Clustering and Mobility of HIV-1 Env at Viral Assembly Sites Predict Its Propensity To Induce Cell-Cell Fusion
暂无分享,去创建一个
[1] James B. Munro,et al. Cell-to-cell transmission of viruses. , 2013, Current opinion in virology.
[2] M. Heilemann,et al. Super-Resolution Microscopy Reveals Specific Recruitment of HIV-1 Envelope Proteins to Viral Assembly Sites Dependent on the Envelope C-Terminal Tail , 2013, PLoS pathogens.
[3] Katharina Gaus,et al. Conformational states of the kinase Lck regulate clustering in early T cell signaling , 2012, Nature Immunology.
[4] P. Benaroch,et al. Critical role for the kinesin KIF3A in the HIV life cycle in primary human macrophages , 2012, The Journal of cell biology.
[5] Thorsten Staudt,et al. Maturation-Dependent HIV-1 Surface Protein Redistribution Revealed by Fluorescence Nanoscopy , 2012, Science.
[6] Suliana Manley,et al. Quantitative super-resolution imaging reveals protein stoichiometry and nanoscale morphology of assembling HIV-Gag virions. , 2012, Nano letters.
[7] Andrew D. Luster,et al. HIV-infected T cells are migratory vehicles for viral dissemination , 2012, Nature.
[8] W. Sundquist,et al. HIV-1 assembly, budding, and maturation. , 2012, Cold Spring Harbor perspectives in medicine.
[9] Mike Heilemann,et al. Super-resolution Imaging Reveals the Internal Architecture of Nano-sized Syntaxin Clusters* , 2012, The Journal of Biological Chemistry.
[10] Ricardo Henriques,et al. Superresolution imaging of HIV in infected cells with FlAsH-PALM , 2012, Proceedings of the National Academy of Sciences.
[11] K. Gaus,et al. HIV taken by STORM: Super-resolution fluorescence microscopy of a viral infection , 2012, Virology Journal.
[12] K. Jacobson,et al. Super-resolution imaging of C-type lectin and influenza hemagglutinin nanodomains on plasma membranes using blink microscopy. , 2012, Biophysical journal.
[13] M. Marsh,et al. The cell biology of receptor-mediated virus entry , 2011, The Journal of cell biology.
[14] M. Stevenson,et al. A Highly Conserved Residue in the C-Terminal Helix of HIV-1 Matrix Is Required for Envelope Incorporation into Virus Particles , 2011, Journal of Virology.
[15] J. Hofkens,et al. Quantitative Multicolor Super-Resolution Microscopy Reveals Tetherin HIV-1 Interaction , 2011, PLoS pathogens.
[16] Prabuddha Sengupta,et al. Probing protein heterogeneity in the plasma membrane using PALM and pair correlation analysis , 2011, Nature Methods.
[17] Hayder Amin,et al. Membrane protein sequestering by ionic protein-lipid interactions , 2011, Nature.
[18] J. Crowe,et al. Maturation-Induced Cloaking of Neutralization Epitopes on HIV-1 Particles , 2011, PLoS pathogens.
[19] K. Nagashima,et al. Gag Induces the Coalescence of Clustered Lipid Rafts and Tetraspanin-Enriched Microdomains at HIV-1 Assembly Sites on the Plasma Membrane , 2011, Journal of Virology.
[20] M. Heilemann,et al. A SNAP-Tagged Derivative of HIV-1—A Versatile Tool to Study Virus-Cell Interactions , 2011, PloS one.
[21] E. Freed,et al. HIV-1 envelope glycoprotein biosynthesis, trafficking, and incorporation. , 2011, Journal of molecular biology.
[22] Benjamin B. Machta,et al. Correlation Functions Quantify Super-Resolution Images and Estimate Apparent Clustering Due to Over-Counting , 2011, PloS one.
[23] C. Bräuchle,et al. Live-cell visualization of dynamics of HIV budding site interactions with an ESCRT component , 2011, Nature Cell Biology.
[24] Marc C. Johnson. Mechanisms for Env glycoprotein acquisition by retroviruses. , 2011, AIDS research and human retroviruses.
[25] P. Bieniasz,et al. Dynamics of ESCRT protein recruitment during retroviral assembly , 2011, Nature Cell Biology.
[26] Nathan H. Roy,et al. HIV‐1 Assembly Differentially Alters Dynamics and Partitioning of Tetraspanins and Raft Components , 2010, Traffic.
[27] Marc C. Johnson,et al. Two distinct mechanisms regulate recruitment of murine leukemia virus envelope protein to retroviral assembly sites. , 2010, Virology.
[28] Astrid Magenau,et al. PALM imaging and cluster analysis of protein heterogeneity at the cell surface , 2010, Journal of biophotonics.
[29] A. Ono,et al. Relationships between plasma membrane microdomains and HIV‐1 assembly , 2010, Biology of the cell.
[30] E. Poeschla,et al. Live-Cell Coimaging of the Genomic RNAs and Gag Proteins of Two Lentiviruses , 2010, Journal of Virology.
[31] Kai Simons,et al. Lipid Rafts As a Membrane-Organizing Principle , 2010, Science.
[32] P. Bieniasz,et al. Imaging the interaction of HIV-1 genomes and Gag during assembly of individual viral particles , 2009, Proceedings of the National Academy of Sciences.
[33] Karl Rohr,et al. Dynamics of HIV-1 Assembly and Release , 2009, PLoS pathogens.
[34] J. Hancock,et al. On the use of Ripley's K-function and its derivatives to analyze domain size. , 2009, Biophysical journal.
[35] E. Freed,et al. Lipids and membrane microdomains in HIV-1 replication. , 2009, Virus research.
[36] P. Spearman,et al. Characterization of a myristoylated, monomeric HIV Gag protein. , 2009, Virology.
[37] Frank Y. S. Chuang,et al. Quantitative 3D Video Microscopy of HIV Transfer Across T Cell Virological Synapses , 2009, Science.
[38] S. Hell,et al. Direct observation of the nanoscale dynamics of membrane lipids in a living cell , 2009, Nature.
[39] Marc C. Johnson,et al. Foreign Glycoproteins Can Be Actively Recruited to Virus Assembly Sites during Pseudotyping , 2009, Journal of Virology.
[40] Q. Sattentau,et al. Avoiding the void: cell-to-cell spread of human viruses , 2008, Nature Reviews Microbiology.
[41] Sanford M. Simon,et al. Imaging the biogenesis of individual HIV-1 virions in live cells , 2008, Nature.
[42] Mark Bates,et al. Three-Dimensional Super-Resolution Imaging by Stochastic Optical Reconstruction Microscopy , 2008, Science.
[43] J. Lippincott-Schwartz,et al. High-density mapping of single-molecule trajectories with photoactivated localization microscopy , 2008, Nature Methods.
[44] Samuel T. Hess,et al. Dynamic clustered distribution of hemagglutinin resolved at 40 nm in living cell membranes discriminates between raft theories , 2007, Proceedings of the National Academy of Sciences.
[45] R. Gordon,et al. Sequence of Human Immunodeficiency Virus Type 1 (HIV-1) Gag Localization and Oligomerization Monitored with Live Confocal Imaging of a Replication-Competent, Fluorescently Tagged HIV-1 , 2007, Journal of Virology.
[46] W. Hübner,et al. Predominant Mode of Human Immunodeficiency Virus Transfer between T Cells Is Mediated by Sustained Env-Dependent Neutralization-Resistant Virological Synapses , 2007, Journal of Virology.
[47] Thorsten Lang,et al. Anatomy and Dynamics of a Supramolecular Membrane Protein Cluster , 2007, Science.
[48] Jiyang Jiang,et al. Maturation-Dependent Human Immunodeficiency Virus Type 1 Particle Fusion Requires a Carboxyl-Terminal Region of the gp41 Cytoplasmic Tail , 2007, Journal of Virology.
[49] Sriram Subramaniam,et al. Electron Tomography of the Contact between T Cells and SIV/HIV-1: Implications for Viral Entry , 2007, PLoS pathogens.
[50] David Barlam,et al. A stiffness switch in human immunodeficiency virus. , 2007, Biophysical journal.
[51] S. Hell,et al. Nanoscale organization of nicotinic acetylcholine receptors revealed by stimulated emission depletion microscopy , 2007, Neuroscience.
[52] J. Hoxie,et al. A conserved dileucine motif mediates clathrin and AP-2-dependent endocytosis of the HIV-1 envelope protein. , 2006, Molecular biology of the cell.
[53] O. Schwartz,et al. Inefficient Human Immunodeficiency Virus Replication in Mobile Lymphocytes , 2006, Journal of Virology.
[54] J. Lippincott-Schwartz,et al. Imaging Intracellular Fluorescent Proteins at Nanometer Resolution , 2006, Science.
[55] T. Hope,et al. Mobility of Human Immunodeficiency Virus Type 1 Pr55Gag in Living Cells , 2006, Journal of Virology.
[56] J. Lifson,et al. Distribution and three-dimensional structure of AIDS virus envelope spikes , 2006, Nature.
[57] Marc C. Johnson,et al. Visualization of retrovirus budding with correlated light and electron microscopy , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[58] J. Hoxie,et al. Regulation of Human Immunodeficiency Virus Type 1 Envelope Glycoprotein Fusion by a Membrane-Interactive Domain in the gp41 Cytoplasmic Tail , 2005, Journal of Virology.
[59] Surojit Sarkar,et al. Antibody Neutralization Escape Mediated by Point Mutations in the Intracytoplasmic Tail of Human Immunodeficiency Virus Type 1 gp41 , 2005, Journal of Virology.
[60] J. Lineberger,et al. Coupling of Human Immunodeficiency Virus Type 1 Fusion to Virion Maturation: a Novel Role of the gp41 Cytoplasmic Tail , 2004, Journal of Virology.
[61] Clare Jolly,et al. HIV-1 Cell to Cell Transfer across an Env-induced, Actin-dependent Synapse , 2004, The Journal of experimental medicine.
[62] E. Freed,et al. Regulation of Human Immunodeficiency Virus Type 1 Env-Mediated Membrane Fusion by Viral Protease Activity , 2004, Journal of Virology.
[63] J. Lippincott-Schwartz,et al. Measuring Protein Mobility by Photobleaching GFP Chimeras in Living Cells , 2003, Current protocols in cell biology.
[64] D. McDonald,et al. Recruitment of HIV and Its Receptors to Dendritic Cell-T Cell Junctions , 2003, Science.
[65] J. Hoxie,et al. Envelope Glycoprotein Incorporation, Not Shedding of Surface Envelope Glycoprotein (gp120/SU), Is the Primary Determinant of SU Content of Purified Human Immunodeficiency Virus Type 1 and Simian Immunodeficiency Virus , 2002, Journal of Virology.
[66] Susan Zolla-Pazner,et al. Truncation of the Cytoplasmic Domain Induces Exposure of Conserved Regions in the Ectodomain of Human Immunodeficiency Virus Type 1 Envelope Protein , 2002, Journal of Virology.
[67] H. Akari,et al. Cell-Dependent Requirement of Human Immunodeficiency Virus Type 1 gp41 Cytoplasmic Tail for Env Incorporation into Virions , 2000, Journal of virology.
[68] E. Freed,et al. Genetic Evidence for an Interaction between Human Immunodeficiency Virus Type 1 Matrix and α-Helix 2 of the gp41 Cytoplasmic Tail , 2000, Journal of Virology.
[69] E. Freed,et al. The long cytoplasmic tail of gp41 is required in a cell type-dependent manner for HIV-1 envelope glycoprotein incorporation into virions. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[70] R. Benarous,et al. Interactions of the Cytoplasmic Domains of Human and Simian Retroviral Transmembrane Proteins with Components of the Clathrin Adaptor Complexes Modulate Intracellular and Cell Surface Expression of Envelope Glycoproteins , 1999, Journal of Virology.
[71] J. Bonifacino,et al. A Membrane-proximal Tyrosine-based Signal Mediates Internalization of the HIV-1 Envelope Glycoprotein via Interaction with the AP-2 Clathrin Adaptor* , 1998, The Journal of Biological Chemistry.
[72] H. Gelderblom,et al. Efficient HIV‐1 replication can occur in the absence of the viral matrix protein , 1998, The EMBO journal.
[73] J. Bonifacino,et al. Interaction of endocytic signals from the HIV-1 envelope glycoprotein complex with members of the adaptor medium chain family. , 1997, Virology.
[74] D. Soll,et al. HIV-induced T cell syncytia are self-perpetuating and the primary cause of T cell death in culture. , 1997, Journal of immunology.
[75] R. Siliciano,et al. Human Immunodeficiency Virus Type 1 Envelope Protein Endocytosis Mediated by a Highly Conserved Intrinsic Internalization Signal in the Cytoplasmic Domain of gp41 Is Suppressed in the Presence of the Pr55 Precursor Protein , 1996 .
[76] E. Freed,et al. Domains of the human immunodeficiency virus type 1 matrix and gp41 cytoplasmic tail required for envelope incorporation into virions , 1996, Journal of virology.
[77] R. Siliciano,et al. Endocytosis of endogenously synthesized HIV-1 envelope protein. Mechanism and role in processing for association with class II MHC. , 1995, Journal of immunology.
[78] J. Sodroski,et al. Rescue of human immunodeficiency virus type 1 matrix protein mutants by envelope glycoproteins with short cytoplasmic domains , 1995, Journal of virology.
[79] E. Freed,et al. Virion incorporation of envelope glycoproteins with long but not short cytoplasmic tails is blocked by specific, single amino acid substitutions in the human immunodeficiency virus type 1 matrix , 1995, Journal of virology.
[80] É. Oksenhendler,et al. HIV and T cell expansion in splenic white pulps is accompanied by infiltration of HIV-specific cytotoxic T lymphocytes , 1994, Cell.
[81] E. Freed,et al. Single amino acid changes in the human immunodeficiency virus type 1 matrix protein block virus particle production , 1994, Journal of virology.
[82] W. Haseltine,et al. Role of the matrix protein in the virion association of the human immunodeficiency virus type 1 envelope glycoprotein , 1994, Journal of virology.
[83] D. Phillips,et al. Productive infection of a cervical epithelial cell line with human immunodeficiency virus: implications for sexual transmission , 1993, Journal of virology.
[84] R Blumenthal,et al. Quantitation of human immunodeficiency virus type 1 infection kinetics , 1993, Journal of virology.
[85] Z. Matsuda,et al. The matrix protein of human immunodeficiency virus type 1 is required for incorporation of viral envelope protein into mature virions , 1992, Journal of virology.
[86] D. Dimitrov,et al. Cell-to-cell spread of HIV-1 occurs within minutes and may not involve the participation of virus particles. , 1992, Virology.
[87] B. Ripley. Tests of 'Randomness' for Spatial Point Patterns , 1979 .
[88] W. Webb,et al. Mobility measurement by analysis of fluorescence photobleaching recovery kinetics. , 1976, Biophysical journal.
[89] M. Heilemann,et al. Single-molecule coordinate-based analysis of the morphology of HIV-1 assembly sites with near-molecular spatial resolution , 2012, Histochemistry and Cell Biology.
[90] Mark M Davis,et al. TCR and Lat are expressed on separate protein islands on T cell membranes and concatenate during activation , 2010, Nature Immunology.
[91] D. Soll,et al. T cell syncytia induced by HIV release. T cell chemoattractants: demonstration with a newly developed single cell chemotaxis chamber. , 1998, Journal of cell science.
[92] D. Soumpasis. Theoretical analysis of fluorescence photobleaching recovery experiments. , 1983, Biophysical journal.
[93] B. Ripley. Modelling Spatial Patterns , 1977 .