biosciences LAMP-1 antibody (BD Pharmingen, H4A3) was used in flow cytometry on human samples (fig s6a). Sci Immunol (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5a
BD Biosciences LAMP-1 antibody (BD Biosciences, 555801) was used in flow cytometry on human samples (fig 5a). Front Immunol (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5a
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 5a). Proc Natl Acad Sci U S A (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 6b
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 6b). Sci Rep (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2a
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 2a). Cancer Immunol Res (2018) ncbi
mouse monoclonal (25/Lamp-1)
  • immunocytochemistry; human; 1:100; loading ...; fig 3c, s2b
BD Biosciences LAMP-1 antibody (BD, 611043) was used in immunocytochemistry on human samples at 1:100 (fig 3c, s2b). EMBO J (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2d
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 2d). J Clin Invest (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 7d
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 7d). J Biol Chem (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5
BD Biosciences LAMP-1 antibody (BD Bioscience, H4A3) was used in flow cytometry on human samples (fig 5). J Immunol (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5b
In order to evaluate the role of IL-32alpha in NK cell inhibition, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 5b). J Immunol (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s6c
In order to investigate the effectiveness of a neoantigen vaccine against melanoma, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig s6c). Nature (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:1000; loading ...; fig 3a
BD Biosciences LAMP-1 antibody (BD Biosciences, 555798) was used in immunocytochemistry on human samples at 1:1000 (fig 3a). Neurochem Int (2018) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s6d
In order to determine the role of PD-1 in regulating anti-tumor T cell reactivities, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig s6d). Science (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 7a
BD Biosciences LAMP-1 antibody (BD Biosciences, 555800) was used in flow cytometry on human samples (fig 7a). PLoS ONE (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; mouse; loading ...; fig 1b
BD Biosciences LAMP-1 antibody (BD Pharmingen, 641581) was used in flow cytometry on mouse samples (fig 1b). Exp Ther Med (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 2i
In order to investigate Rab7 and Arl8b crosstalk, BD Biosciences LAMP-1 antibody (BD, 555798) was used in immunocytochemistry on human samples (fig 2i). J Cell Biol (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:2000; loading ...; fig s2c
In order to investigate mechanisms that mediate BST2 turnover, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in immunocytochemistry on human samples at 1:2000 (fig s2c). J Cell Sci (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig 5a
In order to research the mechanism of LC3 lipidation by modulators of autophagy, BD Biosciences LAMP-1 antibody (Becton Dickinson, 555798) was used in immunocytochemistry on human samples at 1:100 (fig 5a). Autophagy (2017) ncbi
mouse monoclonal (H4A3)
  • other; African green monkey; loading ...; fig s4
In order to optimize the dosing regimen of neutralizing anti-HIV-1 antibodies, BD Biosciences LAMP-1 antibody (bd, H4A3) was used in other on African green monkey samples (fig s4). Nature (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 5
In order to elucidate the effects of pathogen recognition receptors on dendritic cell maturation, HIV infection, and on the quality of HIV-specific cytotoxic T-cell activation, BD Biosciences LAMP-1 antibody (BD, 555802) was used in flow cytometry on human samples (fig 5). Eur J Immunol (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 13b
In order to identify human cytomegalovirus genes within the US12 family containing novel natural killer cell evasion functions, BD Biosciences LAMP-1 antibody (BD Biosciences, 555800) was used in flow cytometry on human samples (fig 13b). elife (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 1:10; loading ...; fig 2b
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples at 1:10 (fig 2b). JCI Insight (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5c
In order to show T cell immunoglobulin and ITIM domain expression increases over time despite early initiation of antiretroviral treatment, BD Biosciences LAMP-1 antibody (BD Bioscience, H4A3) was used in flow cytometry on human samples (fig 5c). Sci Rep (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1f
In order to characterize gammadelta T cell subsets from healthy humans, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig 1f). Proc Natl Acad Sci U S A (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; tbl 1
In order to demonstrate that freezing already-stained samples suspended in 10% DMSO in FBS is practical and efficient way to preserve already-stained samples for mass cytometry assessment, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (tbl 1). Cytometry A (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:500; loading ...; fig 4a
BD Biosciences LAMP-1 antibody (BD Pharmingen, 555798) was used in western blot on human samples at 1:500 (fig 4a). Cell Microbiol (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1
In order to demonstrate that ATP9A has an important role in recycling from endosomes to the plasma membrane, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in immunocytochemistry on human samples (fig 1). Mol Biol Cell (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1e
In order to discuss targeting CD123 to treat systemic lupus erythematosus, BD Biosciences LAMP-1 antibody (BD Biosciences, 561343) was used in flow cytometry on human samples (fig 1e). JCI Insight (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2b
BD Biosciences LAMP-1 antibody (BD Biosciences, 555802) was used in flow cytometry on human samples (fig 2b). Cell (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 3
In order to assess receptor for hyaluronic acid-mediated motility specific dendritic cell responses, BD Biosciences LAMP-1 antibody (BD Biosciences, 555800) was used in flow cytometry on human samples (fig 3). Oncotarget (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...
In order to identify RLTPR in patients and determine the effects of these mutations on CD4 positive T cells, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples . J Exp Med (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s4d
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig s4d). J Clin Invest (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; rhesus macaque; loading ...; fig 1b
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on rhesus macaque samples (fig 1b). J Virol (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 2c
BD Biosciences LAMP-1 antibody (Becton-Dickinson, H4A3) was used in flow cytometry on human samples (fig 2c). J Immunol (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig s9f
In order to explore the role of exhausted CD8 positive CXCR5 positive T cells in mice chronically infected with lymphocytic choriomeningitis virus, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig s9f). Nature (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 2
BD Biosciences LAMP-1 antibody (BD Bioscience, 555800) was used in flow cytometry on human samples (fig 2). Oncoimmunology (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 3a
In order to assess the effects of platelet-derived ectosomes on natural killer cells, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 3a). J Immunol (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 3f
BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig 3f). J Clin Invest (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1a
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 1a). J Immunol (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 5b
In order to investigate NF-KB signaling in natural killer cells, BD Biosciences LAMP-1 antibody (BD Bioscience, H4A3) was used in flow cytometry on human samples (fig 5b). Nat Commun (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; African green monkey; loading ...; fig s1
In order to discuss the use of flow cytometry to examine common marmosets, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on African green monkey samples (fig s1). J Med Primatol (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s1a
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig s1a). Science (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig s6
BD Biosciences LAMP-1 antibody (BD Biosciences, 555800) was used in flow cytometry on human samples (fig s6). EMBO Mol Med (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 4
BD Biosciences LAMP-1 antibody (BD, 555798) was used in immunocytochemistry on human samples (fig 4). Traffic (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig st1
In order to find cell-surface markers specific to human neutrophils, BD Biosciences LAMP-1 antibody (BD, 555801) was used in flow cytometry on human samples (fig st1). Exp Cell Res (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 6
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 6). Oncoimmunology (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 2
BD Biosciences LAMP-1 antibody (BD, 555802) was used in flow cytometry on human samples (fig 2). Oncoimmunology (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; 10 ug/ml; fig 3
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples at 10 ug/ml (fig 3). Nat Commun (2016) ncbi
mouse monoclonal (25/Lamp-1)
  • immunohistochemistry; human; fig 9
In order to investigate the impact of neuronal Atg7 depletion using a mouse model of severe neonatal hypoxia-ischemia, BD Biosciences LAMP-1 antibody (BD Biosciences, 611042) was used in immunohistochemistry on human samples (fig 9). Autophagy (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1b
BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig 1b). J Virol (2016) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 5
In order to characterize the influence on NK cell cytotoxicity by differential expression of ligands for DNAM-1 and NKG2D receptors by epithelial ovarian cancer-derived exosomes, BD Biosciences LAMP-1 antibody (BD Pharmingen, H4A3) was used in flow cytometry on human samples (fig 5). Tumour Biol (2016) ncbi
mouse monoclonal (25/Lamp-1)
  • western blot; human
In order to study functional receptors for cholera toxin by fucosylation and protein glycosylation, BD Biosciences LAMP-1 antibody (BD Biosciences, 611042) was used in western blot on human samples . elife (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 2
BD Biosciences LAMP-1 antibody (BD Biosciences, 555798) was used in immunocytochemistry on human samples (fig 2). J Cell Biol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Pharmingen, 555801) was used in flow cytometry on human samples . Am J Reprod Immunol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 4
In order to investigate the role of VAMP8 in exocytosis, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig 4). J Cell Biol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 4a
In order to characterize gut-associated gammadelta T-cells in HIV-infected individuals, BD Biosciences LAMP-1 antibody (BD Pharmingen, H4A3) was used in flow cytometry on human samples (fig 4a). PLoS ONE (2015) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; loading ...; fig 6d
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in immunohistochemistry on human samples (fig 6d). Oncotarget (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 2
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 2). J Virol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples . J Immunol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Biosciences, 555800) was used in flow cytometry on human samples . Cancer Immunol Immunother (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
In order to examine the phenotype and function of peripheral gammadelta T cells in patients with chronic hepatitis B during pegylated-interferon-alpha treatment, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples . PLoS ONE (2015) ncbi
mouse monoclonal (25/Lamp-1)
  • western blot; human
BD Biosciences LAMP-1 antibody (BD Biosciences, 25) was used in western blot on human samples . Mol Immunol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; tbl s2
In order to examine the early impact of viral replicative capacity on HIV-1 immunopathogenesis, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (tbl s2). Proc Natl Acad Sci U S A (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 4
In order to describe the phenotype and functional potential of metastatic differentiated thyroid cancer-associated PD-1 positive T cells, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 4). Cancer Immunol Res (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human
In order to study the mechanism for the metastasis of ErbB2-positive breast cancer cells, BD Biosciences LAMP-1 antibody (BD Pharmigen, 555798) was used in immunocytochemistry on human samples . J Biol Chem (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 3
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig 3). J Immunol (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig s3
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples (fig s3). BMC Cancer (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; African green monkey; fig s3
In order to study recycling endosome transport requires EHD1 recruitment of phosphatidylserine translocase, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in immunocytochemistry on African green monkey samples (fig s3). EMBO J (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:1000
BD Biosciences LAMP-1 antibody (BD, 555798) was used in immunocytochemistry on human samples at 1:1000. Nucleic Acids Res (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples . Arthritis Rheumatol (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s3
BD Biosciences LAMP-1 antibody (BD Pharmingen, 555801) was used in immunocytochemistry on human samples (fig s3). J Cell Sci (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Pharmingen, H4A3) was used in flow cytometry on human samples . Eur J Immunol (2015) ncbi
mouse monoclonal (25/Lamp-1)
  • immunohistochemistry - frozen section; human
BD Biosciences LAMP-1 antibody (BD Biosciences, 611042) was used in immunohistochemistry - frozen section on human samples . Ann Neurol (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Pharmingen, H4A3) was used in flow cytometry on human samples . Clin Cancer Res (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Bioscience, H4A3) was used in flow cytometry on human samples . Med Microbiol Immunol (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Bioscience, H4A3) was used in flow cytometry on human samples . PLoS Pathog (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; African green monkey; fig 4
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on African green monkey samples (fig 4). PLoS Pathog (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s1b
BD Biosciences LAMP-1 antibody (BD Biosciences, 555801) was used in flow cytometry on human samples (fig s1b). Oncotarget (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Pharmingen, H4A3) was used in flow cytometry on human samples . Int J Cancer (2015) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples . Proc Natl Acad Sci U S A (2014) ncbi
mouse monoclonal (H4A3)
  • blocking or activating experiments; human
BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in blocking or activating experiments on human samples . J Immunol (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
In order to study NK function in solid tumors, BD Biosciences LAMP-1 antibody (BD Biosciences, H4A3) was used in flow cytometry on human samples . Int J Cancer (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human
BD Biosciences LAMP-1 antibody (BD Biosciences, clone H4A3) was used in flow cytometry on human samples . PLoS ONE (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig 1
In order to discuss the importance of assessing immune competence in cancer patients, BD Biosciences LAMP-1 antibody (BD, H4A3) was used in flow cytometry on human samples (fig 1). Cancer Immunol Immunother (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:1000
In order to investigate the subcellular trafficking and recycle of CD22, BD Biosciences LAMP-1 antibody (BD Pharmingen, 555798) was used in immunocytochemistry on human samples at 1:1000. Traffic (2014) ncbi
mouse monoclonal (25/Lamp-1)
  • immunocytochemistry; human
  • western blot; human; fig 2
BD Biosciences LAMP-1 antibody (BD Transduction Laboratories, 611043) was used in immunocytochemistry on human samples and in western blot on human samples (fig 2). Cell Cycle (2013) ncbi
mouse monoclonal (25/Lamp-1)
  • western blot; human
In order to study the inhibition of tumor growth caused by mitochondrial dysfunction in the epithelial cancer cell compartment, BD Biosciences LAMP-1 antibody (BD Transduction Laboratories, 611043) was used in western blot on human samples . Cell Cycle (2013) ncbi
Developmental Studies Hybridoma Bank
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1c
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 1c). BMC Biol (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:400; loading ...; fig s3a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples at 1:400 (fig s3a). Nat Commun (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 5c
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 5c). EMBO J (2021) ncbi
mouse monoclonal (H4A3)
  • other; human; 1:10; loading ...; fig s1h
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in other on human samples at 1:10 (fig s1h). J Clin Med (2021) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:5000; loading ...; fig s5b
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Hybridoma Bank, H4A3) was used in western blot on human samples at 1:5000 (fig s5b). Nat Commun (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:500; loading ...; fig 4g
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples at 1:500 (fig 4g). Nature (2021) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 2c
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, h4a3) was used in immunocytochemistry on human samples (fig 2c). Cell (2019) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 1h
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in western blot on human samples (fig 1h). Sci China Life Sci (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig s1f
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples (fig s1f). Proc Natl Acad Sci U S A (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 2 ug/ml; loading ...; fig s1d
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3-s) was used in immunocytochemistry on human samples at 2 ug/ml (fig s1d). J Cell Biol (2019) ncbi
mouse monoclonal (G1/139/5)
  • immunocytochemistry; human; loading ...; fig 5a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, G1/139/5) was used in immunocytochemistry on human samples (fig 5a). Sci Rep (2019) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:1000; loading ...; fig 1e
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples at 1:1000 (fig 1e). Science (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s1e
Developmental Studies Hybridoma Bank LAMP-1 antibody (BD Biosciences, H4A3) was used in immunocytochemistry on human samples (fig s1e). EMBO J (2018) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 5d
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in western blot on human samples (fig 5d). PLoS ONE (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:250; loading ...; fig 9d
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on mouse samples at 1:250 (fig 9d). J Neurosci (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:100; loading ...; fig s4d
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples at 1:100 (fig s4d). EMBO J (2018) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:5; fig 7c
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples at 1:5 (fig 7c). Hum Mol Genet (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 7a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 7a). EMBO J (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 10c
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in western blot on human samples (fig 10c). elife (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:400; loading ...; fig 5b
In order to characterize muscle biopsy specimens derived from patients with spinal and bulbar muscular atrophy, Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in western blot on human samples at 1:400 (fig 5b). Hum Mol Genet (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1c
In order to demonstrate that RIDalpha utilizes ORP1L to fine-tune lipid raft cholesterol during adenovirus infection, Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 1c). J Virol (2017) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 6e
In order to determine the role of SNAPIN in macrophages, Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in western blot on human samples (fig 6e). Autophagy (2017) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; loading ...; fig s6d
In order to demonstrate that neonatal CD8 positive T cells have a specific genetic program biased toward the innate immune response, Developmental Studies Hybridoma Bank LAMP-1 antibody (Miltenyi Biotec, H4A3) was used in flow cytometry on human samples (fig s6d). Cell Rep (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:300; fig 3
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on mouse samples at 1:300 (fig 3). J Cell Sci (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 2a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 2a). Microbiologyopen (2017) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 6a
In order to explore contribution of palmitoylation to the localization and stability of Dsg2, Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples (fig 6a). J Biol Chem (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; mouse; 1:200; loading ...; fig 2b
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on mouse samples at 1:200 (fig 2b). J Gen Physiol (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; dogs; fig 4a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on dogs samples (fig 4a). J Cell Biol (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 2d
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples (fig 2d). J Cell Biol (2016) ncbi
mouse monoclonal (H4A3)
  • western blot; human; 1:1000; fig 6a
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in western blot on human samples at 1:1000 (fig 6a). Nat Commun (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 2a
  • western blot; human; loading ...; fig 2b
In order to show that FLCN regulates mTORC1 by modulating the leucine signal in lysosome, Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples (fig 2a) and in western blot on human samples (fig 2b). PLoS ONE (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 1a). EMBO Rep (2016) ncbi
mouse monoclonal (G1/139/5)
  • immunocytochemistry; pigs ; 1:2; loading ...; fig 4c
In order to study the entry and uncoating of African swine fever virus, Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, G1/139/5) was used in immunocytochemistry on pigs samples at 1:2 (fig 4c). PLoS Pathog (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 7g
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples (fig 7g). PLoS ONE (2016) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry - paraffin section; human; 1:1000; loading ...; tbl 1
In order to examine eosinophilic neuronal cytoplasmic inclusions, Developmental Studies Hybridoma Bank LAMP-1 antibody (Iowa Univ, H4A3) was used in immunohistochemistry - paraffin section on human samples at 1:1000 (tbl 1). Neuropathology (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s2
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3-s) was used in immunocytochemistry on human samples (fig s2). Nat Commun (2016) ncbi
mouse monoclonal (H4A3)
  • western blot; human; loading ...; fig 6a
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in western blot on human samples (fig 6a). J Immunol (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; fig 2
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples at 1:200 (fig 2). PLoS ONE (2016) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; loading ...; fig 1a
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 1a). Oncotarget (2015) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry; human; 1:100
In order to examine palmitoyl protein thioesterase 1, Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunohistochemistry on human samples at 1:100. Data Brief (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s4a
In order to report that autoimmune regulator is induced in human and mouse tumor keratinocytes in a K17-dependent manner and results in Gli2-induced skin tumorigenesis in mice, Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig s4a). Nat Genet (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:500; fig 6
In order to study an array of fluorescent proteins optimized for various cellular environments, Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3-c) was used in immunocytochemistry on human samples at 1:500 (fig 6). Nat Commun (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:250; fig 4
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples at 1:250 (fig 4). J Cell Biol (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; fig s6
  • western blot; human; 1:500; fig s7
Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples at 1:200 (fig s6) and in western blot on human samples at 1:500 (fig s7). Nat Genet (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 5
  • western blot; human; fig 5
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3-c) was used in immunocytochemistry on human samples (fig 5) and in western blot on human samples (fig 5). Autophagy (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 4, 5
In order to examine the intracellular dynamics of trastuzumab, Developmental Studies Hybridoma Bank LAMP-1 antibody (DSHB, H4A3) was used in immunocytochemistry on human samples (fig 4, 5). MAbs (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig s9f
In order to identify and characterize a new endocytic route that is called fast endophilin-mediated endocytosis, Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples (fig s9f). Nature (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; 1:200; fig 5
In order to study corneal keratocytes and expression of insulin-like growth factor 2 receptor during wound healing response and differentiation, Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples at 1:200 (fig 5). Invest Ophthalmol Vis Sci (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human
Developmental Studies Hybridoma Bank LAMP-1 antibody (University of Iowa Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on human samples . J Clin Invest (2014) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; human; fig 2, 3, 4
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma, H4A3) was used in immunocytochemistry on human samples (fig 2, 3, 4). Cardiovasc Res (2014) ncbi
mouse monoclonal (H4A3)
  • flow cytometry; human; fig 2
Developmental Studies Hybridoma Bank LAMP-1 antibody (Biolegend, H4A3) was used in flow cytometry on human samples (fig 2). J Infect Dis (2015) ncbi
mouse monoclonal (H4A3)
  • immunocytochemistry; fission yeast; fig s4
Developmental Studies Hybridoma Bank LAMP-1 antibody (Developmental Studies Hybridoma Bank, H4A3) was used in immunocytochemistry on fission yeast samples (fig s4). Nat Commun (2014) ncbi
mouse monoclonal (H4A3)
  • immunohistochemistry - paraffin section; human; 1:1000
In order to investigate the association of giant cell polymyositis and myocarditis with myasthenia gravis and thymoma, Developmental Studies Hybridoma Bank LAMP-1 antibody (developmental Studies Hybridoma Bank, H4A3) was used in immunohistochemistry - paraffin section on human samples at 1:1000. Neuropathology (2013) ncbi
MilliporeSigma
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; mouse; 1:100; loading ...; fig 8a
MilliporeSigma LAMP-1 antibody (Sigma Aldrich, L1418) was used in immunohistochemistry - frozen section on mouse samples at 1:100 (fig 8a). Int J Mol Sci (2021) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - free floating section; mouse; 1:200; loading ...; fig s3f
  • western blot; mouse; 1:2000; loading ...; fig s1b
MilliporeSigma LAMP-1 antibody (Sigma-Aldrich, L1418) was used in immunohistochemistry - free floating section on mouse samples at 1:200 (fig s3f) and in western blot on mouse samples at 1:2000 (fig s1b). Autophagy (2021) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; chicken; 1:1000; fig 4b
MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunocytochemistry on chicken samples at 1:1000 (fig 4b). Int J Biol Macromol (2020) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:250; loading ...; fig 8a
  • immunocytochemistry; human; 1:250; loading ...; fig 4b
MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunocytochemistry on mouse samples at 1:250 (fig 8a) and in immunocytochemistry on human samples at 1:250 (fig 4b). elife (2019) ncbi
domestic rabbit polyclonal
  • immunohistochemistry - frozen section; mouse; loading ...; fig 5e
MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunohistochemistry - frozen section on mouse samples (fig 5e). J Biol Chem (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; rat; 1:300; loading ...; fig 8a
MilliporeSigma LAMP-1 antibody (SIGMA, L1418) was used in immunocytochemistry on rat samples at 1:300 (fig 8a). Aging (Albany NY) (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; loading ...; fig 5c
  • western blot; human; loading ...; fig 3c
MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunocytochemistry on human samples (fig 5c) and in western blot on human samples (fig 3c). J Alzheimers Dis (2019) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; loading ...; fig 1b
  • western blot; mouse; 1:1000; loading ...; fig 1a
MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunocytochemistry on mouse samples (fig 1b) and in western blot on mouse samples at 1:1000 (fig 1a). JIMD Rep (2017) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; mouse; 1:100; loading ...; fig 1a
In order to study factors that limit membrane attack complexes in models of macular degeneration, MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunocytochemistry on mouse samples at 1:100 (fig 1a). Proc Natl Acad Sci U S A (2016) ncbi
domestic rabbit polyclonal
  • immunocytochemistry; human; 1:300; fig 8
MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used in immunocytochemistry on human samples at 1:300 (fig 8). Autophagy (2016) ncbi
domestic rabbit polyclonal
In order to map the topography of the human papillomavirus L2 protein during infection, MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used . J Virol (2015) ncbi
domestic rabbit polyclonal
In order to report that Salmonella enterica serovar Typhimurium modulates host SUMOylation, MilliporeSigma LAMP-1 antibody (Sigma, L1418) was used . Mol Cell Biol (2015) ncbi
Articles Reviewed
  1. Pan R, Yu Y, Zhu H, Zhang W, Qin Y, Ye L, et al. RSPO2 promotes progression of ovarian cancer through dual receptor-mediated FAK/Src signaling activation. iScience. 2022;25:105184 pubmed publisher
  2. Kiryu Seo S, Matsushita R, Tashiro Y, Yoshimura T, Iguchi Y, Katsuno M, et al. Impaired disassembly of the axon initial segment restricts mitochondrial entry into damaged axons. EMBO J. 2022;41:e110486 pubmed publisher
  3. Francis V, Alshafie W, Kumar R, Girard M, Brais B, McPherson P. The ARSACS disease protein sacsin controls lysosomal positioning and reformation by regulating microtubule dynamics. J Biol Chem. 2022;298:102320 pubmed publisher
  4. Gao H, Sun H, Yan N, Zhao P, Xu H, Zheng W, et al. ATP13A2 Declines Zinc-Induced Accumulation of α-Synuclein in a Parkinson's Disease Model. Int J Mol Sci. 2022;23: pubmed publisher
  5. Singh N, Das B, Zhou J, Hu X, Yan R. Targeted BACE-1 inhibition in microglia enhances amyloid clearance and improved cognitive performance. Sci Adv. 2022;8:eabo3610 pubmed publisher
  6. Chen P, Katsuyama E, Satyam A, Li H, Rubio J, Jung S, et al. CD38 reduces mitochondrial fitness and cytotoxic T cell response against viral infection in lupus patients by suppressing mitophagy. Sci Adv. 2022;8:eabo4271 pubmed publisher
  7. Reibring C, El Shahawy M, Hallberg K, Harfe B, Linde A, Gritli Linde A. Loss of BMP2 and BMP4 Signaling in the Dental Epithelium Causes Defective Enamel Maturation and Aberrant Development of Ameloblasts. Int J Mol Sci. 2022;23: pubmed publisher
  8. Qin L, Wang L, Zhang J, Zhou H, Yang Z, Wang Y, et al. Therapeutic strategies targeting uPAR potentiate anti-PD-1 efficacy in diffuse-type gastric cancer. Sci Adv. 2022;8:eabn3774 pubmed publisher
  9. Jung K, Son M, Lee S, Kim J, Ko D, Yoo S, et al. Antibody-mediated delivery of a viral MHC-I epitope into the cytosol of target tumor cells repurposes virus-specific CD8+ T cells for cancer immunotherapy. Mol Cancer. 2022;21:102 pubmed publisher
  10. Bondeson D, Paolella B, Asfaw A, Rothberg M, Skipper T, Langan C, et al. Phosphate dysregulation via the XPR1-KIDINS220 protein complex is a therapeutic vulnerability in ovarian cancer. Nat Cancer. 2022;3:681-695 pubmed publisher
  11. Zhu J, Pittman S, Dhavale D, French R, Patterson J, Kaleelurrrahuman M, et al. VCP suppresses proteopathic seeding in neurons. Mol Neurodegener. 2022;17:30 pubmed publisher
  12. Bajor M, Graczyk Jarzynka A, Marhelava K, Burdzińska A, Muchowicz A, Góral A, et al. PD-L1 CAR effector cells induce self-amplifying cytotoxic effects against target cells. J Immunother Cancer. 2022;10: pubmed publisher
  13. Yoshida J, Ohishi T, Abe H, Ohba S, Inoue H, Usami I, et al. Mitochondrial complex I inhibitors suppress tumor growth through concomitant acidification of the intra- and extracellular environment. iScience. 2021;24:103497 pubmed publisher
  14. Prabhu A, Kang I, De Pace R, Wassif C, Fujiwara H, Kell P, et al. A human iPSC-derived inducible neuronal model of Niemann-Pick disease, type C1. BMC Biol. 2021;19:218 pubmed publisher
  15. Stoffel W, Binczek E, Schmidt Soltau I, Brodesser S, Wegner I. High fat / high cholesterol diet does not provoke atherosclerosis in the ω3-and ω6-polyunsaturated fatty acid synthesis-inactivated Δ6-fatty acid desaturase-deficient mouse. Mol Metab. 2021;54:101335 pubmed publisher
  16. Zin E, Han D, Tran J, Morisson Welch N, Visel M, Kuronen M, et al. Outcomes of progranulin gene therapy in the retina are dependent on time and route of delivery. Mol Ther Methods Clin Dev. 2021;22:40-51 pubmed publisher
  17. Zhao J, Lu W, Ren Y, Fu Y, Martens Y, Shue F, et al. Apolipoprotein E regulates lipid metabolism and α-synuclein pathology in human iPSC-derived cerebral organoids. Acta Neuropathol. 2021;142:807-825 pubmed publisher
  18. Ashok A, Chaudhary S, Wise A, Rana N, McDonald D, Kritikos A, et al. Release of Iron-Loaded Ferritin in Sodium Iodate-Induced Model of Age Related Macular Degeneration: An In-Vitro and In-Vivo Study. Antioxidants (Basel). 2021;10: pubmed publisher
  19. Soldati C, Lopez Fabuel I, Wanderlingh L, García Macia M, Monfregola J, Esposito A, et al. Repurposing of tamoxifen ameliorates CLN3 and CLN7 disease phenotype. EMBO Mol Med. 2021;13:e13742 pubmed publisher
  20. Yoon Y, Go G, Yoon S, Lim J, Lee G, Lee J, et al. Melatonin Treatment Improves Renal Fibrosis via miR-4516/SIAH3/PINK1 Axis. Cells. 2021;10: pubmed publisher
  21. Glajch K, Moors T, Chen Y, Bechade P, Nam A, Rajsombath M, et al. Wild-type GBA1 increases the α-synuclein tetramer-monomer ratio, reduces lipid-rich aggregates, and attenuates motor and cognitive deficits in mice. Proc Natl Acad Sci U S A. 2021;118: pubmed publisher
  22. Oberhardt V, Luxenburger H, Kemming J, Schulien I, Ciminski K, Giese S, et al. Rapid and stable mobilization of CD8+ T cells by SARS-CoV-2 mRNA vaccine. Nature. 2021;597:268-273 pubmed publisher
  23. Escrevente C, Falcão A, Hall M, Lopes da Silva M, Antas P, Mesquita M, et al. Formation of Lipofuscin-Like Autofluorescent Granules in the Retinal Pigment Epithelium Requires Lysosome Dysfunction. Invest Ophthalmol Vis Sci. 2021;62:39 pubmed publisher
  24. Spiegel J, Patel S, Muffly L, Hossain N, Oak J, Baird J, et al. CAR T cells with dual targeting of CD19 and CD22 in adult patients with recurrent or refractory B cell malignancies: a phase 1 trial. Nat Med. 2021;27:1419-1431 pubmed publisher
  25. Takahashi K, Nakamura S, Otsu W, Shimazawa M, Hara H. Progranulin deficiency in Iba-1+ myeloid cells exacerbates choroidal neovascularization by perturbation of lysosomal function and abnormal inflammation. J Neuroinflammation. 2021;18:164 pubmed publisher
  26. Claes C, Danhash E, Hasselmann J, Chadarevian J, Shabestari S, England W, et al. Plaque-associated human microglia accumulate lipid droplets in a chimeric model of Alzheimer's disease. Mol Neurodegener. 2021;16:50 pubmed publisher
  27. Birsa N, Ule A, Garone M, Tsang B, Mattedi F, Chong P, et al. FUS-ALS mutants alter FMRP phase separation equilibrium and impair protein translation. Sci Adv. 2021;7: pubmed publisher
  28. Kasahara Y, Osuka S, Takasaki N, Bayasula -, Koya Y, Nakanishi N, et al. Primate-specific POTE-actin gene could play a role in human folliculogenesis by controlling the proliferation of granulosa cells. Cell Death Discov. 2021;7:186 pubmed publisher
  29. Mathieu M, Nevo N, Jouve M, Valenzuela J, Maurin M, Verweij F, et al. Specificities of exosome versus small ectosome secretion revealed by live intracellular tracking of CD63 and CD9. Nat Commun. 2021;12:4389 pubmed publisher
  30. Motozono C, Toyoda M, Zahradník J, Saito A, Nasser H, Tan T, et al. SARS-CoV-2 spike L452R variant evades cellular immunity and increases infectivity. Cell Host Microbe. 2021;29:1124-1136.e11 pubmed publisher
  31. Takahashi K, Kanerva K, Vanharanta L, Almeida Souza L, Lietha D, Olkkonen V, et al. ORP2 couples LDL-cholesterol transport to FAK activation by endosomal cholesterol/PI(4,5)P2 exchange. EMBO J. 2021;40:e106871 pubmed publisher
  32. Nakatani T, Tsujimoto K, Park J, Jo T, Kimura T, Hayama Y, et al. The lysosomal Ragulator complex plays an essential role in leukocyte trafficking by activating myosin II. Nat Commun. 2021;12:3333 pubmed publisher
  33. Singh M, Zangoui P, Yamanaka Y, Kenney L. Genetic code expansion enables visualization of Salmonella type three secretion system components and secreted effectors. elife. 2021;10: pubmed publisher
  34. Zhang Y, Chen Y, Li Y, Huang F, Luo B, Yuan Y, et al. The ORF8 protein of SARS-CoV-2 mediates immune evasion through down-regulating MHC-Ι. Proc Natl Acad Sci U S A. 2021;118: pubmed publisher
  35. Li Y, Chen L, Li L, Sottas C, Petrillo S, Lazaris A, et al. Cholesterol-binding translocator protein TSPO regulates steatosis and bile acid synthesis in nonalcoholic fatty liver disease. iScience. 2021;24:102457 pubmed publisher
  36. Manchanda A, Bonventre J, Bugel S, Chatterjee P, Tanguay R, Johnson C. Truncation of the otoferlin transmembrane domain alters the development of hair cells and reduces membrane docking. Mol Biol Cell. 2021;32:1293-1305 pubmed publisher
  37. Park G, Lee J, Han H, An H, Jin Z, Jeong E, et al. Ablation of dynamin-related protein 1 promotes diabetes-induced synaptic injury in the hippocampus. Cell Death Dis. 2021;12:445 pubmed publisher
  38. Pramanick A, Chakraborti S, Mahata T, Basak M, Das K, Verma S, et al. G protein β5-ATM complexes drive acetaminophen-induced hepatotoxicity. Redox Biol. 2021;43:101965 pubmed publisher
  39. Hess M, Krainer I, Filipek P, Witting B, Gutleben K, Vietor I, et al. Advanced Microscopy for Liver and Gut Ultrastructural Pathology in Patients with MVID and PFIC Caused by MYO5B Mutations. J Clin Med. 2021;10: pubmed publisher
  40. Seol B, Kim Y, Cho Y. Modeling Sialidosis with Neural Precursor Cells Derived from Patient-Derived Induced Pluripotent Stem Cells. Int J Mol Sci. 2021;22: pubmed publisher
  41. Caballero B, Bourdenx M, Luengo E, Díaz A, Sohn P, Chen X, et al. Acetylated tau inhibits chaperone-mediated autophagy and promotes tau pathology propagation in mice. Nat Commun. 2021;12:2238 pubmed publisher
  42. Korovila I, Höhn A, Jung T, Grune T, Ott C. Reduced Liver Autophagy in High-Fat Diet Induced Liver Steatosis in New Zealand Obese Mice. Antioxidants (Basel). 2021;10: pubmed publisher
  43. Bassal M, Liu J, Jankowiak W, Saftig P, Bartsch U. Rapid and Progressive Loss of Multiple Retinal Cell Types in Cathepsin D-Deficient Mice-An Animal Model of CLN10 Disease. Cells. 2021;10: pubmed publisher
  44. Tamargo Gómez I, Martínez García G, Suarez M, Rey V, Fueyo A, Codina Martínez H, et al. ATG4D is the main ATG8 delipidating enzyme in mammalian cells and protects against cerebellar neurodegeneration. Cell Death Differ. 2021;: pubmed publisher
  45. Courtland J, Bradshaw T, Waitt G, Soderblom E, Ho T, Rajab A, et al. Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans. elife. 2021;10: pubmed publisher
  46. Wang J, Liu B, Xu Y, Yang M, Wang C, Song M, et al. Activation of CREB-mediated autophagy by thioperamide ameliorates β-amyloid pathology and cognition in Alzheimer's disease. Aging Cell. 2021;20:e13333 pubmed publisher
  47. De Miranda B, Castro S, Rocha E, Bodle C, Johnson K, Greenamyre J. The industrial solvent trichloroethylene induces LRRK2 kinase activity and dopaminergic neurodegeneration in a rat model of Parkinson's disease. Neurobiol Dis. 2021;153:105312 pubmed publisher
  48. Persaud A, Nair S, Rahman M, Raj R, Weadick B, Nayak D, et al. Facilitative lysosomal transport of bile acids alleviates ER stress in mouse hematopoietic precursors. Nat Commun. 2021;12:1248 pubmed publisher
  49. Li T, Yin Y, Mu N, Wang Y, Liu M, Chen M, et al. Metformin-Enhanced Cardiac AMP-Activated Protein Kinase/Atrogin-1 Pathways Inhibit Charged Multivesicular Body Protein 2B Accumulation in Ischemia-Reperfusion Injury. Front Cell Dev Biol. 2020;8:621509 pubmed publisher
  50. Ryan B, Bengoa Vergniory N, Williamson M, Kirkiz E, Roberts R, Corda G, et al. REST protects dopaminergic neurons from mitochondrial and α-synuclein oligomer pathology in an alpha synuclein overexpressing BAC-transgenic mouse model. J Neurosci. 2021;: pubmed publisher
  51. Tang C, Han J, Dalvi S, Manian K, Winschel L, Volland S, et al. A human model of Batten disease shows role of CLN3 in phagocytosis at the photoreceptor-RPE interface. Commun Biol. 2021;4:161 pubmed publisher
  52. Fleming Martinez A, D xf6 ppler H, Bastea L, Edenfield B, Patel T, Leitges M, et al. Dysfunctional EGFR and oxidative stress-induced PKD1 signaling drive formation of DCLK1+ pancreatic stem cells. iScience. 2021;24:102019 pubmed publisher
  53. Zhou H, Qin L, Jiang Q, Murray K, Zhang H, Li B, et al. Caveolae-mediated Tie2 signaling contributes to CCM pathogenesis in a brain endothelial cell-specific Pdcd10-deficient mouse model. Nat Commun. 2021;12:504 pubmed publisher
  54. Mousavy Gharavy S, Owen B, Millership S, Chabosseau P, Pizza G, Martinez Sanchez A, et al. Sexually dimorphic roles for the type 2 diabetes-associated C2cd4b gene in murine glucose homeostasis. Diabetologia. 2021;64:850-864 pubmed publisher
  55. Kong Y, Zhao X, Qiu M, Lin Y, Feng P, Li S, et al. Tubular Mas receptor mediates lipid-induced kidney injury. Cell Death Dis. 2021;12:110 pubmed publisher
  56. Choi G, Lee H, Chae C, Cho J, Jung Y, Kim J, et al. BNIP3L/NIX-mediated mitophagy protects against glucocorticoid-induced synapse defects. Nat Commun. 2021;12:487 pubmed publisher
  57. Venugopalan V, Al Hashimi A, Rehders M, Golchert J, Reinecke V, Homuth G, et al. The Thyroid Hormone Transporter Mct8 Restricts Cathepsin-Mediated Thyroglobulin Processing in Male Mice through Thyroid Auto-Regulatory Mechanisms That Encompass Autophagy. Int J Mol Sci. 2021;22: pubmed publisher
  58. Chen C, Wang D, Yu Y, Zhao T, Min N, Wu Y, et al. Legumain promotes tubular ferroptosis by facilitating chaperone-mediated autophagy of GPX4 in AKI. Cell Death Dis. 2021;12:65 pubmed publisher
  59. Lafouresse F, Jugele R, Müller S, Doineau M, Duplan Eche V, Espinosa E, et al. Stochastic asymmetric repartition of lytic machinery in dividing CD8+ T cells generates heterogeneous killing behavior. elife. 2021;10: pubmed publisher
  60. Stojakovic A, Trushin S, Sheu A, Khalili L, Chang S, Li X, et al. Partial inhibition of mitochondrial complex I ameliorates Alzheimer's disease pathology and cognition in APP/PS1 female mice. Commun Biol. 2021;4:61 pubmed publisher
  61. Ben Sasson A, Watson J, Sheffler W, Johnson M, Bittleston A, Somasundaram L, et al. Design of biologically active binary protein 2D materials. Nature. 2021;589:468-473 pubmed publisher
  62. Tan C, Chang H, Zhou Q, Yu C, Fu N, Sabapathy K, et al. MOAP-1-mediated dissociation of p62/SQSTM1 bodies releases Keap1 and suppresses Nrf2 signaling. EMBO Rep. 2021;:e50854 pubmed publisher
  63. Snyder M, Sembrat J, Noda K, MYERBURG M, Craig A, Mitash N, et al. Human Lung-Resident Macrophages Colocalize with and Provide Costimulation to PD1hi Tissue-Resident Memory T Cells. Am J Respir Crit Care Med. 2021;203:1230-1244 pubmed publisher
  64. van Berkel A, Santos T, Shaweis H, van Weering J, Toonen R, Verhage M. Loss of MUNC18-1 leads to retrograde transport defects in neurons. J Neurochem. 2021;157:450-466 pubmed publisher
  65. Zang R, Case J, Yutuc E, Ma X, Shen S, Gomez Castro M, et al. Cholesterol 25-hydroxylase suppresses SARS-CoV-2 replication by blocking membrane fusion. Proc Natl Acad Sci U S A. 2020;117:32105-32113 pubmed publisher
  66. Hall Roberts H, Agarwal D, Obst J, Smith T, Monzón Sandoval J, Di Daniel E, et al. TREM2 Alzheimer's variant R47H causes similar transcriptional dysregulation to knockout, yet only subtle functional phenotypes in human iPSC-derived macrophages. Alzheimers Res Ther. 2020;12:151 pubmed publisher
  67. Xu J, Wang Y, Hsu C, Negri S, Tower R, Gao Y, et al. Lysosomal protein surface expression discriminates fat- from bone-forming human mesenchymal precursor cells. elife. 2020;9: pubmed publisher
  68. Bengoa Vergniory N, Faggiani E, Ramos Gonzalez P, Kirkiz E, Connor Robson N, Brown L, et al. CLR01 protects dopaminergic neurons in vitro and in mouse models of Parkinson's disease. Nat Commun. 2020;11:4885 pubmed publisher
  69. Tseng H, Xiong W, Badeti S, Yang Y, Ma M, Liu T, et al. Efficacy of anti-CD147 chimeric antigen receptors targeting hepatocellular carcinoma. Nat Commun. 2020;11:4810 pubmed publisher
  70. Ishii K, Pouzolles M, Chien C, Erwin Cohen R, Kohler M, Qin H, et al. Perforin-deficient CAR T cells recapitulate late-onset inflammatory toxicities observed in patients. J Clin Invest. 2020;130:5425-5443 pubmed publisher
  71. Cignarella F, Filipello F, Bollman B, Cantoni C, Locca A, Mikesell R, et al. TREM2 activation on microglia promotes myelin debris clearance and remyelination in a model of multiple sclerosis. Acta Neuropathol. 2020;140:513-534 pubmed publisher
  72. Lanzillotta C, Zuliani I, Vasavda C, Snyder S, Paul B, Perluigi M, et al. BVR-A Deficiency Leads to Autophagy Impairment through the Dysregulation of AMPK/mTOR Axis in the Brain-Implications for Neurodegeneration. Antioxidants (Basel). 2020;9: pubmed publisher
  73. Bennstein S, Weinhold S, Manser A, Scherenschlich N, Noll A, Raba K, et al. Umbilical cord blood-derived ILC1-like cells constitute a novel precursor for mature KIR+NKG2A- NK cells. elife. 2020;9: pubmed publisher
  74. Escamilla Ayala A, Sannerud R, Mondin M, Poersch K, Vermeire W, Paparelli L, et al. Super-resolution microscopy reveals majorly mono- and dimeric presenilin1/γ-secretase at the cell surface. elife. 2020;9: pubmed publisher
  75. Silva M, Nandi G, Tentarelli S, Gurrell I, Jamier T, Lucente D, et al. Prolonged tau clearance and stress vulnerability rescue by pharmacological activation of autophagy in tauopathy neurons. Nat Commun. 2020;11:3258 pubmed publisher
  76. Long Z, Chen J, Zhao Y, Zhou W, Yao Q, Wang Y, et al. Dynamic changes of autophagic flux induced by Abeta in the brain of postmortem Alzheimer's disease patients, animal models and cell models. Aging (Albany NY). 2020;12:10912-10930 pubmed publisher
  77. Gunesch J, Dixon A, Ebrahim T, Berrien Elliott M, Tatineni S, Kumar T, et al. CD56 regulates human NK cell cytotoxicity through Pyk2. elife. 2020;9: pubmed publisher
  78. Saha P, Shumate J, Caldwell J, Elghobashi Meinhardt N, Lu A, Zhang L, et al. Inter-domain dynamics drive cholesterol transport by NPC1 and NPC1L1 proteins. elife. 2020;9: pubmed publisher
  79. Yamamoto K, Venida A, Yano J, Biancur D, Kakiuchi M, Gupta S, et al. Autophagy promotes immune evasion of pancreatic cancer by degrading MHC-I. Nature. 2020;581:100-105 pubmed publisher
  80. Brattås P, Hersbach B, Madsen S, Petri R, Jakobsson J, Pircs K. Impact of differential and time-dependent autophagy activation on therapeutic efficacy in a model of Huntington disease. Autophagy. 2021;17:1316-1329 pubmed publisher
  81. Du T, Zhu G, Chen Y, Shi L, Liu D, Liu Y, et al. Anterior thalamic nucleus stimulation protects hippocampal neurons by activating autophagy in epileptic monkeys. Aging (Albany NY). 2020;12:6324-6339 pubmed publisher
  82. Adapala N, Swarnkar G, Arra M, Shen J, Mbalaviele G, Ke K, et al. Inflammatory osteolysis is regulated by site-specific ISGylation of the scaffold protein NEMO. elife. 2020;9: pubmed publisher
  83. Jaynes J, Sable R, Ronzetti M, Bautista W, Knotts Z, Abisoye Ogunniyan A, et al. Mannose receptor (CD206) activation in tumor-associated macrophages enhances adaptive and innate antitumor immune responses. Sci Transl Med. 2020;12: pubmed publisher
  84. Okumura G, Iguchi Manaka A, Murata R, Yamashita Kanemaru Y, Shibuya A, Shibuya K. Tumor-derived soluble CD155 inhibits DNAM-1-mediated antitumor activity of natural killer cells. J Exp Med. 2020;217: pubmed publisher
  85. Meilandt W, Ngu H, Gogineni A, Lalehzadeh G, Lee S, Srinivasan K, et al. Trem2 Deletion Reduces Late-Stage Amyloid Plaque Accumulation, Elevates the Aβ42:Aβ40 Ratio, and Exacerbates Axonal Dystrophy and Dendritic Spine Loss in the PS2APP Alzheimer's Mouse Model. J Neurosci. 2020;40:1956-1974 pubmed publisher
  86. Deng M, Chen Z, Tan J, Liu H. Down-regulation of SLC35C1 induces colon cancer through over-activating Wnt pathway. J Cell Mol Med. 2020;24:3079-3090 pubmed publisher
  87. Zhang S, Hu L, Jiang J, Li H, Wu Q, Ooi K, et al. HMGB1/RAGE axis mediates stress-induced RVLM neuroinflammation in mice via impairing mitophagy flux in microglia. J Neuroinflammation. 2020;17:15 pubmed publisher
  88. Wang J, Ba G, Han Y, Ming S, Wang M, Fu P, et al. Cyclic GMP-AMP synthase is essential for cytosolic double-stranded DNA and fowl adenovirus serotype 4 triggered innate immune responses in chickens. Int J Biol Macromol. 2020;146:497-507 pubmed publisher
  89. Even A, Morelli G, Broix L, Scaramuzzino C, Turchetto S, Gladwyn Ng I, et al. ATAT1-enriched vesicles promote microtubule acetylation via axonal transport. Sci Adv. 2019;5:eaax2705 pubmed publisher
  90. Suzuki D, Flahou C, Yoshikawa N, Stirblyte I, Hayashi Y, Sawaguchi A, et al. iPSC-Derived Platelets Depleted of HLA Class I Are Inert to Anti-HLA Class I and Natural Killer Cell Immunity. Stem Cell Reports. 2020;14:49-59 pubmed publisher
  91. Palomo Guerrero M, Fadó R, Casas M, Pérez Montero M, Baena M, Helmer P, et al. Sensing of nutrients by CPT1C regulates late endosome/lysosome anterograde transport and axon growth. elife. 2019;8: pubmed publisher
  92. Stévenin V, Chang Y, Le Toquin Y, Duchateau M, Gianetto Q, Luk C, et al. Dynamic Growth and Shrinkage of the Salmonella-Containing Vacuole Determines the Intracellular Pathogen Niche. Cell Rep. 2019;29:3958-3973.e7 pubmed publisher
  93. Cserép C, Pósfai B, Lénárt N, Fekete R, László Z, Lele Z, et al. Microglia monitor and protect neuronal function through specialized somatic purinergic junctions. Science. 2020;367:528-537 pubmed publisher
  94. Bergkvist L, Du Z, Elovsson G, Appelqvist H, Itzhaki L, Kumita J, et al. Mapping pathogenic processes contributing to neurodegeneration in Drosophila models of Alzheimer's disease. FEBS Open Bio. 2020;10:338-350 pubmed publisher
  95. Lynn R, Weber E, Sotillo E, Gennert D, Xu P, Good Z, et al. c-Jun overexpression in CAR T cells induces exhaustion resistance. Nature. 2019;576:293-300 pubmed publisher
  96. Yokoi A, Villar Prados A, Oliphint P, Zhang J, Song X, De Hoff P, et al. Mechanisms of nuclear content loading to exosomes. Sci Adv. 2019;5:eaax8849 pubmed publisher
  97. Zhang Y, Cao Y, Chen J, Qin H, Yang L. A New Possible Mechanism by Which Punicalagin Protects against Liver Injury Induced by Type 2 Diabetes Mellitus: Upregulation of Autophagy via the Akt/FoxO3a Signaling Pathway. J Agric Food Chem. 2019;: pubmed publisher
  98. Datta P, Hendrickson B, Brendalen S, Ruffcorn A, Seo S. The myosin-tail homology domain of centrosomal protein 290 is essential for protein confinement between the inner and outer segments in photoreceptors. J Biol Chem. 2019;294:19119-19136 pubmed publisher
  99. Lu Y, Zheng Y, Coyaud E, Zhang C, Selvabaskaran A, Yu Y, et al. Palmitoylation of NOD1 and NOD2 is required for bacterial sensing. Science. 2019;366:460-467 pubmed publisher
  100. Laflamme C, McKeever P, Kumar R, Schwartz J, Kolahdouzan M, Chen C, et al. Implementation of an antibody characterization procedure and application to the major ALS/FTD disease gene C9ORF72. elife. 2019;8: pubmed publisher
  101. Buchwalter A, Schulte R, Tsai H, Capitanio J, Hetzer M. Selective clearance of the inner nuclear membrane protein emerin by vesicular transport during ER stress. elife. 2019;8: pubmed publisher
  102. Majer O, Liu B, Woo B, Kreuk L, Van Dis E, Barton G. Release from UNC93B1 reinforces the compartmentalized activation of select TLRs. Nature. 2019;575:371-374 pubmed publisher
  103. Majer O, Liu B, Kreuk L, Krogan N, Barton G. UNC93B1 recruits syntenin-1 to dampen TLR7 signalling and prevent autoimmunity. Nature. 2019;575:366-370 pubmed publisher
  104. Riessland M, Kolisnyk B, Kim T, Cheng J, Ni J, Pearson J, et al. Loss of SATB1 Induces p21-Dependent Cellular Senescence in Post-mitotic Dopaminergic Neurons. Cell Stem Cell. 2019;25:514-530.e8 pubmed publisher
  105. Liao Y, Fernandopulle M, Wang G, Choi H, Hao L, Drerup C, et al. RNA Granules Hitchhike on Lysosomes for Long-Distance Transport, Using Annexin A11 as a Molecular Tether. Cell. 2019;179:147-164.e20 pubmed publisher
  106. Höglinger D, Burgoyne T, Sanchez Heras E, Hartwig P, Colaco A, Newton J, et al. NPC1 regulates ER contacts with endocytic organelles to mediate cholesterol egress. Nat Commun. 2019;10:4276 pubmed publisher
  107. Moreno Blas D, Gorostieta Salas E, Pommer Alba A, Muciño Hernández G, Gerónimo Olvera C, Maciel Barón L, et al. Cortical neurons develop a senescence-like phenotype promoted by dysfunctional autophagy. Aging (Albany NY). 2019;11:6175-6198 pubmed publisher
  108. Yagensky O, Kohansal Nodehi M, Gunaseelan S, Rabe T, Zafar S, Zerr I, et al. Increased expression of heme-binding protein 1 early in Alzheimer's disease is linked to neurotoxicity. elife. 2019;8: pubmed publisher
  109. Pech M, Fong L, Villalta J, Chan L, Kharbanda S, O Brien J, et al. Systematic identification of cancer cell vulnerabilities to natural killer cell-mediated immune surveillance. elife. 2019;8: pubmed publisher
  110. Wei J, Luo C, Wang Y, Guo Y, Dai H, Tong C, et al. PD-1 silencing impairs the anti-tumor function of chimeric antigen receptor modified T cells by inhibiting proliferation activity. J Immunother Cancer. 2019;7:209 pubmed publisher
  111. Meckiff B, Ladell K, McLaren J, Ryan G, Leese A, James E, et al. Primary EBV Infection Induces an Acute Wave of Activated Antigen-Specific Cytotoxic CD4+ T Cells. J Immunol. 2019;203:1276-1287 pubmed publisher
  112. Jennewein M, Goldfarb I, Dolatshahi S, Cosgrove C, Noelette F, Krykbaeva M, et al. Fc Glycan-Mediated Regulation of Placental Antibody Transfer. Cell. 2019;: pubmed publisher
  113. Gauthier L, Morel A, Anceriz N, Rossi B, Blanchard Alvarez A, Grondin G, et al. Multifunctional Natural Killer Cell Engagers Targeting NKp46 Trigger Protective Tumor Immunity. Cell. 2019;177:1701-1713.e16 pubmed publisher
  114. Xiao J, Luo J, Hu A, Xiao T, Li M, Kong Z, et al. Cholesterol transport through the peroxisome-ER membrane contacts tethered by PI(4,5)P2 and extended synaptotagmins. Sci China Life Sci. 2019;: pubmed publisher
  115. Pietila M, Sahgal P, Peuhu E, Jäntti N, Paatero I, Närvä E, et al. SORLA regulates endosomal trafficking and oncogenic fitness of HER2. Nat Commun. 2019;10:2340 pubmed publisher
  116. Slobodnyuk K, Radic N, Ivanova S, Lladó A, Trempolec N, Zorzano A, et al. Autophagy-induced senescence is regulated by p38α signaling. Cell Death Dis. 2019;10:376 pubmed publisher
  117. Sahgal P, Alanko J, Icha J, Paatero I, Hamidi H, Arjonen A, et al. GGA2 and RAB13 promote activity-dependent β1-integrin recycling. J Cell Sci. 2019;132: pubmed publisher
  118. Fernandez I, Baxter R, Garcia Perez J, Vendrame E, Ranganath T, Kong D, et al. A novel human IL2RB mutation results in T and NK cell-driven immune dysregulation. J Exp Med. 2019;216:1255-1267 pubmed publisher
  119. Guo M, Hartlova A, Gierlinski M, Prescott A, Castellvi J, Losa J, et al. Triggering MSR1 promotes JNK-mediated inflammation in IL-4-activated macrophages. EMBO J. 2019;38: pubmed publisher
  120. Ho P, Leung C, Liu H, Pang S, Lam C, Xian J, et al. Age-dependent accumulation of oligomeric SNCA/α-synuclein from impaired degradation in mutant LRRK2 knockin mouse model of Parkinson disease: role for therapeutic activation of chaperone-mediated autophagy (CMA). Autophagy. 2019;:1-24 pubmed publisher
  121. Saito T, Kuma A, Sugiura Y, Ichimura Y, Obata M, Kitamura H, et al. Autophagy regulates lipid metabolism through selective turnover of NCoR1. Nat Commun. 2019;10:1567 pubmed publisher
  122. Zhang P, Kishimoto Y, Grammatikakis I, Gottimukkala K, Cutler R, Zhang S, et al. Senolytic therapy alleviates Aβ-associated oligodendrocyte progenitor cell senescence and cognitive deficits in an Alzheimer's disease model. Nat Neurosci. 2019;22:719-728 pubmed publisher
  123. Sapmaz A, Berlin I, Bos E, Wijdeven R, Janssen H, Konietzny R, et al. USP32 regulates late endosomal transport and recycling through deubiquitylation of Rab7. Nat Commun. 2019;10:1454 pubmed publisher
  124. Quinney K, Frankel E, Shankar R, Kasberg W, Luong P, Audhya A. Growth factor stimulation promotes multivesicular endosome biogenesis by prolonging recruitment of the late-acting ESCRT machinery. Proc Natl Acad Sci U S A. 2019;116:6858-6867 pubmed publisher
  125. Cabrera J, Manivanh R, North B, Leib D. The ESCRT-Related ATPase Vps4 Is Modulated by Interferon during Herpes Simplex Virus 1 Infection. MBio. 2019;10: pubmed publisher
  126. Bae D, Moore K, Mella J, Hayashi S, Hollien J. Degradation of Blos1 mRNA by IRE1 repositions lysosomes and protects cells from stress. J Cell Biol. 2019;218:1118-1127 pubmed publisher
  127. Losier T, Akuma M, McKee Muir O, LeBlond N, Suk Y, Alsaadi R, et al. AMPK Promotes Xenophagy through Priming of Autophagic Kinases upon Detection of Bacterial Outer Membrane Vesicles. Cell Rep. 2019;26:2150-2165.e5 pubmed publisher
  128. Zhang J, He J, Johnson J, Rahman F, Gavathiotis E, Cuervo A, et al. Chaperone-Mediated Autophagy Upregulation Rescues Megalin Expression and Localization in Cystinotic Proximal Tubule Cells. Front Endocrinol (Lausanne). 2019;10:21 pubmed publisher
  129. Yeshaw W, van der Zwaag M, Pinto F, Lahaye L, Faber A, Gómez Sánchez R, et al. Human VPS13A is associated with multiple organelles and influences mitochondrial morphology and lipid droplet motility. elife. 2019;8: pubmed publisher
  130. Song K, Gras C, Capin G, Gimber N, Lehmann M, Mohd S, et al. A SEPT1-based scaffold is required for Golgi integrity and function. J Cell Sci. 2019;132: pubmed publisher
  131. Montel Hagen A, Seet C, Li S, Chick B, Zhu Y, Chang P, et al. Organoid-Induced Differentiation of Conventional T Cells from Human Pluripotent Stem Cells. Cell Stem Cell. 2019;24:376-389.e8 pubmed publisher
  132. Adams J, Feuerborn M, Molina J, Wilden A, Adhikari B, Budden T, et al. Autophagy-lysosome pathway alterations and alpha-synuclein up-regulation in the subtype of neuronal ceroid lipofuscinosis, CLN5 disease. Sci Rep. 2019;9:151 pubmed publisher
  133. Xu Y, Ren J, He X, Chen H, Wei T, Feng W. YWHA/14-3-3 proteins recognize phosphorylated TFEB by a noncanonical mode for controlling TFEB cytoplasmic localization. Autophagy. 2019;15:1017-1030 pubmed publisher
  134. Wang D, Xu Q, Yuan Q, Jia M, Niu H, Liu X, et al. Proteasome inhibition boosts autophagic degradation of ubiquitinated-AGR2 and enhances the antitumor efficiency of bevacizumab. Oncogene. 2019;38:3458-3474 pubmed publisher
  135. Hallner A, Bernson E, Hussein B, Sander F, Brune M, Aurelius J, et al. The HLA-B -21 dimorphism impacts on NK cell education and clinical outcome of immunotherapy in acute myeloid leukemia. Blood. 2019;: pubmed publisher
  136. Hui L, Soliman M, Geiger N, Miller N, Afghah Z, Lakpa K, et al. Acidifying Endolysosomes Prevented Low-Density Lipoprotein-Induced Amyloidogenesis. J Alzheimers Dis. 2019;67:393-410 pubmed publisher
  137. Wang X, Piersma S, Nelson C, Dai Y, Christensen T, Lazear E, et al. A herpesvirus encoded Qa-1 mimic inhibits natural killer cell cytotoxicity through CD94/NKG2A receptor engagement. elife. 2018;7: pubmed publisher
  138. Atakpa P, Thillaiappan N, Mataragka S, Prole D, Taylor C. IP3 Receptors Preferentially Associate with ER-Lysosome Contact Sites and Selectively Deliver Ca2+ to Lysosomes. Cell Rep. 2018;25:3180-3193.e7 pubmed publisher
  139. Andre P, Denis C, Soulas C, Bourbon Caillet C, Lopez J, Arnoux T, et al. Anti-NKG2A mAb Is a Checkpoint Inhibitor that Promotes Anti-tumor Immunity by Unleashing Both T and NK Cells. Cell. 2018;175:1731-1743.e13 pubmed publisher
  140. Theisen D, Davidson J, Briseño C, Gargaro M, Lauron E, Wang Q, et al. WDFY4 is required for cross-presentation in response to viral and tumor antigens. Science. 2018;362:694-699 pubmed publisher
  141. Kuranda K, Jean Alphonse P, Leborgne C, Hardet R, Collaud F, Marmier S, et al. Exposure to wild-type AAV drives distinct capsid immunity profiles in humans. J Clin Invest. 2018;128:5267-5279 pubmed publisher
  142. Shi G, OZOG S, Torbett B, Compton A. mTOR inhibitors lower an intrinsic barrier to virus infection mediated by IFITM3. Proc Natl Acad Sci U S A. 2018;115:E10069-E10078 pubmed publisher
  143. Bradley T, Peppa D, Pedroza Pacheco I, Li D, Cain D, Henao R, et al. RAB11FIP5 Expression and Altered Natural Killer Cell Function Are Associated with Induction of HIV Broadly Neutralizing Antibody Responses. Cell. 2018;175:387-399.e17 pubmed publisher
  144. Qiu T, Pei P, Yao X, Jiang L, Wei S, Wang Z, et al. Taurine attenuates arsenic-induced pyroptosis and nonalcoholic steatohepatitis by inhibiting the autophagic-inflammasomal pathway. Cell Death Dis. 2018;9:946 pubmed publisher
  145. Fauster A, Rebsamen M, Willmann K, César Razquin A, Girardi E, Bigenzahn J, et al. Systematic genetic mapping of necroptosis identifies SLC39A7 as modulator of death receptor trafficking. Cell Death Differ. 2019;26:1138-1155 pubmed publisher
  146. Son S, Park S, Lee H, Siddiqi F, Lee J, Menzies F, et al. Leucine Signals to mTORC1 via Its Metabolite Acetyl-Coenzyme A. Cell Metab. 2019;29:192-201.e7 pubmed publisher
  147. Kim H, Mun Y, Lee K, Park Y, Park J, Park J, et al. T cell microvilli constitute immunological synaptosomes that carry messages to antigen-presenting cells. Nat Commun. 2018;9:3630 pubmed publisher
  148. Nnah I, Wang B, Saqcena C, Weber G, Bonder E, Bagley D, et al. TFEB-driven endocytosis coordinates MTORC1 signaling and autophagy. Autophagy. 2019;15:151-164 pubmed publisher
  149. Walwyn Brown K, Guldevall K, Saeed M, Pende D, Önfelt B, MacDonald A, et al. Human NK Cells Lyse Th2-Polarizing Dendritic Cells via NKp30 and DNAM-1. J Immunol. 2018;201:2028-2041 pubmed publisher
  150. Massaro G, Mattar C, Wong A, Sirka E, Buckley S, Herbert B, et al. Fetal gene therapy for neurodegenerative disease of infants. Nat Med. 2018;24:1317-1323 pubmed publisher
  151. Mahaweni N, Ehlers F, Sarkar S, Janssen J, Tilanus M, Bos G, et al. NKG2A Expression Is Not per se Detrimental for the Anti-Multiple Myeloma Activity of Activated Natural Killer Cells in an In Vitro System Mimicking the Tumor Microenvironment. Front Immunol. 2018;9:1415 pubmed publisher
  152. Wang W, Xia Z, Farre J, Subramani S. TRIM37 deficiency induces autophagy through deregulating the MTORC1-TFEB axis. Autophagy. 2018;14:1574-1585 pubmed publisher
  153. Messenger S, Woo S, Sun Z, Martin T. A Ca2+-stimulated exosome release pathway in cancer cells is regulated by Munc13-4. J Cell Biol. 2018;217:2877-2890 pubmed publisher
  154. Alissafi T, Hatzioannou A, Mintzas K, Barouni R, Banos A, Sormendi S, et al. Autophagy orchestrates the regulatory program of tumor-associated myeloid-derived suppressor cells. J Clin Invest. 2018;128:3840-3852 pubmed publisher
  155. Pellegrini L, Hauser D, Li Y, Mamais A, Beilina A, Kumaran R, et al. Proteomic analysis reveals co-ordinated alterations in protein synthesis and degradation pathways in LRRK2 knockout mice. Hum Mol Genet. 2018;27:3257-3271 pubmed publisher
  156. Galperin M, Farenc C, Mukhopadhyay M, Jayasinghe D, Decroos A, Benati D, et al. CD4+ T cell-mediated HLA class II cross-restriction in HIV controllers. Sci Immunol. 2018;3: pubmed publisher
  157. Capuano C, Battella S, Pighi C, Franchitti L, Turriziani O, Morrone S, et al. Tumor-Targeting Anti-CD20 Antibodies Mediate In Vitro Expansion of Memory Natural Killer Cells: Impact of CD16 Affinity Ligation Conditions and In Vivo Priming. Front Immunol. 2018;9:1031 pubmed publisher
  158. Wang L, Feng Y, Yan D, Qin L, Grati M, Mittal R, et al. A dominant variant in the PDE1C gene is associated with nonsyndromic hearing loss. Hum Genet. 2018;137:437-446 pubmed publisher
  159. Baumgartner C, Toifl S, Farlik M, Halbritter F, Scheicher R, Fischer I, et al. An ERK-Dependent Feedback Mechanism Prevents Hematopoietic Stem Cell Exhaustion. Cell Stem Cell. 2018;22:879-892.e6 pubmed publisher
  160. Vera Ramirez L, Vodnala S, Nini R, Hunter K, Green J. Autophagy promotes the survival of dormant breast cancer cells and metastatic tumour recurrence. Nat Commun. 2018;9:1944 pubmed publisher
  161. Quaranta V, Rainer C, Nielsen S, Raymant M, Ahmed M, Engle D, et al. Macrophage-Derived Granulin Drives Resistance to Immune Checkpoint Inhibition in Metastatic Pancreatic Cancer. Cancer Res. 2018;78:4253-4269 pubmed publisher
  162. Sedlyarov V, Eichner R, Girardi E, Essletzbichler P, Goldmann U, Nunes Hasler P, et al. The Bicarbonate Transporter SLC4A7 Plays a Key Role in Macrophage Phagosome Acidification. Cell Host Microbe. 2018;23:766-774.e5 pubmed publisher
  163. Wang E, Pjechova M, Nightingale K, Vlahava V, Patel M, Růcková E, et al. Suppression of costimulation by human cytomegalovirus promotes evasion of cellular immune defenses. Proc Natl Acad Sci U S A. 2018;115:4998-5003 pubmed publisher
  164. Liu L, An D, Xu J, Shao B, Li X, Shi J. Ac2-26 Induces IKKβ Degradation Through Chaperone-Mediated Autophagy Via HSPB1 in NCM-Treated Microglia. Front Mol Neurosci. 2018;11:76 pubmed publisher
  165. Skowyra M, Schlesinger P, Naismith T, Hanson P. Triggered recruitment of ESCRT machinery promotes endolysosomal repair. Science. 2018;360: pubmed publisher
  166. Zhang C, Peng Y, Hublitz P, Zhang H, Dong T. Genetic abrogation of immune checkpoints in antigen-specific cytotoxic T-lymphocyte as a potential alternative to blockade immunotherapy. Sci Rep. 2018;8:5549 pubmed publisher
  167. Takada N, Naito T, Inoue T, Nakayama K, Takatsu H, Shin H. Phospholipid-flipping activity of P4-ATPase drives membrane curvature. EMBO J. 2018;37: pubmed publisher
  168. Lim J, Lim J, Kim G, Levine R. Myristoylated methionine sulfoxide reductase A is a late endosomal protein. J Biol Chem. 2018;293:7355-7366 pubmed publisher
  169. Leeman D, Hebestreit K, Ruetz T, Webb A, McKay A, Pollina E, et al. Lysosome activation clears aggregates and enhances quiescent neural stem cell activation during aging. Science. 2018;359:1277-1283 pubmed publisher
  170. Zhao Y, Wu X, Li X, Jiang L, Gui X, Liu Y, et al. TREM2 Is a Receptor for β-Amyloid that Mediates Microglial Function. Neuron. 2018;97:1023-1031.e7 pubmed publisher
  171. Marrone L, Bus C, Schöndorf D, Fitzgerald J, Kübler M, Schmid B, et al. Generation of iPSCs carrying a common LRRK2 risk allele for in vitro modeling of idiopathic Parkinson's disease. PLoS ONE. 2018;13:e0192497 pubmed publisher
  172. Oei V, Siernicka M, Graczyk Jarzynka A, Hoel H, Yang W, Palacios D, et al. Intrinsic Functional Potential of NK-Cell Subsets Constrains Retargeting Driven by Chimeric Antigen Receptors. Cancer Immunol Res. 2018;6:467-480 pubmed publisher
  173. Yurchenko M, Skjesol A, Ryan L, Richard G, Kandasamy R, Wang N, et al. SLAMF1 is required for TLR4-mediated TRAM-TRIF-dependent signaling in human macrophages. J Cell Biol. 2018;217:1411-1429 pubmed publisher
  174. Carpier J, Zucchetti A, Bataille L, Dogniaux S, Shafaq Zadah M, Bardin S, et al. Rab6-dependent retrograde traffic of LAT controls immune synapse formation and T cell activation. J Exp Med. 2018;215:1245-1265 pubmed publisher
  175. Mukadam A, Breusegem S, Seaman M. Analysis of novel endosome-to-Golgi retrieval genes reveals a role for PLD3 in regulating endosomal protein sorting and amyloid precursor protein processing. Cell Mol Life Sci. 2018;75:2613-2625 pubmed publisher
  176. Lagrange B, Benaoudia S, Wallet P, Magnotti F, Provost A, Michal F, et al. Human caspase-4 detects tetra-acylated LPS and cytosolic Francisella and functions differently from murine caspase-11. Nat Commun. 2018;9:242 pubmed publisher
  177. Cox C, Lu R, Salcin K, Wilson J. The Endosomal Protein Endotubin Is Required for Enterocyte Differentiation. Cell Mol Gastroenterol Hepatol. 2018;5:145-156 pubmed publisher
  178. Fletcher K, Ulferts R, Jacquin E, Veith T, Gammoh N, Arasteh J, et al. The WD40 domain of ATG16L1 is required for its non-canonical role in lipidation of LC3 at single membranes. EMBO J. 2018;37: pubmed publisher
  179. Pizzolla A, Nguyen T, Sant S, Jaffar J, Loudovaris T, Mannering S, et al. Influenza-specific lung-resident memory T cells are proliferative and polyfunctional and maintain diverse TCR profiles. J Clin Invest. 2018;128:721-733 pubmed publisher
  180. Shroff A, Sequeira R, Patel V, Reddy K. Knockout of autophagy gene, ATG5 in mice vaginal cells abrogates cytokine response and pathogen clearance during vaginal infection of Candida albicans. Cell Immunol. 2018;324:59-73 pubmed publisher
  181. Cribbs A, Hookway E, Wells G, Lindow M, Obad S, Oerum H, et al. Inhibition of histone H3K27 demethylases selectively modulates inflammatory phenotypes of natural killer cells. J Biol Chem. 2018;293:2422-2437 pubmed publisher
  182. Zhou K, Enkhjargal B, Xie Z, Sun C, Wu L, Malaguit J, et al. Dihydrolipoic Acid Inhibits Lysosomal Rupture and NLRP3 Through Lysosome-Associated Membrane Protein-1/Calcium/Calmodulin-Dependent Protein Kinase II/TAK1 Pathways After Subarachnoid Hemorrhage in Rat. Stroke. 2018;49:175-183 pubmed publisher
  183. Pugh J, Nemat Gorgani N, Norman P, Guethlein L, Parham P. Human NK Cells Downregulate Zap70 and Syk in Response to Prolonged Activation or DNA Damage. J Immunol. 2018;200:1146-1158 pubmed publisher
  184. Lee S, Bazick H, Chittoor Vinod V, Al Salihi M, Xia G, Notterpek L. Elevated Peripheral Myelin Protein 22, Reduced Mitotic Potential, and Proteasome Impairment in Dermal Fibroblasts from Charcot-Marie-Tooth Disease Type 1A Patients. Am J Pathol. 2018;188:728-738 pubmed publisher
  185. Krey J, Dumont R, Wilmarth P, David L, Johnson K, Barr Gillespie P. ELMOD1 Stimulates ARF6-GTP Hydrolysis to Stabilize Apical Structures in Developing Vestibular Hair Cells. J Neurosci. 2018;38:843-857 pubmed publisher
  186. Iseka F, Goetz B, Mushtaq I, An W, Cypher L, Bielecki T, et al. Role of the EHD Family of Endocytic Recycling Regulators for TCR Recycling and T Cell Function. J Immunol. 2018;200:483-499 pubmed publisher
  187. Jimenez Orgaz A, Kvainickas A, Nägele H, Denner J, Eimer S, Dengjel J, et al. Control of RAB7 activity and localization through the retromer-TBC1D5 complex enables RAB7-dependent mitophagy. EMBO J. 2018;37:235-254 pubmed publisher
  188. Licon Munoz Y, Michel V, Fordyce C, Parra K. F-actin reorganization by V-ATPase inhibition in prostate cancer. Biol Open. 2017;6:1734-1744 pubmed publisher
  189. Moody H, Lind M, Maher S. MicroRNA-31 Regulates Chemosensitivity in Malignant Pleural Mesothelioma. Mol Ther Nucleic Acids. 2017;8:317-329 pubmed publisher
  190. Bartolomeo R, Cinque L, De Leonibus C, Forrester A, Salzano A, Monfregola J, et al. mTORC1 hyperactivation arrests bone growth in lysosomal storage disorders by suppressing autophagy. J Clin Invest. 2017;127:3717-3729 pubmed publisher
  191. Rong X, Wang B, Palladino E, de Aguiar Vallim T, Ford D, Tontonoz P. ER phospholipid composition modulates lipogenesis during feeding and in obesity. J Clin Invest. 2017;127:3640-3651 pubmed publisher
  192. Liu S, Liu H, Johnston A, Hanna Addams S, Reynoso E, Xiang Y, et al. MLKL forms disulfide bond-dependent amyloid-like polymers to induce necroptosis. Proc Natl Acad Sci U S A. 2017;114:E7450-E7459 pubmed publisher
  193. Burr M, Sparbier C, Chan Y, Williamson J, Woods K, Beavis P, et al. CMTM6 maintains the expression of PD-L1 and regulates anti-tumour immunity. Nature. 2017;549:101-105 pubmed publisher
  194. Zhang X, Lian X, Dai Z, Zheng H, Chen X, Zheng Y. ?3-Deletion Isoform of HLA-A11 Modulates Cytotoxicity of NK Cells: Correlations with HIV-1 Infection of Cells. J Immunol. 2017;199:2030-2042 pubmed publisher
  195. Wei J, Xu H, Meng W. Noncentrosomal microtubules regulate autophagosome transport through CAMSAP2-EB1 cross-talk. FEBS Lett. 2017;591:2379-2393 pubmed publisher
  196. Wang W, Xia Z, Farré J, Subramani S. TRIM37, a novel E3 ligase for PEX5-mediated peroxisomal matrix protein import. J Cell Biol. 2017;216:2843-2858 pubmed publisher
  197. Gorvel L, Korenfeld D, Tung T, Klechevsky E. Dendritic Cell-Derived IL-32?: A Novel Inhibitory Cytokine of NK Cell Function. J Immunol. 2017;199:1290-1300 pubmed publisher
  198. Olivares O, Mayers J, Gouirand V, Torrence M, Gicquel T, Borge L, et al. Collagen-derived proline promotes pancreatic ductal adenocarcinoma cell survival under nutrient limited conditions. Nat Commun. 2017;8:16031 pubmed publisher
  199. Ott P, Hu Z, Keskin D, Shukla S, Sun J, Bozym D, et al. An immunogenic personal neoantigen vaccine for patients with melanoma. Nature. 2017;547:217-221 pubmed publisher
  200. Laviolette L, Mermoud J, Calvo I, Olson N, Boukhali M, Steinlein O, et al. Negative regulation of EGFR signalling by the human folliculin tumour suppressor protein. Nat Commun. 2017;8:15866 pubmed publisher
  201. Alissafi T, Banos A, Boon L, Sparwasser T, Ghigo A, Wing K, et al. Tregs restrain dendritic cell autophagy to ameliorate autoimmunity. J Clin Invest. 2017;127:2789-2804 pubmed publisher
  202. Shiba Fukushima K, Ishikawa K, Inoshita T, Izawa N, Takanashi M, Sato S, et al. Evidence that phosphorylated ubiquitin signaling is involved in the etiology of Parkinson's disease. Hum Mol Genet. 2017;26:3172-3185 pubmed publisher
  203. Vidoni C, Secomandi E, Castiglioni A, Melone M, Isidoro C. Resveratrol protects neuronal-like cells expressing mutant Huntingtin from dopamine toxicity by rescuing ATG4-mediated autophagosome formation. Neurochem Int. 2018;117:174-187 pubmed publisher
  204. Sakamaki J, Wilkinson S, Hahn M, Tasdemir N, O Prey J, Clark W, et al. Bromodomain Protein BRD4 Is a Transcriptional Repressor of Autophagy and Lysosomal Function. Mol Cell. 2017;66:517-532.e9 pubmed publisher
  205. Yamashita Y, Anczurowski M, Nakatsugawa M, Tanaka M, Kagoya Y, Sinha A, et al. HLA-DP84Gly constitutively presents endogenous peptides generated by the class I antigen processing pathway. Nat Commun. 2017;8:15244 pubmed publisher
  206. Geraets R, Langin L, Cain J, Parker C, Beraldi R, Kovács A, et al. A tailored mouse model of CLN2 disease: A nonsense mutant for testing personalized therapies. PLoS ONE. 2017;12:e0176526 pubmed publisher
  207. Stevanović S, Pasetto A, Helman S, Gartner J, Prickett T, Howie B, et al. Landscape of immunogenic tumor antigens in successful immunotherapy of virally induced epithelial cancer. Science. 2017;356:200-205 pubmed publisher
  208. Allison R, Edgar J, Pearson G, Rizo T, Newton T, Günther S, et al. Defects in ER-endosome contacts impact lysosome function in hereditary spastic paraplegia. J Cell Biol. 2017;216:1337-1355 pubmed publisher
  209. Kaczmarek D, Kokordelis P, Kramer B, Glässner A, Wolter F, Goeser F, et al. Alterations of the NK cell pool in HIV/HCV co-infection. PLoS ONE. 2017;12:e0174465 pubmed publisher
  210. Wilhelm L, Wendling C, Vedie B, Kobayashi T, Chenard M, Tomasetto C, et al. STARD3 mediates endoplasmic reticulum-to-endosome cholesterol transport at membrane contact sites. EMBO J. 2017;36:1412-1433 pubmed publisher
  211. Li Q, Xia S, Fang H, Pan J, Jia Y, Deng G. VEGF treatment promotes bone marrow-derived CXCR4+ mesenchymal stromal stem cell differentiation into vessel endothelial cells. Exp Ther Med. 2017;13:449-454 pubmed publisher
  212. Suresh S, Chavalmane A, Dj V, Yarreiphang H, Rai S, Paul A, et al. A novel autophagy modulator 6-Bio ameliorates SNCA/?-synuclein toxicity. Autophagy. 2017;13:1221-1234 pubmed publisher
  213. Kang H, Park J, Choi K, Kim Y, Choi H, Jung C, et al. Chemical screening identifies ATM as a target for alleviating senescence. Nat Chem Biol. 2017;13:616-623 pubmed publisher
  214. Ghadially H, Brown L, Lloyd C, Lewis L, LEWIS A, Dillon J, et al. MHC class I chain-related protein A and B (MICA and MICB) are predominantly expressed intracellularly in tumour and normal tissue. Br J Cancer. 2017;116:1208-1217 pubmed publisher
  215. Marwaha R, Arya S, Jagga D, Kaur H, Tuli A, Sharma M. The Rab7 effector PLEKHM1 binds Arl8b to promote cargo traffic to lysosomes. J Cell Biol. 2017;216:1051-1070 pubmed publisher
  216. Roy N, Pacini G, Berlioz Torrent C, Janvier K. Characterization of E3 ligases involved in lysosomal sorting of the HIV-1 restriction factor BST2. J Cell Sci. 2017;130:1596-1611 pubmed publisher
  217. Hubber A, Kubori T, Coban C, Matsuzawa T, Ogawa M, Kawabata T, et al. Bacterial secretion system skews the fate of Legionella-containing vacuoles towards LC3-associated phagocytosis. Sci Rep. 2017;7:44795 pubmed publisher
  218. Kober A, Manavalan A, Tam Amersdorfer C, Holmér A, Saeed A, Fanaee Danesh E, et al. Implications of cerebrovascular ATP-binding cassette transporter G1 (ABCG1) and apolipoprotein M in cholesterol transport at the blood-brain barrier. Biochim Biophys Acta Mol Cell Biol Lipids. 2017;1862:573-588 pubmed publisher
  219. Sanger A, Yip Y, Randall T, Pernigo S, Steiner R, Dodding M. SKIP controls lysosome positioning using a composite kinesin-1 heavy and light chain-binding domain. J Cell Sci. 2017;130:1637-1651 pubmed publisher
  220. Varadaraj A, JENKINS L, Singh P, Chanda A, Snider J, Lee N, et al. TGF-β triggers rapid fibrillogenesis via a novel TβRII-dependent fibronectin-trafficking mechanism. Mol Biol Cell. 2017;28:1195-1207 pubmed publisher
  221. Miles A, Burr S, Grice G, Nathan J. The vacuolar-ATPase complex and assembly factors, TMEM199 and CCDC115, control HIF1? prolyl hydroxylation by regulating cellular iron levels. elife. 2017;6: pubmed publisher
  222. Jacquin E, Leclerc Mercier S, Judon C, Blanchard E, Fraitag S, Florey O. Pharmacological modulators of autophagy activate a parallel noncanonical pathway driving unconventional LC3 lipidation. Autophagy. 2017;13:854-867 pubmed publisher
  223. Nishimura Y, Gautam R, Chun T, Sadjadpour R, Foulds K, Shingai M, et al. Early antibody therapy can induce long-lasting immunity to SHIV. Nature. 2017;543:559-563 pubmed publisher
  224. Kim J, Hyun H, Min S, Kang T. Sustained HSP25 Expression Induces Clasmatodendrosis via ER Stress in the Rat Hippocampus. Front Cell Neurosci. 2017;11:47 pubmed publisher
  225. Bagh M, Peng S, Chandra G, Zhang Z, Singh S, Pattabiraman N, et al. Misrouting of v-ATPase subunit V0a1 dysregulates lysosomal acidification in a neurodegenerative lysosomal storage disease model. Nat Commun. 2017;8:14612 pubmed publisher
  226. Cardinaud S, Urrutia A, Rouers A, Coulon P, Kervevan J, Richetta C, et al. Triggering of TLR-3, -4, NOD2, and DC-SIGN reduces viral replication and increases T-cell activation capacity of HIV-infected human dendritic cells. Eur J Immunol. 2017;47:818-829 pubmed publisher
  227. Pi H, Li M, Tian L, Yang Z, Yu Z, Zhou Z. Enhancing lysosomal biogenesis and autophagic flux by activating the transcription factor EB protects against cadmium-induced neurotoxicity. Sci Rep. 2017;7:43466 pubmed publisher
  228. Shyng C, Macauley S, Dearborn J, Sands M. Widespread Expression of a Membrane-Tethered Version of the Soluble Lysosomal Enzyme Palmitoyl Protein Thioesterase-1. JIMD Rep. 2017;36:85-92 pubmed publisher
  229. Peng M, Yin N, Li M. SZT2 dictates GATOR control of mTORC1 signalling. Nature. 2017;543:433-437 pubmed publisher
  230. Jung J, Nayak A, Schaeffer V, Starzetz T, Kirsch A, Muller S, et al. Multiplex image-based autophagy RNAi screening identifies SMCR8 as ULK1 kinase activity and gene expression regulator. elife. 2017;6: pubmed publisher
  231. Ganesan R, Hos N, Gutierrez S, Fischer J, Stepek J, Daglidu E, et al. Salmonella Typhimurium disrupts Sirt1/AMPK checkpoint control of mTOR to impair autophagy. PLoS Pathog. 2017;13:e1006227 pubmed publisher
  232. Fielding C, Weekes M, Nobre L, Růcková E, Wilkie G, Paulo J, et al. Control of immune ligands by members of a cytomegalovirus gene expansion suppresses natural killer cell activation. elife. 2017;6: pubmed publisher
  233. Yuan H, Tan B, Gao S. Tenovin-6 impairs autophagy by inhibiting autophagic flux. Cell Death Dis. 2017;8:e2608 pubmed publisher
  234. Sugiura A, Mattie S, Prudent J, McBride H. Newly born peroxisomes are a hybrid of mitochondrial and ER-derived pre-peroxisomes. Nature. 2017;542:251-254 pubmed publisher
  235. Koh H, Kim Y, Kim J, Yun J, Jang K, Yang C. Toxoplasma gondii GRA7-Targeted ASC and PLD1 Promote Antibacterial Host Defense via PKCα. PLoS Pathog. 2017;13:e1006126 pubmed publisher
  236. Zimmermann Meisse G, Prevost G, Jover E. Above and beyond C5a Receptor Targeting by Staphylococcal Leucotoxins: Retrograde Transport of Panton-Valentine Leucocidin and ?-Hemolysin. Toxins (Basel). 2017;9: pubmed publisher
  237. Vonk J, Yeshaw W, Pinto F, Faber A, Lahaye L, Kanon B, et al. Drosophila Vps13 Is Required for Protein Homeostasis in the Brain. PLoS ONE. 2017;12:e0170106 pubmed publisher
  238. Hofhuis J, Bersch K, Büssenschütt R, Drzymalski M, Liebetanz D, Nikolaev V, et al. Dysferlin mediates membrane tubulation and links T-tubule biogenesis to muscular dystrophy. J Cell Sci. 2017;130:841-852 pubmed publisher
  239. Raposo R, de Mulder Rougvie M, Paquin Proulx D, Brailey P, Cabido V, Zdinak P, et al. IFITM1 targets HIV-1 latently infected cells for antibody-dependent cytolysis. JCI Insight. 2017;2:e85811 pubmed publisher
  240. Prasad A, Kulkarni R, Jiang S, Groopman J. Cocaine Enhances DC to T-cell HIV-1 Transmission by Activating DC-SIGN/LARG/LSP1 Complex and Facilitating Infectious Synapse Formation. Sci Rep. 2017;7:40648 pubmed publisher
  241. Gao Y, Chen Y, Zhan S, Zhang W, Xiong F, Ge W. Comprehensive proteome analysis of lysosomes reveals the diverse function of macrophages in immune responses. Oncotarget. 2017;8:7420-7440 pubmed publisher
  242. Borgia D, Malena A, Spinazzi M, Desbats M, Salviati L, Russell A, et al. Increased mitophagy in the skeletal muscle of spinal and bulbar muscular atrophy patients. Hum Mol Genet. 2017;26:1087-1103 pubmed publisher
  243. Nakajima S, Aikawa C, Nozawa T, Minowa Nozawa A, Toh H, Nakagawa I. Bcl-xL Affects Group A Streptococcus-Induced Autophagy Directly, by Inhibiting Fusion between Autophagosomes and Lysosomes, and Indirectly, by Inhibiting Bacterial Internalization via Interaction with Beclin 1-UVRAG. PLoS ONE. 2017;12:e0170138 pubmed publisher
  244. Luo Y, Duan H, Qian Y, Feng L, Wu Z, Wang F, et al. Macrophagic CD146 promotes foam cell formation and retention during atherosclerosis. Cell Res. 2017;27:352-372 pubmed publisher
  245. Tauriainen J, Scharf L, Frederiksen J, Naji A, Ljunggren H, Sonnerborg A, et al. Perturbed CD8+ T cell TIGIT/CD226/PVR axis despite early initiation of antiretroviral treatment in HIV infected individuals. Sci Rep. 2017;7:40354 pubmed publisher
  246. Cianciola N, Chung S, Manor D, Carlin C. Adenovirus Modulates Toll-Like Receptor 4 Signaling by Reprogramming ORP1L-VAP Protein Contacts for Cholesterol Transport from Endosomes to the Endoplasmic Reticulum. J Virol. 2017;91: pubmed publisher
  247. Muranen T, Iwanicki M, Curry N, Hwang J, DuBois C, Coloff J, et al. Starved epithelial cells uptake extracellular matrix for survival. Nat Commun. 2017;8:13989 pubmed publisher
  248. Li G, Fu R, Shen H, Zhou J, Hu X, Liu Y, et al. Polyphyllin I induces mitophagic and apoptotic cell death in human breast cancer cells by increasing mitochondrial PINK1 levels. Oncotarget. 2017;8:10359-10374 pubmed publisher
  249. Calamita P, Miluzio A, Russo A, Pesce E, Ricciardi S, Khanim F, et al. SBDS-Deficient Cells Have an Altered Homeostatic Equilibrium due to Translational Inefficiency Which Explains their Reduced Fitness and Provides a Logical Framework for Intervention. PLoS Genet. 2017;13:e1006552 pubmed publisher
  250. Matsumoto A, Pasut A, Matsumoto M, Yamashita R, Fung J, Monteleone E, et al. mTORC1 and muscle regeneration are regulated by the LINC00961-encoded SPAR polypeptide. Nature. 2017;541:228-232 pubmed publisher
  251. Sudworth A, Dai K, Vaage J, Kveberg L. Degranulation Response in Cytotoxic Rat Lymphocytes Measured with a Novel CD107a Antibody. Front Immunol. 2016;7:572 pubmed publisher
  252. Song H, Chiang H, Tseng W, Wu P, Chien C, Leu H, et al. Using CRISPR/Cas9-Mediated GLA Gene Knockout as an In Vitro Drug Screening Model for Fabry Disease. Int J Mol Sci. 2016;17: pubmed
  253. Assadi G, Vesterlund L, Bonfiglio F, Mazzurana L, Cordeddu L, Schepis D, et al. Functional Analyses of the Crohn's Disease Risk Gene LACC1. PLoS ONE. 2016;11:e0168276 pubmed publisher
  254. Da Ros M, Lehtiniemi T, Olotu O, Fischer D, Zhang F, Vihinen H, et al. FYCO1 and autophagy control the integrity of the haploid male germ cell-specific RNP granules. Autophagy. 2017;13:302-321 pubmed publisher
  255. Shi B, Huang Q, Birkett R, Doyle R, Dorfleutner A, Stehlik C, et al. SNAPIN is critical for lysosomal acidification and autophagosome maturation in macrophages. Autophagy. 2017;13:285-301 pubmed publisher
  256. Walenbergh S, Houben T, Rensen S, Bieghs V, Hendrikx T, van Gorp P, et al. Plasma cathepsin D correlates with histological classifications of fatty liver disease in adults and responds to intervention. Sci Rep. 2016;6:38278 pubmed publisher
  257. Ryan P, Sumaria N, Holland C, Bradford C, Izotova N, Grandjean C, et al. Heterogeneous yet stable Vδ2(+) T-cell profiles define distinct cytotoxic effector potentials in healthy human individuals. Proc Natl Acad Sci U S A. 2016;113:14378-14383 pubmed
  258. Sambri I, D Alessio R, Ezhova Y, Giuliano T, Sorrentino N, Cacace V, et al. Lysosomal dysfunction disrupts presynaptic maintenance and restoration of presynaptic function prevents neurodegeneration in lysosomal storage diseases. EMBO Mol Med. 2017;9:112-132 pubmed publisher
  259. Galindo Albarrán A, López Portales O, Gutiérrez Reyna D, Rodríguez Jorge O, Sánchez Villanueva J, Ramirez Pliego O, et al. CD8+ T Cells from Human Neonates Are Biased toward an Innate Immune Response. Cell Rep. 2016;17:2151-2160 pubmed publisher
  260. Sumatoh H, Teng K, Cheng Y, Newell E. Optimization of mass cytometry sample cryopreservation after staining. Cytometry A. 2017;91:48-61 pubmed publisher
  261. Cuff A, Robertson F, Stegmann K, Pallett L, Maini M, Davidson B, et al. Eomeshi NK Cells in Human Liver Are Long-Lived and Do Not Recirculate but Can Be Replenished from the Circulation. J Immunol. 2016;197:4283-4291 pubmed
  262. Zhu P, Liang L, Shao X, Luo W, Jiang S, Zhao Q, et al. Host Cellular Protein TRAPPC6AΔ Interacts with Influenza A Virus M2 Protein and Regulates Viral Propagation by Modulating M2 Trafficking. J Virol. 2017;91: pubmed publisher
  263. Jaber N, Mohd Naim N, Wang Z, Deleon J, Kim S, Zhong H, et al. Vps34 regulates Rab7 and late endocytic trafficking through recruitment of the GTPase-activating protein Armus. J Cell Sci. 2016;129:4424-4435 pubmed
  264. Sun H, Zhang M, Cheng K, Li P, Han S, Li R, et al. Resistance of glioma cells to nutrient-deprived microenvironment can be enhanced by CD133-mediated autophagy. Oncotarget. 2016;7:76238-76249 pubmed publisher
  265. Rofe A, Davis L, Whittingham J, Latimer Bowman E, Wilkinson A, Pryor P. The Rhodococcus equi virulence protein VapA disrupts endolysosome function and stimulates lysosome biogenesis. Microbiologyopen. 2017;6: pubmed publisher
  266. Malet J, Cossart P, Ribet D. Alteration of epithelial cell lysosomal integrity induced by bacterial cholesterol-dependent cytolysins. Cell Microbiol. 2017;19: pubmed publisher
  267. Tanaka Y, Ono N, Shima T, Tanaka G, Katoh Y, Nakayama K, et al. The phospholipid flippase ATP9A is required for the recycling pathway from the endosomes to the plasma membrane. Mol Biol Cell. 2016;27:3883-3893 pubmed
  268. Hu X, Valentin A, Dayton F, Kulkarni V, Alicea C, Rosati M, et al. DNA Prime-Boost Vaccine Regimen To Increase Breadth, Magnitude, and Cytotoxicity of the Cellular Immune Responses to Subdominant Gag Epitopes of Simian Immunodeficiency Virus and HIV. J Immunol. 2016;197:3999-4013 pubmed
  269. Roberts B, Svoboda R, Overmiller A, Lewis J, Kowalczyk A, Mahoney M, et al. Palmitoylation of Desmoglein 2 Is a Regulator of Assembly Dynamics and Protein Turnover. J Biol Chem. 2016;291:24857-24865 pubmed
  270. Oon S, Huynh H, Tai T, Ng M, Monaghan K, Biondo M, et al. A cytotoxic anti-IL-3Rα antibody targets key cells and cytokines implicated in systemic lupus erythematosus. JCI Insight. 2016;1:e86131 pubmed publisher
  271. Rahman N, Ramos Espiritu L, Milner T, Buck J, Levin L. Soluble adenylyl cyclase is essential for proper lysosomal acidification. J Gen Physiol. 2016;148:325-39 pubmed publisher
  272. Kim S, Roy S, Chen B, Nguyen T, McMonigle R, McCracken A, et al. Targeting cancer metabolism by simultaneously disrupting parallel nutrient access pathways. J Clin Invest. 2016;126:4088-4102 pubmed publisher
  273. Lu L, Chung A, Rosebrock T, Ghebremichael M, Yu W, Grace P, et al. A Functional Role for Antibodies in Tuberculosis. Cell. 2016;167:433-443.e14 pubmed publisher
  274. Willemen Y, Van den Bergh J, Bonte S, Anguille S, Heirman C, Stein B, et al. The tumor-associated antigen RHAMM (HMMR/CD168) is expressed by monocyte-derived dendritic cells and presented to T cells. Oncotarget. 2016;7:73960-73970 pubmed publisher
  275. Wang Y, Ma C, Ling Y, Bousfiha A, Camcioglu Y, Jacquot S, et al. Dual T cell- and B cell-intrinsic deficiency in humans with biallelic RLTPR mutations. J Exp Med. 2016;213:2413-2435 pubmed
  276. Wahid R, Fresnay S, Levine M, Sztein M. Cross-reactive multifunctional CD4+ T cell responses against Salmonella enterica serovars Typhi, Paratyphi A and Paratyphi B in humans following immunization with live oral typhoid vaccine Ty21a. Clin Immunol. 2016;173:87-95 pubmed publisher
  277. Vargas Inchaustegui D, Ying O, Demberg T, Robert Guroff M. Evaluation of Functional NK Cell Responses in Vaccinated and SIV-Infected Rhesus Macaques. Front Immunol. 2016;7:340 pubmed publisher
  278. Lee H, Noh H, Mun J, Gu C, Sever S, Park S. Anks1a regulates COPII-mediated anterograde transport of receptor tyrosine kinases critical for tumorigenesis. Nat Commun. 2016;7:12799 pubmed publisher
  279. Żarska M, Novotný F, Havel F, Sramek M, Babelova A, Benada O, et al. Two-Step Mechanism of Cellular Uptake of Cationic Gold Nanoparticles Modified by (16-Mercaptohexadecyl)trimethylammonium Bromide. Bioconjug Chem. 2016;27:2558-2574 pubmed
  280. Landtwing V, Raykova A, Pezzino G, Beziat V, Marcenaro E, Graf C, et al. Cognate HLA absence in trans diminishes human NK cell education. J Clin Invest. 2016;126:3772-3782 pubmed publisher
  281. Ayala V, Trivett M, Barsov E, Jain S, Piatak M, Trubey C, et al. Adoptive Transfer of Engineered Rhesus Simian Immunodeficiency Virus-Specific CD8+ T Cells Reduces the Number of Transmitted/Founder Viruses Established in Rhesus Macaques. J Virol. 2016;90:9942-9952 pubmed publisher
  282. Dolat L, Spiliotis E. Septins promote macropinosome maturation and traffic to the lysosome by facilitating membrane fusion. J Cell Biol. 2016;214:517-27 pubmed publisher
  283. Liu M, Li Y, Liu A, Li R, Su Y, Du J, et al. The exon junction complex regulates the splicing of cell polarity gene dlg1 to control Wingless signaling in development. elife. 2016;5: pubmed publisher
  284. Weikel K, Cacicedo J, Ruderman N, Ido Y. Knockdown of GSK3β increases basal autophagy and AMPK signalling in nutrient-laden human aortic endothelial cells. Biosci Rep. 2016;36: pubmed publisher
  285. McMillan K, Gallon M, Jellett A, Clairfeuille T, Tilley F, McGough I, et al. Atypical parkinsonism-associated retromer mutant alters endosomal sorting of specific cargo proteins. J Cell Biol. 2016;214:389-99 pubmed publisher
  286. Luessen D, Hinshaw T, Sun H, Howlett A, MARRS G, McCool B, et al. RGS2 modulates the activity and internalization of dopamine D2 receptors in neuroblastoma N2A cells. Neuropharmacology. 2016;110:297-307 pubmed publisher
  287. Hervier B, Perez M, Allenbach Y, Devilliers H, Cohen F, Uzunhan Y, et al. Involvement of NK Cells and NKp30 Pathway in Antisynthetase Syndrome. J Immunol. 2016;197:1621-30 pubmed publisher
  288. Huang L, Stuart C, Takeda K, D Agnillo F, Golding B. Poly(I:C) Induces Human Lung Endothelial Barrier Dysfunction by Disrupting Tight Junction Expression of Claudin-5. PLoS ONE. 2016;11:e0160875 pubmed publisher
  289. He R, Hou S, Liu C, Zhang A, Bai Q, Han M, et al. Follicular CXCR5- expressing CD8(+) T cells curtail chronic viral infection. Nature. 2016;537:412-428 pubmed publisher
  290. Demers K, Makedonas G, Buggert M, Eller M, Ratcliffe S, Goonetilleke N, et al. Temporal Dynamics of CD8+ T Cell Effector Responses during Primary HIV Infection. PLoS Pathog. 2016;12:e1005805 pubmed publisher
  291. Kritikou J, Dahlberg C, Baptista M, Wagner A, Banerjee P, Gwalani L, et al. IL-2 in the tumor microenvironment is necessary for Wiskott-Aldrich syndrome protein deficient NK cells to respond to tumors in vivo. Sci Rep. 2016;6:30636 pubmed publisher
  292. Peper J, Bösmüller H, Schuster H, Gückel B, Hörzer H, Roehle K, et al. HLA ligandomics identifies histone deacetylase 1 as target for ovarian cancer immunotherapy. Oncoimmunology. 2016;5:e1065369 pubmed publisher
  293. Sadallah S, Schmied L, Eken C, Charoudeh H, Amicarella F, Schifferli J. Platelet-Derived Ectosomes Reduce NK Cell Function. J Immunol. 2016;197:1663-71 pubmed publisher
  294. Tan L, Toops K, Lakkaraju A. Protective responses to sublytic complement in the retinal pigment epithelium. Proc Natl Acad Sci U S A. 2016;113:8789-94 pubmed publisher
  295. Want A, Gillespie S, Wang Z, Gordon R, Iomini C, Ritch R, et al. Autophagy and Mitochondrial Dysfunction in Tenon Fibroblasts from Exfoliation Glaucoma Patients. PLoS ONE. 2016;11:e0157404 pubmed publisher
  296. Janer A, Prudent J, Paupe V, Fahiminiya S, Majewski J, Sgarioto N, et al. SLC25A46 is required for mitochondrial lipid homeostasis and cristae maintenance and is responsible for Leigh syndrome. EMBO Mol Med. 2016;8:1019-38 pubmed publisher
  297. Fernández B, Fdez E, Gomez Suaga P, Gil F, Molina Villalba I, Ferrer I, et al. Iron overload causes endolysosomal deficits modulated by NAADP-regulated 2-pore channels and RAB7A. Autophagy. 2016;12:1487-506 pubmed publisher
  298. Zhang X, Cheng X, Yu L, Yang J, Calvo R, Patnaik S, et al. MCOLN1 is a ROS sensor in lysosomes that regulates autophagy. Nat Commun. 2016;7:12109 pubmed publisher
  299. Justis A, Hansen B, Beare P, King K, Heinzen R, Gilk S. Interactions between the Coxiella burnetii parasitophorous vacuole and the endoplasmic reticulum involve the host protein ORP1L. Cell Microbiol. 2017;19: pubmed publisher
  300. Marquer C, Tian H, Yi J, Bastien J, Dall Armi C, Yang Klingler Y, et al. Arf6 controls retromer traffic and intracellular cholesterol distribution via a phosphoinositide-based mechanism. Nat Commun. 2016;7:11919 pubmed publisher
  301. Kuramoto K, Wang N, Fan Y, Zhang W, Schoenen F, Frankowski K, et al. Autophagy activation by novel inducers prevents BECN2-mediated drug tolerance to cannabinoids. Autophagy. 2016;12:1460-71 pubmed publisher
  302. Xie N, Yuan K, Zhou L, Wang K, Chen H, Lei Y, et al. PRKAA/AMPK restricts HBV replication through promotion of autophagic degradation. Autophagy. 2016;12:1507-20 pubmed publisher
  303. Andersson A, Andersson B, Lorell C, Raffetseder J, Larsson M, Blomgran R. Autophagy induction targeting mTORC1 enhances Mycobacterium tuberculosis replication in HIV co-infected human macrophages. Sci Rep. 2016;6:28171 pubmed publisher
  304. Xu Y, Chaudhury A, Zhang M, Savoldo B, Metelitsa L, Rodgers J, et al. Glycolysis determines dichotomous regulation of T cell subsets in hypoxia. J Clin Invest. 2016;126:2678-88 pubmed publisher
  305. Safaiyan S, Kannaiyan N, Snaidero N, Brioschi S, Biber K, Yona S, et al. Age-related myelin degradation burdens the clearance function of microglia during aging. Nat Neurosci. 2016;19:995-8 pubmed publisher
  306. Li W, Jin D, Hata M, Takai S, Yamanishi K, Shen W, et al. Dysfunction of mitochondria and deformed gap junctions in the heart of IL-18-deficient mice. Am J Physiol Heart Circ Physiol. 2016;311:H313-25 pubmed publisher
  307. Wu X, Zhao L, Chen Z, Ji X, Qiao X, Jin Y, et al. FLCN Maintains the Leucine Level in Lysosome to Stimulate mTORC1. PLoS ONE. 2016;11:e0157100 pubmed publisher
  308. Ko A, Hyun H, Min S, Kim J. The Differential DRP1 Phosphorylation and Mitochondrial Dynamics in the Regional Specific Astroglial Death Induced by Status Epilepticus. Front Cell Neurosci. 2016;10:124 pubmed publisher
  309. Vaccari M, Gordon S, Fourati S, Schifanella L, Liyanage N, Cameron M, et al. Adjuvant-dependent innate and adaptive immune signatures of risk of SIVmac251 acquisition. Nat Med. 2016;22:762-70 pubmed publisher
  310. Goodier M, Rodríguez Galán A, Lusa C, Nielsen C, Darboe A, Moldoveanu A, et al. Influenza Vaccination Generates Cytokine-Induced Memory-like NK Cells: Impact of Human Cytomegalovirus Infection. J Immunol. 2016;197:313-25 pubmed publisher
  311. Kwon H, Choi G, Ryu S, Kwon S, Kim S, Booth C, et al. Stepwise phosphorylation of p65 promotes NF-?B activation and NK cell responses during target cell recognition. Nat Commun. 2016;7:11686 pubmed publisher
  312. Neumann B, Shi T, Gan L, Klippert A, Daskalaki M, Stolte Leeb N, et al. Comprehensive panel of cross-reacting monoclonal antibodies for analysis of different immune cells and their distribution in the common marmoset (Callithrix jacchus). J Med Primatol. 2016;45:139-46 pubmed publisher
  313. Nakamura T, Furukawa A, Uchida K, Ogawa T, Tamura T, Sakonishi D, et al. Autophagy Induced by Intracellular Infection of Propionibacterium acnes. PLoS ONE. 2016;11:e0156298 pubmed publisher
  314. Okato A, Goto Y, Kurozumi A, Kato M, Kojima S, Matsushita R, et al. Direct regulation of LAMP1 by tumor-suppressive microRNA-320a in prostate cancer. Int J Oncol. 2016;49:111-22 pubmed publisher
  315. Bao J, Zheng L, Zhang Q, Li X, Zhang X, Li Z, et al. Deacetylation of TFEB promotes fibrillar A? degradation by upregulating lysosomal biogenesis in microglia. Protein Cell. 2016;7:417-33 pubmed publisher
  316. Strønen E, Toebes M, Kelderman S, van Buuren M, Yang W, van Rooij N, et al. Targeting of cancer neoantigens with donor-derived T cell receptor repertoires. Science. 2016;352:1337-41 pubmed publisher
  317. Yin W, Tong S, Zhang Q, Shao J, Liu Q, Peng H, et al. Functional dichotomy of Vδ2 γδ T cells in chronic hepatitis C virus infections: role in cytotoxicity but not for IFN-γ production. Sci Rep. 2016;6:26296 pubmed publisher
  318. Jin C, Fotaki G, Ramachandran M, Nilsson B, Essand M, Yu D. Safe engineering of CAR T cells for adoptive cell therapy of cancer using long-term episomal gene transfer. EMBO Mol Med. 2016;8:702-11 pubmed publisher
  319. Scharn C, Collins A, Nair V, Stamm C, MARCIANO D, Graviss E, et al. Heme Oxygenase-1 Regulates Inflammation and Mycobacterial Survival in Human Macrophages during Mycobacterium tuberculosis Infection. J Immunol. 2016;196:4641-9 pubmed publisher
  320. Song J, Sun Y, Peluso I, Zeng Y, Yu X, Lu J, et al. A novel curcumin analog binds to and activates TFEB in vitro and in vivo independent of MTOR inhibition. Autophagy. 2016;12:1372-89 pubmed publisher
  321. Pastore N, Brady O, Diab H, Martina J, Sun L, Huynh T, et al. TFEB and TFE3 cooperate in the regulation of the innate immune response in activated macrophages. Autophagy. 2016;12:1240-58 pubmed publisher
  322. Karvela M, Baquero P, Kuntz E, Mukhopadhyay A, Mitchell R, Allan E, et al. ATG7 regulates energy metabolism, differentiation and survival of Philadelphia-chromosome-positive cells. Autophagy. 2016;12:936-48 pubmed publisher
  323. De Filippis L, Halikere A, McGowan H, Moore J, Tischfield J, Hart R, et al. Ethanol-mediated activation of the NLRP3 inflammasome in iPS cells and iPS cells-derived neural progenitor cells. Mol Brain. 2016;9:51 pubmed publisher
  324. Bolz M, Ruggli N, Borel N, Pluschke G, Ruf M. Local Cellular Immune Responses and Pathogenesis of Buruli Ulcer Lesions in the Experimental Mycobacterium Ulcerans Pig Infection Model. PLoS Negl Trop Dis. 2016;10:e0004678 pubmed publisher
  325. Rapiteanu R, Davis L, Williamson J, Timms R, Paul Luzio J, Lehner P. A Genetic Screen Identifies a Critical Role for the WDR81-WDR91 Complex in the Trafficking and Degradation of Tetherin. Traffic. 2016;17:940-58 pubmed publisher
  326. Vieyres G, Welsch K, Gerold G, Gentzsch J, Kahl S, Vondran F, et al. ABHD5/CGI-58, the Chanarin-Dorfman Syndrome Protein, Mobilises Lipid Stores for Hepatitis C Virus Production. PLoS Pathog. 2016;12:e1005568 pubmed publisher
  327. Starling G, Yip Y, Sanger A, Morton P, Eden E, Dodding M. Folliculin directs the formation of a Rab34-RILP complex to control the nutrient-dependent dynamic distribution of lysosomes. EMBO Rep. 2016;17:823-41 pubmed publisher
  328. Hernaez B, Guerra M, Salas M, Andres G. African Swine Fever Virus Undergoes Outer Envelope Disruption, Capsid Disassembly and Inner Envelope Fusion before Core Release from Multivesicular Endosomes. PLoS Pathog. 2016;12:e1005595 pubmed publisher
  329. Li Z, Ji X, Wang W, Liu J, Liang X, Wu H, et al. Ammonia Induces Autophagy through Dopamine Receptor D3 and MTOR. PLoS ONE. 2016;11:e0153526 pubmed publisher
  330. Corcelle Termeau E, Vindeløv S, Hämälistö S, Mograbi B, Keldsbo A, Bräsen J, et al. Excess sphingomyelin disturbs ATG9A trafficking and autophagosome closure. Autophagy. 2016;12:833-49 pubmed publisher
  331. Dimitrova M, Zenarruzabeitia O, Borrego F, Simhadri V. CD300c is uniquely expressed on CD56 bright Natural Killer Cells and differs from CD300a upon ligand recognition. Sci Rep. 2016;6:23942 pubmed publisher
  332. Krishnan V, White Z, McMahon C, Hodgetts S, Fitzgerald M, Shavlakadze T, et al. A Neurogenic Perspective of Sarcopenia: Time Course Study of Sciatic Nerves From Aging Mice. J Neuropathol Exp Neurol. 2016;75:464-78 pubmed publisher
  333. Hiraku Y, Guo F, Ma N, Yamada T, Wang S, Kawanishi S, et al. Multi-walled carbon nanotube induces nitrative DNA damage in human lung epithelial cells via HMGB1-RAGE interaction and Toll-like receptor 9 activation. Part Fibre Toxicol. 2016;13:16 pubmed publisher
  334. Pawar K, Sharbati J, Einspanier R, Sharbati S. Mycobacterium bovis BCG Interferes with miR-3619-5p Control of Cathepsin S in the Process of Autophagy. Front Cell Infect Microbiol. 2016;6:27 pubmed publisher
  335. Gschweitl M, Ulbricht A, Barnes C, Enchev R, Stoffel Studer I, Meyer Schaller N, et al. A SPOPL/Cullin-3 ubiquitin ligase complex regulates endocytic trafficking by targeting EPS15 at endosomes. elife. 2016;5:e13841 pubmed publisher
  336. O Rourke J, Bogdanik L, Yáñez A, Lall D, Wolf A, Muhammad A, et al. C9orf72 is required for proper macrophage and microglial function in mice. Science. 2016;351:1324-9 pubmed publisher
  337. Lakschevitz F, Hassanpour S, Rubin A, Fine N, Sun C, Glogauer M. Identification of neutrophil surface marker changes in health and inflammation using high-throughput screening flow cytometry. Exp Cell Res. 2016;342:200-9 pubmed publisher
  338. Son S, Cha M, Choi H, Kang S, Choi H, Lee M, et al. Insulin-degrading enzyme secretion from astrocytes is mediated by an autophagy-based unconventional secretory pathway in Alzheimer disease. Autophagy. 2016;12:784-800 pubmed publisher
  339. Martínez Pizarro A, Desviat L, Ugarte M, Perez B, Richard E. Endoplasmic Reticulum Stress and Autophagy in Homocystinuria Patients with Remethylation Defects. PLoS ONE. 2016;11:e0150357 pubmed publisher
  340. Simon S, Vignard V, Florenceau L, Dreno B, Khammari A, Lang F, et al. PD-1 expression conditions T cell avidity within an antigen-specific repertoire. Oncoimmunology. 2016;5:e1104448 pubmed
  341. Gao J, Duan Z, Zhang L, Huang X, Long L, Tu J, et al. Failure recovery of circulating NKG2D+CD56dimNK cells in HBV-associated hepatocellular carcinoma after hepatectomy predicts early recurrence. Oncoimmunology. 2016;5:e1048061 pubmed
  342. Ouimet M, Hennessy E, van Solingen C, Koelwyn G, Hussein M, Ramkhelawon B, et al. miRNA Targeting of Oxysterol-Binding Protein-Like 6 Regulates Cholesterol Trafficking and Efflux. Arterioscler Thromb Vasc Biol. 2016;36:942-951 pubmed publisher
  343. Khazen R, Müller S, Gaudenzio N, Espinosa E, Puissegur M, Valitutti S. Melanoma cell lysosome secretory burst neutralizes the CTL-mediated cytotoxicity at the lytic synapse. Nat Commun. 2016;7:10823 pubmed publisher
  344. Piras A, Collin L, Grüninger F, Graff C, Rönnbäck A. Autophagic and lysosomal defects in human tauopathies: analysis of post-mortem brain from patients with familial Alzheimer disease, corticobasal degeneration and progressive supranuclear palsy. Acta Neuropathol Commun. 2016;4:22 pubmed publisher
  345. Ito M, Nakamura K, Mori F, Miki Y, Tanji K, Wakabayashi K. Novel eosinophilic neuronal cytoplasmic inclusions in the external cuneate nucleus of humans. Neuropathology. 2016;36:441-447 pubmed publisher
  346. Smith G, Howell G, Phillips C, Muench S, Ponnambalam S, Harrison M. Extracellular and Luminal pH Regulation by Vacuolar H+-ATPase Isoform Expression and Targeting to the Plasma Membrane and Endosomes. J Biol Chem. 2016;291:8500-15 pubmed publisher
  347. Katzenell S, Leib D. Herpes Simplex Virus and Interferon Signaling Induce Novel Autophagic Clusters in Sensory Neurons. J Virol. 2016;90:4706-4719 pubmed publisher
  348. Yu L, Wu W, Gu C, Zhong D, Zhao X, Kong Y, et al. Obatoclax impairs lysosomal function to block autophagy in cisplatin-sensitive and -resistant esophageal cancer cells. Oncotarget. 2016;7:14693-707 pubmed publisher
  349. Zou M, Zhu W, Wang L, Shi L, Gao R, Ou Y, et al. AEG-1/MTDH-activated autophagy enhances human malignant glioma susceptibility to TGF-β1-triggered epithelial-mesenchymal transition. Oncotarget. 2016;7:13122-38 pubmed publisher
  350. Kim D, Jung J, You E, Ko P, Oh S, Rhee S. mDia1 regulates breast cancer invasion by controlling membrane type 1-matrix metalloproteinase localization. Oncotarget. 2016;7:17829-43 pubmed publisher
  351. Laura R, Dong D, Reynolds W, Maki R. T47D Cells Expressing Myeloperoxidase Are Able to Process, Traffic and Store the Mature Protein in Lysosomes: Studies in T47D Cells Reveal a Role for Cys319 in MPO Biosynthesis that Precedes Its Known Role in Inter-Molecular Disulfide Bond Formation. PLoS ONE. 2016;11:e0149391 pubmed publisher
  352. Chung V, Tan T, Tan M, Wong M, Kuay K, Yang Z, et al. GRHL2-miR-200-ZEB1 maintains the epithelial status of ovarian cancer through transcriptional regulation and histone modification. Sci Rep. 2016;6:19943 pubmed publisher
  353. Hatori Y, Yan Y, Schmidt K, Furukawa E, Hasan N, Yang N, et al. Neuronal differentiation is associated with a redox-regulated increase of copper flow to the secretory pathway. Nat Commun. 2016;7:10640 pubmed publisher
  354. Liu Y, Takahashi Y, Desai N, Zhang J, Serfass J, Shi Y, et al. Bif-1 deficiency impairs lipid homeostasis and causes obesity accompanied by insulin resistance. Sci Rep. 2016;6:20453 pubmed publisher
  355. Pérez L, McLetchie S, Gardiner G, Deffit S, Zhou D, Blum J. LAMP-2C Inhibits MHC Class II Presentation of Cytoplasmic Antigens by Disrupting Chaperone-Mediated Autophagy. J Immunol. 2016;196:2457-65 pubmed publisher
  356. Hayashi H, Al Mamun A, Sakima M, Sato M. Activator of G-protein signaling 8 is involved in VEGF-mediated signal processing during angiogenesis. J Cell Sci. 2016;129:1210-22 pubmed publisher
  357. Button R, Vincent J, Strang C, Luo S. Dual PI-3 kinase/mTOR inhibition impairs autophagy flux and induces cell death independent of apoptosis and necroptosis. Oncotarget. 2016;7:5157-75 pubmed publisher
  358. Circu M, Dykes S, Carroll J, Kelly K, Galiano F, Greer A, et al. A Novel High Content Imaging-Based Screen Identifies the Anti-Helminthic Niclosamide as an Inhibitor of Lysosome Anterograde Trafficking and Prostate Cancer Cell Invasion. PLoS ONE. 2016;11:e0146931 pubmed publisher
  359. Oda S, Nozawa T, Nozawa Minowa A, Tanaka M, Aikawa C, Harada H, et al. Golgi-Resident GTPase Rab30 Promotes the Biogenesis of Pathogen-Containing Autophagosomes. PLoS ONE. 2016;11:e0147061 pubmed publisher
  360. Bouché V, Espinosa A, Leone L, Sardiello M, Ballabio A, Botas J. Drosophila Mitf regulates the V-ATPase and the lysosomal-autophagic pathway. Autophagy. 2016;12:484-98 pubmed publisher
  361. Carroll B, Maetzel D, Maddocks O, Otten G, Ratcliff M, Smith G, et al. Control of TSC2-Rheb signaling axis by arginine regulates mTORC1 activity. elife. 2016;5: pubmed publisher
  362. García Prat L, Martínez Vicente M, Perdiguero E, Ortet L, Rodríguez Ubreva J, Rebollo E, et al. Autophagy maintains stemness by preventing senescence. Nature. 2016;529:37-42 pubmed publisher
  363. Xie C, Ginet V, Sun Y, Koike M, Zhou K, Li T, et al. Neuroprotection by selective neuronal deletion of Atg7 in neonatal brain injury. Autophagy. 2016;12:410-23 pubmed publisher
  364. Tognon E, Kobia F, Busi I, Fumagalli A, De Masi F, Vaccari T. Control of lysosomal biogenesis and Notch-dependent tissue patterning by components of the TFEB-V-ATPase axis in Drosophila melanogaster. Autophagy. 2016;12:499-514 pubmed publisher
  365. Yamaguchi T, Lu C, Ida L, Yanagisawa K, Usukura J, Cheng J, et al. ROR1 sustains caveolae and survival signalling as a scaffold of cavin-1 and caveolin-1. Nat Commun. 2016;7:10060 pubmed publisher
  366. He J, Johnson J, Monfregola J, Ramadass M, Pestonjamasp K, Napolitano G, et al. Munc13-4 interacts with syntaxin 7 and regulates late endosomal maturation, endosomal signaling, and TLR9-initiated cellular responses. Mol Biol Cell. 2016;27:572-87 pubmed publisher
  367. Vural A, Al Khodor S, Cheung G, Shi C, Srinivasan L, McQuiston T, et al. Activator of G-Protein Signaling 3-Induced Lysosomal Biogenesis Limits Macrophage Intracellular Bacterial Infection. J Immunol. 2016;196:846-56 pubmed publisher
  368. Lee W, Richard J, Lichtfuss M, Smith A, Park J, Courter J, et al. Antibody-Dependent Cellular Cytotoxicity against Reactivated HIV-1-Infected Cells. J Virol. 2016;90:2021-30 pubmed publisher
  369. Lao Y, Xu N. Autophagy in Cancer Chemoprevention: Identification of Novel Autophagy Modulators with Anticancer Potential. Methods Mol Biol. 2016;1379:151-63 pubmed publisher
  370. Lyu L, Whitcomb E, Jiang S, Chang M, Gu Y, Duncan M, et al. Unfolded-protein response-associated stabilization of p27(Cdkn1b) interferes with lens fiber cell denucleation, leading to cataract. FASEB J. 2016;30:1087-95 pubmed publisher
  371. Labani Motlagh A, Israelsson P, Ottander U, Lundin E, Nagaev I, Nagaeva O, et al. Differential expression of ligands for NKG2D and DNAM-1 receptors by epithelial ovarian cancer-derived exosomes and its influence on NK cell cytotoxicity. Tumour Biol. 2016;37:5455-66 pubmed publisher
  372. Wands A, Fujita A, McCombs J, Cervin J, Dedic B, Rodriguez A, et al. Fucosylation and protein glycosylation create functional receptors for cholera toxin. elife. 2015;4:e09545 pubmed publisher
  373. Dumas A, Lê Bury G, Marie Anaïs F, Herit F, Mazzolini J, Guilbert T, et al. The HIV-1 protein Vpr impairs phagosome maturation by controlling microtubule-dependent trafficking. J Cell Biol. 2015;211:359-72 pubmed publisher
  374. Zhang S, Schneider L, Vick B, Grunert M, Jeremias I, Menche D, et al. Anti-leukemic effects of the V-ATPase inhibitor Archazolid A. Oncotarget. 2015;6:43508-28 pubmed publisher
  375. Agarwal S, Bell C, Taylor S, Moran R. p53 Deletion or Hotspot Mutations Enhance mTORC1 Activity by Altering Lysosomal Dynamics of TSC2 and Rheb. Mol Cancer Res. 2016;14:66-77 pubmed publisher
  376. Selleck E, Orchard R, Lassen K, Beatty W, Xavier R, Levine B, et al. A Noncanonical Autophagy Pathway Restricts Toxoplasma gondii Growth in a Strain-Specific Manner in IFN-γ-Activated Human Cells. MBio. 2015;6:e01157-15 pubmed publisher
  377. Leeansyah E, Svärd J, Dias J, Buggert M, Nyström J, Quigley M, et al. Arming of MAIT Cell Cytolytic Antimicrobial Activity Is Induced by IL-7 and Defective in HIV-1 Infection. PLoS Pathog. 2015;11:e1005072 pubmed publisher
  378. Djurisic S, Skibsted L, Hviid T. A Phenotypic Analysis of Regulatory T Cells and Uterine NK Cells from First Trimester Pregnancies and Associations with HLA-G. Am J Reprod Immunol. 2015;74:427-44 pubmed publisher
  379. Sabet O, Stockert R, Xouri G, Brüggemann Y, Stanoev A, Bastiaens P. Ubiquitination switches EphA2 vesicular traffic from a continuous safeguard to a finite signalling mode. Nat Commun. 2015;6:8047 pubmed publisher
  380. Chesarino N, McMichael T, Yount J. E3 Ubiquitin Ligase NEDD4 Promotes Influenza Virus Infection by Decreasing Levels of the Antiviral Protein IFITM3. PLoS Pathog. 2015;11:e1005095 pubmed publisher
  381. O Donovan T, Rajendran S, O Reilly S, O Sullivan G, McKenna S. Lithium Modulates Autophagy in Esophageal and Colorectal Cancer Cells and Enhances the Efficacy of Therapeutic Agents In Vitro and In Vivo. PLoS ONE. 2015;10:e0134676 pubmed publisher
  382. Ju X, Yan Y, Liu Q, Li N, Sheng M, Zhang L, et al. Neuraminidase of Influenza A Virus Binds Lysosome-Associated Membrane Proteins Directly and Induces Lysosome Rupture. J Virol. 2015;89:10347-58 pubmed publisher
  383. DiGiuseppe S, Keiffer T, Bienkowska Haba M, Luszczek W, Guion L, Muller M, et al. Topography of the Human Papillomavirus Minor Capsid Protein L2 during Vesicular Trafficking of Infectious Entry. J Virol. 2015;89:10442-52 pubmed publisher
  384. Nezich C, Wang C, Fogel A, Youle R. MiT/TFE transcription factors are activated during mitophagy downstream of Parkin and Atg5. J Cell Biol. 2015;210:435-50 pubmed publisher
  385. Scifo E, Szwajda A, Soliymani R, Pezzini F, Bianchi M, Dapkunas A, et al. Quantitative analysis of PPT1 interactome in human neuroblastoma cells. Data Brief. 2015;4:207-16 pubmed publisher
  386. Currinn H, Guscott B, Balklava Z, Rothnie A, Wassmer T. APP controls the formation of PI(3,5)P(2) vesicles through its binding of the PIKfyve complex. Cell Mol Life Sci. 2016;73:393-408 pubmed publisher
  387. Hirst J, Edgar J, Borner G, Li S, Sahlender D, Antrobus R, et al. Contributions of epsinR and gadkin to clathrin-mediated intracellular trafficking. Mol Biol Cell. 2015;26:3085-103 pubmed publisher
  388. Hobbs R, DePianto D, Jacob J, Han M, Chung B, Batazzi A, et al. Keratin-dependent regulation of Aire and gene expression in skin tumor keratinocytes. Nat Genet. 2015;47:933-8 pubmed publisher
  389. Costantini L, Baloban M, Markwardt M, Rizzo M, Guo F, Verkhusha V, et al. A palette of fluorescent proteins optimized for diverse cellular environments. Nat Commun. 2015;6:7670 pubmed publisher
  390. Hirata T, Fujita M, Nakamura S, Gotoh K, Motooka D, Murakami Y, et al. Post-Golgi anterograde transport requires GARP-dependent endosome-to-TGN retrograde transport. Mol Biol Cell. 2015;26:3071-84 pubmed publisher
  391. Su X, Yu Y, Zhong Y, Giannopoulou E, Hu X, Liu H, et al. Interferon-γ regulates cellular metabolism and mRNA translation to potentiate macrophage activation. Nat Immunol. 2015;16:838-849 pubmed publisher
  392. Munson M, Allen G, Toth R, Campbell D, Lucocq J, Ganley I. mTOR activates the VPS34-UVRAG complex to regulate autolysosomal tubulation and cell survival. EMBO J. 2015;34:2272-90 pubmed publisher
  393. Marshall M, Pattu V, Halimani M, Maier Peuschel M, Müller M, Becherer U, et al. VAMP8-dependent fusion of recycling endosomes with the plasma membrane facilitates T lymphocyte cytotoxicity. J Cell Biol. 2015;210:135-51 pubmed publisher
  394. Cao Q, Zhong X, Zou Y, Murrell Lagnado R, Zhu M, Dong X. Calcium release through P2X4 activates calmodulin to promote endolysosomal membrane fusion. J Cell Biol. 2015;209:879-94 pubmed publisher
  395. Verma S, Mohapatra G, Ahmad S, Rana S, Jain S, Khalsa J, et al. Salmonella Engages Host MicroRNAs To Modulate SUMOylation: a New Arsenal for Intracellular Survival. Mol Cell Biol. 2015;35:2932-46 pubmed publisher
  396. Cimini E, Agrati C, D Offizi G, Vlassi C, Casetti R, Sacchi A, et al. Primary and Chronic HIV Infection Differently Modulates Mucosal Vδ1 and Vδ2 T-Cells Differentiation Profile and Effector Functions. PLoS ONE. 2015;10:e0129771 pubmed publisher
  397. Kong X, Kase E, Herskedal A, Schjalm C, Damme M, Nesset C, et al. Lack of the Lysosomal Membrane Protein, GLMP, in Mice Results in Metabolic Dysregulation in Liver. PLoS ONE. 2015;10:e0129402 pubmed publisher
  398. Di Cristofori A, Ferrero S, Bertolini I, Gaudioso G, Russo M, Berno V, et al. The vacuolar H+ ATPase is a novel therapeutic target for glioblastoma. Oncotarget. 2015;6:17514-31 pubmed
  399. Zhao Z, Sagare A, Ma Q, Halliday M, Kong P, Kisler K, et al. Central role for PICALM in amyloid-β blood-brain barrier transcytosis and clearance. Nat Neurosci. 2015;18:978-87 pubmed publisher
  400. Milkereit R, Persaud A, Vanoaica L, Guetg A, Verrey F, Rotin D. LAPTM4b recruits the LAT1-4F2hc Leu transporter to lysosomes and promotes mTORC1 activation. Nat Commun. 2015;6:7250 pubmed publisher
  401. Boddu R, Hull T, Bolisetty S, Hu X, Moehle M, Daher J, et al. Leucine-rich repeat kinase 2 deficiency is protective in rhabdomyolysis-induced kidney injury. Hum Mol Genet. 2015;24:4078-93 pubmed publisher
  402. Scifo E, Szwajda A, Soliymani R, Pezzini F, Bianchi M, Dapkunas A, et al. Proteomic analysis of the palmitoyl protein thioesterase 1 interactome in SH-SY5Y human neuroblastoma cells. J Proteomics. 2015;123:42-53 pubmed publisher
  403. Wu Z, Frascaroli G, Bayer C, Schmal T, Mertens T. Interleukin-2 from Adaptive T Cells Enhances Natural Killer Cell Activity against Human Cytomegalovirus-Infected Macrophages. J Virol. 2015;89:6435-41 pubmed publisher
  404. Zhou J, Amran F, Kramski M, Angelovich T, Elliott J, Hearps A, et al. An NK Cell Population Lacking FcRγ Is Expanded in Chronically Infected HIV Patients. J Immunol. 2015;194:4688-97 pubmed publisher
  405. Schilling D, Kühnel A, Tetzlaff F, Konrad S, Multhoff G. NZ28-induced inhibition of HSF1, SP1 and NF-κB triggers the loss of the natural killer cell-activating ligands MICA/B on human tumor cells. Cancer Immunol Immunother. 2015;64:599-608 pubmed publisher
  406. Akizu N, Cantagrel V, Zaki M, Al Gazali L, Wang X, Rosti R, et al. Biallelic mutations in SNX14 cause a syndromic form of cerebellar atrophy and lysosome-autophagosome dysfunction. Nat Genet. 2015;47:528-34 pubmed publisher
  407. Okatsu K, Koyano F, Kimura M, Kosako H, Saeki Y, Tanaka K, et al. Phosphorylated ubiquitin chain is the genuine Parkin receptor. J Cell Biol. 2015;209:111-28 pubmed publisher
  408. Axelsson Robertson R, Rao M, Loxton A, Walzl G, Bates M, Zumla A, et al. Frequency of Mycobacterium tuberculosis-specific CD8+ T-cells in the course of anti-tuberculosis treatment. Int J Infect Dis. 2015;32:23-9 pubmed publisher
  409. Axelsson Robertson R, Ju J, Kim H, Zumla A, Maeurer M. Mycobacterium tuberculosis-specific and MHC class I-restricted CD8+ T-cells exhibit a stem cell precursor-like phenotype in patients with active pulmonary tuberculosis. Int J Infect Dis. 2015;32:13-22 pubmed publisher
  410. Ivan V, van der Sluijs P. Methods for analysis of AP-3/Rabin4' in regulation of lysosome distribution. Methods Mol Biol. 2015;1298:245-58 pubmed publisher
  411. Bradley S, Chen Z, Melendez B, Talukder A, Khalili J, Rodríguez Cruz T, et al. BRAFV600E Co-opts a Conserved MHC Class I Internalization Pathway to Diminish Antigen Presentation and CD8+ T-cell Recognition of Melanoma. Cancer Immunol Res. 2015;3:602-9 pubmed publisher
  412. Kaneko Y, Sullivan R, Dailey T, Vale F, Tajiri N, Borlongan C. Kainic Acid-Induced Golgi Complex Fragmentation/Dispersal Shifts the Proteolysis of Reelin in Primary Rat Neuronal Cells: An In Vitro Model of Early Stage Epilepsy. Mol Neurobiol. 2016;53:1874-1883 pubmed publisher
  413. Chen M, Hu P, Ling N, Peng H, Lei Y, Hu H, et al. Enhanced functions of peripheral γδ T cells in chronic hepatitis B infection during interferon α treatment in vivo and in vitro. PLoS ONE. 2015;10:e0120086 pubmed publisher
  414. Ebsen H, Lettau M, Kabelitz D, Janssen O. Subcellular localization and activation of ADAM proteases in the context of FasL shedding in T lymphocytes. Mol Immunol. 2015;65:416-28 pubmed publisher
  415. Tsai C, Liong K, Gunalan M, Li N, Lim D, Fisher D, et al. Type I IFNs and IL-18 regulate the antiviral response of primary human γδ T cells against dendritic cells infected with Dengue virus. J Immunol. 2015;194:3890-900 pubmed publisher
  416. Claiborne D, Prince J, Scully E, Macharia G, Micci L, Lawson B, et al. Replicative fitness of transmitted HIV-1 drives acute immune activation, proviral load in memory CD4+ T cells, and disease progression. Proc Natl Acad Sci U S A. 2015;112:E1480-9 pubmed publisher
  417. Gee H, Kim J, Lee M. Analysis of conventional and unconventional trafficking of CFTR and other membrane proteins. Methods Mol Biol. 2015;1270:137-54 pubmed publisher
  418. Severson J, Serracino H, Mateescu V, Raeburn C, McIntyre R, Sams S, et al. PD-1+Tim-3+ CD8+ T Lymphocytes Display Varied Degrees of Functional Exhaustion in Patients with Regionally Metastatic Differentiated Thyroid Cancer. Cancer Immunol Res. 2015;3:620-30 pubmed publisher
  419. Rayavarapu R, Heiden B, Pagani N, Shaw M, Shuff S, Zhang S, et al. The role of multicellular aggregation in the survival of ErbB2-positive breast cancer cells during extracellular matrix detachment. J Biol Chem. 2015;290:8722-33 pubmed publisher
  420. Marquardt N, Béziat V, Nyström S, Hengst J, Ivarsson M, Kekäläinen E, et al. Cutting edge: identification and characterization of human intrahepatic CD49a+ NK cells. J Immunol. 2015;194:2467-71 pubmed publisher
  421. Gotink K, Rovithi M, de Haas R, Honeywell R, Dekker H, Poel D, et al. Cross-resistance to clinically used tyrosine kinase inhibitors sunitinib, sorafenib and pazopanib. Cell Oncol (Dordr). 2015;38:119-29 pubmed publisher
  422. Srivastava R, Khan A, Spencer D, Vahed H, Lopes P, Thai N, et al. HLA-A02:01-restricted epitopes identified from the herpes simplex virus tegument protein VP11/12 preferentially recall polyfunctional effector memory CD8+ T cells from seropositive asymptomatic individuals and protect humanized HLA-A*02:01 transgenic. J Immunol. 2015;194:2232-48 pubmed publisher
  423. Khan A, Srivastava R, Spencer D, Garg S, Fremgen D, Vahed H, et al. Phenotypic and functional characterization of herpes simplex virus glycoprotein B epitope-specific effector and memory CD8+ T cells from symptomatic and asymptomatic individuals with ocular herpes. J Virol. 2015;89:3776-92 pubmed publisher
  424. Fionda C, Abruzzese M, Zingoni A, Soriani A, Ricci B, Molfetta R, et al. Nitric oxide donors increase PVR/CD155 DNAM-1 ligand expression in multiple myeloma cells: role of DNA damage response activation. BMC Cancer. 2015;15:17 pubmed publisher
  425. Lee S, Uchida Y, Wang J, Matsudaira T, Nakagawa T, Kishimoto T, et al. Transport through recycling endosomes requires EHD1 recruitment by a phosphatidylserine translocase. EMBO J. 2015;34:669-88 pubmed publisher
  426. Kizuka Y, Kitazume S, Fujinawa R, Saito T, Iwata N, Saido T, et al. An aberrant sugar modification of BACE1 blocks its lysosomal targeting in Alzheimer's disease. EMBO Mol Med. 2015;7:175-89 pubmed publisher
  427. Rebsamen M, Pochini L, Stasyk T, de Araújo M, Galluccio M, Kandasamy R, et al. SLC38A9 is a component of the lysosomal amino acid sensing machinery that controls mTORC1. Nature. 2015;519:477-81 pubmed publisher
  428. Brandstaetter H, Kishi Itakura C, Tumbarello D, Manstein D, Buss F. Loss of functional MYO1C/myosin 1c, a motor protein involved in lipid raft trafficking, disrupts autophagosome-lysosome fusion. Autophagy. 2014;10:2310-23 pubmed publisher
  429. Cuellar T, Barnes D, Nelson C, Tanguay J, Yu S, Wen X, et al. Systematic evaluation of antibody-mediated siRNA delivery using an industrial platform of THIOMAB-siRNA conjugates. Nucleic Acids Res. 2015;43:1189-203 pubmed publisher
  430. Ram S, Kim D, Ober R, Ward E. The level of HER2 expression is a predictor of antibody-HER2 trafficking behavior in cancer cells. MAbs. 2014;6:1211-9 pubmed publisher
  431. Boucrot E, Ferreira A, Almeida Souza L, Debard S, Vallis Y, Howard G, et al. Endophilin marks and controls a clathrin-independent endocytic pathway. Nature. 2015;517:460-5 pubmed publisher
  432. Hagberg N, Theorell J, Hjorton K, Spee P, Eloranta M, Bryceson Y, et al. Functional anti-CD94/NKG2A and anti-CD94/NKG2C autoantibodies in patients with systemic lupus erythematosus. Arthritis Rheumatol. 2015;67:1000-11 pubmed publisher
  433. Diesenberg K, Beerbaum M, Fink U, Schmieder P, Krauss M. SEPT9 negatively regulates ubiquitin-dependent downregulation of EGFR. J Cell Sci. 2015;128:397-407 pubmed publisher
  434. Zhu Y, Jiang J, Saïd Sadier N, Boxx G, Champion C, Tetlow A, et al. Activation of the NLRP3 inflammasome by vault nanoparticles expressing a chlamydial epitope. Vaccine. 2015;33:298-306 pubmed publisher
  435. Abu Hassan D, Li X, Ryan E, Acott T, Kelley M. Induced pluripotent stem cells restore function in a human cell loss model of open-angle glaucoma. Stem Cells. 2015;33:751-61 pubmed publisher
  436. Bohnsack R, Warejcka D, Wang L, Gillespie S, Bernstein A, Twining S, et al. Expression of insulin-like growth factor 2 receptor in corneal keratocytes during differentiation and in response to wound healing. Invest Ophthalmol Vis Sci. 2014;55:7697-708 pubmed publisher
  437. van der Waart A, van de Weem N, Maas F, Kramer C, Kester M, Falkenburg J, et al. Inhibition of Akt signaling promotes the generation of superior tumor-reactive T cells for adoptive immunotherapy. Blood. 2014;124:3490-500 pubmed publisher
  438. Weiskopf D, Angelo M, Bangs D, Sidney J, Paul S, Peters B, et al. The human CD8+ T cell responses induced by a live attenuated tetravalent dengue vaccine are directed against highly conserved epitopes. J Virol. 2015;89:120-8 pubmed publisher
  439. Lim D, Yawata N, Selva K, Li N, Tsai C, Yeong L, et al. The combination of type I IFN, TNF-α, and cell surface receptor engagement with dendritic cells enables NK cells to overcome immune evasion by dengue virus. J Immunol. 2014;193:5065-75 pubmed publisher
  440. de Groen R, Boltjes A, Hou J, Liu B, McPhee F, Friborg J, et al. IFN-λ-mediated IL-12 production in macrophages induces IFN-γ production in human NK cells. Eur J Immunol. 2015;45:250-9 pubmed publisher
  441. Yang N, Tan S, Ng S, Shi Y, Zhou J, Tan K, et al. Artesunate induces cell death in human cancer cells via enhancing lysosomal function and lysosomal degradation of ferritin. J Biol Chem. 2014;289:33425-41 pubmed publisher
  442. Pereira L, Pinto R, Silva D, Moreira A, Beitzinger C, Oliveira P, et al. Intracellular trafficking of AIP56, an NF-κB-cleaving toxin from Photobacterium damselae subsp. piscicida. Infect Immun. 2014;82:5270-85 pubmed publisher
  443. Rai S, Tanaka H, Suzuki M, Ogoh H, Taniguchi Y, Morita Y, et al. Clathrin assembly protein CALM plays a critical role in KIT signaling by regulating its cellular transport from early to late endosomes in hematopoietic cells. PLoS ONE. 2014;9:e109441 pubmed publisher
  444. Ye S, Huang Y, Joshi S, Zhang J, Yang F, Zhang G, et al. Platelet secretion and hemostasis require syntaxin-binding protein STXBP5. J Clin Invest. 2014;124:4517-28 pubmed publisher
  445. Menhofer M, Bartel D, Liebl J, Kubisch R, Busse J, Wagner E, et al. In vitro and in vivo characterization of the actin polymerizing compound chondramide as an angiogenic inhibitor. Cardiovasc Res. 2014;104:303-14 pubmed publisher
  446. Madhavi V, Ana Sosa Batiz F, Jegaskanda S, Center R, Winnall W, Parsons M, et al. Antibody-dependent effector functions against HIV decline in subjects receiving antiretroviral therapy. J Infect Dis. 2015;211:529-38 pubmed publisher
  447. Torsvik J, Johansson B, Dalva M, Marie M, Fjeld K, Johansson S, et al. Endocytosis of secreted carboxyl ester lipase in a syndrome of diabetes and pancreatic exocrine dysfunction. J Biol Chem. 2014;289:29097-111 pubmed publisher
  448. Ginet V, Pittet M, Rummel C, Osterheld M, Meuli R, Clarke P, et al. Dying neurons in thalamus of asphyxiated term newborns and rats are autophagic. Ann Neurol. 2014;76:695-711 pubmed publisher
  449. Ohue Y, Kurose K, Mizote Y, Matsumoto H, Nishio Y, Isobe M, et al. Prolongation of overall survival in advanced lung adenocarcinoma patients with the XAGE1 (GAGED2a) antibody. Clin Cancer Res. 2014;20:5052-63 pubmed publisher
  450. Balaji K, French C, Miller J, Colicelli J. The RAB5-GEF function of RIN1 regulates multiple steps during Listeria monocytogenes infection. Traffic. 2014;15:1206-18 pubmed publisher
  451. Weist B, Schmueck M, Fuehrer H, Sattler A, Reinke P, Babel N. The role of CD4(+) T cells in BKV-specific T cell immunity. Med Microbiol Immunol. 2014;203:395-408 pubmed publisher
  452. Kira S, Tabata K, Shirahama Noda K, Nozoe A, Yoshimori T, Noda T. Reciprocal conversion of Gtr1 and Gtr2 nucleotide-binding states by Npr2-Npr3 inactivates TORC1 and induces autophagy. Autophagy. 2014;10:1565-78 pubmed publisher
  453. Buggert M, Tauriainen J, Yamamoto T, Frederiksen J, Ivarsson M, Michaelsson J, et al. T-bet and Eomes are differentially linked to the exhausted phenotype of CD8+ T cells in HIV infection. PLoS Pathog. 2014;10:e1004251 pubmed publisher
  454. Pegram H, Purdon T, van Leeuwen D, Curran K, Giralt S, Barker J, et al. IL-12-secreting CD19-targeted cord blood-derived T cells for the immunotherapy of B-cell acute lymphoblastic leukemia. Leukemia. 2015;29:415-22 pubmed publisher
  455. Jacquelin B, Petitjean G, Kunkel D, Liovat A, Jochems S, Rogers K, et al. Innate immune responses and rapid control of inflammation in African green monkeys treated or not with interferon-alpha during primary SIVagm infection. PLoS Pathog. 2014;10:e1004241 pubmed publisher
  456. Hagel C, Krasemann S, Löffler J, Puschel K, Magnus T, Glatzel M. Upregulation of Shiga toxin receptor CD77/Gb3 and interleukin-1? expression in the brain of EHEC patients with hemolytic uremic syndrome and neurologic symptoms. Brain Pathol. 2015;25:146-56 pubmed publisher
  457. Ye S, Li Z, Luo D, Huang B, Chen Y, Zhang X, et al. Tumor-derived exosomes promote tumor progression and T-cell dysfunction through the regulation of enriched exosomal microRNAs in human nasopharyngeal carcinoma. Oncotarget. 2014;5:5439-52 pubmed
  458. Kubach J, Hubo M, Amendt C, Stroh C, Jonuleit H. IgG1 anti-epidermal growth factor receptor antibodies induce CD8-dependent antitumor activity. Int J Cancer. 2015;136:821-30 pubmed publisher
  459. Vogel K, Thomann S, Vogel B, Schuster P, Schmidt B. Both plasmacytoid dendritic cells and monocytes stimulate natural killer cells early during human herpes simplex virus type 1 infections. Immunology. 2014;143:588-600 pubmed publisher
  460. Payne T, Blackinton J, Frisbee A, Pickeral J, Sawant S, Vandergrift N, et al. Transcriptional and posttranscriptional regulation of cytokine gene expression in HIV-1 antigen-specific CD8+ T cells that mediate virus inhibition. J Virol. 2014;88:9514-28 pubmed publisher
  461. Reibring C, El Shahawy M, Hallberg K, Kannius Janson M, Nilsson J, Parkkila S, et al. Expression patterns and subcellular localization of carbonic anhydrases are developmentally regulated during tooth formation. PLoS ONE. 2014;9:e96007 pubmed publisher
  462. Mace E, Orange J. Lytic immune synapse function requires filamentous actin deconstruction by Coronin 1A. Proc Natl Acad Sci U S A. 2014;111:6708-13 pubmed publisher
  463. Buggert M, Norstr m M, Salemi M, Hecht F, Karlsson A. Functional avidity and IL-2/perforin production is linked to the emergence of mutations within HLA-B*5701-restricted epitopes and HIV-1 disease progression. J Immunol. 2014;192:4685-96 pubmed publisher
  464. Poliakov E, Strunnikova N, Jiang J, Martinez B, Parikh T, Lakkaraju A, et al. Multiple A2E treatments lead to melanization of rod outer segment-challenged ARPE-19 cells. Mol Vis. 2014;20:285-300 pubmed
  465. Prinz P, Mendler A, Brech D, Masouris I, Oberneder R, Noessner E. NK-cell dysfunction in human renal carcinoma reveals diacylglycerol kinase as key regulator and target for therapeutic intervention. Int J Cancer. 2014;135:1832-41 pubmed publisher
  466. Huttunen M, Waris M, Kajander R, Hyypia T, Marjomaki V. Coxsackievirus A9 infects cells via nonacidic multivesicular bodies. J Virol. 2014;88:5138-51 pubmed publisher
  467. Poonia B, Pauza C. Levels of CD56+TIM-3- effector CD8 T cells distinguish HIV natural virus suppressors from patients receiving antiretroviral therapy. PLoS ONE. 2014;9:e88884 pubmed publisher
  468. Cheng J, Fujita A, Yamamoto H, Tatematsu T, Kakuta S, Obara K, et al. Yeast and mammalian autophagosomes exhibit distinct phosphatidylinositol 3-phosphate asymmetries. Nat Commun. 2014;5:3207 pubmed publisher
  469. Chang S, Kohrt H, Maecker H. Monitoring the immune competence of cancer patients to predict outcome. Cancer Immunol Immunother. 2014;63:713-9 pubmed publisher
  470. Poillet L, Pernodet N, Boyer Guittaut M, Adami P, Borg C, Jouvenot M, et al. QSOX1 inhibits autophagic flux in breast cancer cells. PLoS ONE. 2014;9:e86641 pubmed publisher
  471. Fan X, Jin W, Lu J, Wang J, Wang Y. Rapid and reversible knockdown of endogenous proteins by peptide-directed lysosomal degradation. Nat Neurosci. 2014;17:471-80 pubmed publisher
  472. Ingle G, Scales S. DropArray™, a wall-less 96-well plate for uptake and immunofluorescence microscopy, confirms CD22 recycles. Traffic. 2014;15:255-72 pubmed publisher
  473. Hirst J, Borner G, Edgar J, Hein M, Mann M, Buchholz F, et al. Interaction between AP-5 and the hereditary spastic paraplegia proteins SPG11 and SPG15. Mol Biol Cell. 2013;24:2558-69 pubmed publisher
  474. Bauckman K, Haller E, Flores I, Nanjundan M. Iron modulates cell survival in a Ras- and MAPK-dependent manner in ovarian cells. Cell Death Dis. 2013;4:e592 pubmed publisher
  475. Avena P, Anselmo W, Whitaker Menezes D, Wang C, Pestell R, Lamb R, et al. Compartment-specific activation of PPAR? governs breast cancer tumor growth, via metabolic reprogramming and symbiosis. Cell Cycle. 2013;12:1360-70 pubmed publisher
  476. Al Zoubi M, Salem A, Martinez Outschoorn U, Whitaker Menezes D, Lamb R, Hulit J, et al. Creating a tumor-resistant microenvironment: cell-mediated delivery of TNF? completely prevents breast cancer tumor formation in vivo. Cell Cycle. 2013;12:480-90 pubmed publisher
  477. Sánchez Alvarez R, Martinez Outschoorn U, Lin Z, Lamb R, Hulit J, Howell A, et al. Ethanol exposure induces the cancer-associated fibroblast phenotype and lethal tumor metabolism: implications for breast cancer prevention. Cell Cycle. 2013;12:289-301 pubmed publisher
  478. Sánchez Alvarez R, Martinez Outschoorn U, Lamb R, Hulit J, Howell A, Gandara R, et al. Mitochondrial dysfunction in breast cancer cells prevents tumor growth: understanding chemoprevention with metformin. Cell Cycle. 2013;12:172-82 pubmed publisher
  479. Salem A, Howell A, Sartini M, Sotgia F, Lisanti M. Downregulation of stromal BRCA1 drives breast cancer tumor growth via upregulation of HIF-1?, autophagy and ketone body production. Cell Cycle. 2012;11:4167-73 pubmed publisher
  480. Kon T, Mori F, Tanji K, Miki Y, Kimura T, Wakabayashi K. Giant cell polymyositis and myocarditis associated with myasthenia gravis and thymoma. Neuropathology. 2013;33:281-7 pubmed publisher
  481. Ma M, Chircop M. SNX9, SNX18 and SNX33 are required for progression through and completion of mitosis. J Cell Sci. 2012;125:4372-82 pubmed publisher
  482. Clarke J, Emson P, Irvine R. Distribution and neuronal expression of phosphatidylinositol phosphate kinase IIgamma in the mouse brain. J Comp Neurol. 2009;517:296-312 pubmed publisher
  483. Garver W, Jelinek D, Francis G, Murphy B. The Niemann-Pick C1 gene is downregulated by feedback inhibition of the SREBP pathway in human fibroblasts. J Lipid Res. 2008;49:1090-102 pubmed publisher
  484. Febbraio M, Silverstein R. Identification and characterization of LAMP-1 as an activation-dependent platelet surface glycoprotein. J Biol Chem. 1990;265:18531-7 pubmed