HIV Coreceptor Downregulation as Antiviral Principle: SDF-1α–dependent Internalization of the Chemokine Receptor CXCR4 Contributes to Inhibition of HIV Replication
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Jean Salamero | J. Salamero | M. Baggiolini | P. Loetscher | O. Schwartz | A. Amara | F. Arenzana‐Seisdedos | J. Virelizier | Fernando Arenzana-Seisdedos | Olivier Schwartz | Ali Amara | Sylvie Le Gall | Monica Montes | Pius Loetscher | Marco Baggiolini | Jean-Louis Virelizier | M. Montes | S. Gall
[1] G. Prado,et al. Role of the C Terminus of the Interleukin 8 Receptor in Signal Transduction and Internalization* , 1996, The Journal of Biological Chemistry.
[2] J. Benovic,et al. β-Arrestin acts as a clathrin adaptor in endocytosis of the β2-adrenergic receptor , 1996, Nature.
[3] R. Aebersold,et al. Chemical synthesis, purification, and characterization of two inflammatory proteins, neutrophil activating peptide 1 (interleukin-8) and neutrophil activating peptide. , 1991, Biochemistry.
[4] V. Harden,et al. Chemokines and HIV–1 second receptors , 1996, Nature Medicine.
[5] K. Matsushima,et al. Interleukin 8 (monocyte-derived neutrophil chemotactic factor) dynamically regulates its own receptor expression on human neutrophils. , 1990, The Journal of biological chemistry.
[6] J. Sodroski,et al. The lymphocyte chemoattractant SDF-1 is a ligand for LESTR/fusin and blocks HIV-1 entry , 1996, Nature.
[7] T. Oravecz,et al. Beta-chemokine inhibition of monocytotropic HIV-1 infection. Interference with a postbinding fusion step. , 1996, Journal of immunology.
[8] A. Trautmann,et al. Antigen recognition by helper T cells elicits a sequence of distinct changes of their shape and intracellular calcium , 1994, Current Biology.
[9] P. Charneau,et al. Complementation of murine cells for human immunodeficiency virus envelope/CD4-mediated fusion in human/murine heterokaryons , 1992, Journal of virology.
[10] S. Arya,et al. Identification of RANTES, MIP-1 alpha, and MIP-1 beta as the major HIV-suppressive factors produced by CD8+ T cells. , 1995, Science.
[11] D. Dimitrov,et al. Evidence for Cell-Surface Association Between Fusin and the CD4-gp120 Complex in Human Cell Lines , 1996, Science.
[12] M. Caron,et al. Role of β-Arrestin in Mediating Agonist-Promoted G Protein-Coupled Receptor Internalization , 1996, Science.
[13] Stephen C. Peiper,et al. Identification of a major co-receptor for primary isolates of HIV-1 , 1996, Nature.
[14] P. Charneau,et al. Fusion from without directed by human immunodeficiency virus particles , 1994, Journal of virology.
[15] Joseph Sodroski,et al. CD4-induced interaction of primary HIV-1 gp120 glycoproteins with the chemokine receptor CCR-5 , 1996, Nature.
[16] B. Moss,et al. Human immunodeficiency virus envelope glycoprotein/CD4-mediated fusion of nonprimate cells with human cells , 1990, Journal of virology.
[17] C. Broder,et al. The block to HIV-1 envelope glycoprotein-mediated membrane fusion in animal cells expressing human CD4 can be overcome by a human cell component(s). , 1993, Virology.
[18] S. Arya,et al. Identification of RANTES, MIP-1α, and MIP-1β as the Major HIV-Suppressive Factors Produced by CD8+ T Cells , 1995, Science.
[19] V. Harden,et al. Chemokines and HIV-1 second receptors. Confluence of two fields generates optimism in AIDS research. , 1996, Nature medicine.
[20] M. Baggiolini,et al. HIV blocked by chemokine antagonist , 1996, Nature.
[21] T. Geiser,et al. Cloning of a human seven-transmembrane domain receptor, LESTR, that is highly expressed in leukocytes. , 1994, The Journal of biological chemistry.
[22] O. Pleskoff,et al. Human immunodeficiency virus strains differ in their ability to infect CD4+ cells expressing the rat homolog of CXCR-4 (fusin) , 1997, Journal of virology.
[23] R. Harrington,et al. Cofactor requirement for human immunodeficiency virus type 1 entry into a CD4-expressing human cell line , 1993, Journal of virology.
[24] C. Broder,et al. CC CKR5: A RANTES, MIP-1α, MIP-1ॆ Receptor as a Fusion Cofactor for Macrophage-Tropic HIV-1 , 1996, Science.
[25] Robin A. Weiss,et al. The T4 gene encodes the AIDS virus receptor and is expressed in the immune system and the brain , 1986, Cell.
[26] C. Broder,et al. CC CKR5: a RANTES, MIP-1alpha, MIP-1beta receptor as a fusion cofactor for macrophage-tropic HIV-1. , 1996, Science.
[27] Ying Sun,et al. The β-Chemokine Receptors CCR3 and CCR5 Facilitate Infection by Primary HIV-1 Isolates , 1996, Cell.
[28] R. Doms,et al. CD4-Independent Infection by HIV-2 Is Mediated by Fusin/CXCR4 , 1996, Cell.
[29] Virginia Litwin,et al. HIV-1 entry into CD4+ cells is mediated by the chemokine receptor CC-CKR-5 , 1996, Nature.
[30] William C. Olson,et al. CD4-dependent, antibody-sensitive interactions between HIV-1 and its co-receptor CCR-5 , 1996, Nature.
[31] S. Coughlin,et al. Phosphorylation by a G protein-coupled kinase inhibits signaling and promotes internalization of the monocyte chemoattractant protein-1 receptor. Critical role of carboxyl-tail serines/threonines in receptor function. , 1996, Journal of immunology.
[32] Paul E. Kennedy,et al. HIV-1 Entry Cofactor: Functional cDNA Cloning of a Seven-Transmembrane, G Protein-Coupled Receptor , 1996, Science.
[33] Bernhard Moser,et al. The CXC chemokine SDF-1 is the ligand for LESTR/fusin and prevents infection by T-cell-line-adapted HIV-1 , 1996, Nature.
[34] Marc Parmentier,et al. A Dual-Tropic Primary HIV-1 Isolate That Uses Fusin and the β-Chemokine Receptors CKR-5, CKR-3, and CKR-2b as Fusion Cofactors , 1996, Cell.