Fitness Costs Limit Viral Escape from Cytotoxic T Lymphocytes at a Structurally Constrained Epitope
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Norman L. Letvin | Joseph Sodroski | J. Sodroski | N. Letvin | D. Barouch | Dan H. Barouch | Heidi S. Bazick | Fred W. Peyerl | Michael H. Newberg | M. Newberg | F. Peyerl
[1] B. Walker,et al. Molecular and functional analysis of a conserved CTL epitope in HIV-1 p24 recognized from a long-term nonprogressor: constraints on immune escape associated with targeting a sequence essential for viral replication. , 1999, Journal of immunology.
[2] Todd M. Allen,et al. Expression of the Major Histocompatibility Complex Class I Molecule Mamu-A*01 Is Associated with Control of Simian Immunodeficiency Virus SIVmac239 Replication , 2003, Journal of Virology.
[3] P. Klenerman,et al. Positive selection of HIV-1 cytotoxic T lymphocyte escape variants during primary infection. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[4] Alessandro Sette,et al. Tat-specific cytotoxic T lymphocytes select for SIV escape variants during resolution of primary viraemia , 2000, Nature.
[5] J. Guillet,et al. Temporal loss of Nef-epitope CTL recognition following macaque lipopeptide immunization and SIV challenge. , 2000, Virology.
[6] Todd M. Allen,et al. Cytotoxic T-lymphocyte escape monitoring in simian immunodeficiency virus vaccine challenge studies. , 2002, DNA and cell biology.
[7] John Sidney,et al. Definition of the Mamu A*01 Peptide Binding Specificity: Application to the Identification of Wild-Type and Optimized Ligands from Simian Immunodeficiency Virus Regulatory Proteins1 , 2000, The Journal of Immunology.
[8] J. Levy,et al. Impaired cytotoxic T lymphocyte recognition due to genetic variations in the main immunogenic region of the human immunodeficiency virus 1 NEF protein , 1994, The Journal of experimental medicine.
[9] Xiping Wei,et al. Antiviral pressure exerted by HIV-l-specific cytotoxic T lymphocytes (CTLs) during primary infection demonstrated by rapid selection of CTL escape virus , 1997, Nature Medicine.
[10] L. Weinberger,et al. Dramatic Rise in Plasma Viremia after CD8+ T Cell Depletion in Simian Immunodeficiency Virus–infected Macaques , 1999, The Journal of experimental medicine.
[11] Wesley I. Sundquist,et al. Image reconstructions of helical assemblies of the HIV-1 CA protein , 2022 .
[12] Austin L. Hughes,et al. Acute phase cytotoxic T lymphocyte escape is a hallmark of simian immunodeficiency virus infection , 2002, Nature Medicine.
[13] C. M. Owens,et al. Binding and Susceptibility to Postentry Restriction Factors in Monkey Cells Are Specified by Distinct Regions of the Human Immunodeficiency Virus Type 1 Capsid , 2004, Journal of Virology.
[14] P. Prevelige,et al. Identification of novel interactions in HIV-1 capsid protein assembly by high-resolution mass spectrometry. , 2003, Journal of molecular biology.
[15] Steven M. Wolinsky,et al. Adaptive Evolution of Human Immunodeficiency Virus-Type 1 During the Natural Course of Infection , 1996, Science.
[16] D. Ho,et al. Temporal association of cellular immune responses with the initial control of viremia in primary human immunodeficiency virus type 1 syndrome , 1994, Journal of virology.
[17] Martin A. Nowak,et al. Late escape from an immunodominant cytotoxic T-lymphocyte response associated with progression to AIDS , 1997, Nature Medicine.
[18] A. Hughes,et al. Cytotoxic T lymphocytes do not appear to select for mutations in an immunodominant epitope of simian immunodeficiency virus gag. , 1992, Journal of immunology.
[19] J. Schmitz,et al. Emergence of CTL coincides with clearance of virus during primary simian immunodeficiency virus infection in rhesus monkeys. , 1999, Journal of immunology.
[20] Charles R. M. Bangham,et al. Human immunodeficiency virus genetic variation that can escape cytotoxic T cell recognition , 1991, Nature.
[21] Steven Wolinsky,et al. Simian-Human Immunodeficiency Virus Escape from Cytotoxic T-Lymphocyte Recognition at a Structurally Constrained Epitope , 2003, Journal of Virology.
[22] J. Goedert,et al. Human Immunodeficiency Virus Type 1 (HIV-1)-Specific CD8+-T-Cell Responses for Groups of HIV-1-Infected Individuals with Different HLA-B*35 Genotypes , 2002, Journal of Virology.
[23] C. M. Owens,et al. Human and Simian Immunodeficiency Virus Capsid Proteins Are Major Viral Determinants of Early, Postentry Replication Blocks in Simian Cells , 2003, Journal of Virology.
[24] D. Watkins,et al. Simian Immunodeficiency Virus Evades a Dominant Epitope-Specific Cytotoxic T Lymphocyte Response Through a Mutation Resulting in the Accelerated Dissociation of Viral Peptide and MHC Class I1 , 2000, The Journal of Immunology.
[25] A. Calistri,et al. AIP1/ALIX Is a Binding Partner for HIV-1 p6 and EIAV p9 Functioning in Virus Budding , 2003, Cell.
[26] F. Marincola,et al. HLA B*5701 is highly associated with restriction of virus replication in a subgroup of HIV-infected long term nonprogressors. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[27] N. Pedersen,et al. Shared antigenic epitopes of the major core proteins of human and simian immunodeficiency virus isolates. , 1992, Journal of medical primatology.
[28] Rodney Phillips,et al. Co‐evolution of human immunodeficiency virus and cytotoxic T‐lymphocyte responses , 1997, Immunological reviews.
[29] N. Pedersen,et al. Induction of AIDS in rhesus monkeys by molecularly cloned simian immunodeficiency virus. , 1990, Science.
[30] C. Moore,et al. Evidence of HIV-1 Adaptation to HLA-Restricted Immune Responses at a Population Level , 2002, Science.
[31] D. Montefiori,et al. Control of viremia in simian immunodeficiency virus infection by CD8+ lymphocytes. , 1999, Science.
[32] C. M. Owens,et al. The cytoplasmic body component TRIM5α restricts HIV-1 infection in Old World monkeys , 2004, Nature.
[33] A. Borsetti,et al. The C-Terminal Half of the Human Immunodeficiency Virus Type 1 Gag Precursor Is Sufficient for Efficient Particle Assembly , 1998, Journal of Virology.
[34] Edward C. Holmes,et al. Clustered Mutations in HIV-1 Gag Are Consistently Required for Escape from Hla-B27–Restricted Cytotoxic T Lymphocyte Responses , 2001, The Journal of experimental medicine.
[35] E. Karita,et al. HLA class I homozygosity accelerates disease progression in human immunodeficiency virus type 1 infection. , 1999, AIDS research and human retroviruses.
[36] J J Goedert,et al. Effect of a single amino acid change in MHC class I molecules on the rate of progression to AIDS. , 2001, The New England journal of medicine.
[37] D. Watkins,et al. Rapid and slow progressors differ by a single MHC class I haplotype in a family of MHC-defined rhesus macaques infected with SIV. , 1999, Immunology letters.
[38] Austin L. Hughes,et al. Extraepitopic Compensatory Substitutions Partially Restore Fitness to Simian Immunodeficiency Virus Variants That Escape from an Immunodominant Cytotoxic-T-Lymphocyte Response , 2004, Journal of Virology.
[39] H. Göttlinger,et al. A conserved LXXLF sequence is the major determinant in p6gag required for the incorporation of human immunodeficiency virus type 1 Vpr , 1996, Journal of virology.
[40] A. Meyerhans,et al. Sequence constraints and recognition by CTL of an HLA-B27-restricted HIV-1 gag epitope. , 1995, Journal of immunology.
[41] S. Oka,et al. Evidence of presentation of multiple HIV-1 cytotoxic T lymphocyte epitopes by HLA-B*3501 molecules that are associated with the accelerated progression of AIDS. , 1997, Journal of immunology.
[42] Todd M. Allen,et al. Major Histocompatibility Complex Class I Alleles Associated with Slow Simian Immunodeficiency Virus Disease Progression Bind Epitopes Recognized by Dominant Acute-Phase Cytotoxic-T-Lymphocyte Responses , 2003, Journal of Virology.
[43] J. Clements,et al. Hydrogen Bonding at a Conserved Threonine in Lentivirus Capsid Is Required for Virus Replication , 2003, Journal of Virology.
[44] Todd M. Allen,et al. Virus-specific cytotoxic T-lymphocyte responses select for amino-acid variation in simian immunodeficiency virus Env and Nef , 1999, Nature Medicine.
[45] M. Krawczak,et al. MHC Class I Alleles Influence Set-Point Viral Load and Survival Time in Simian Immunodeficiency Virus-Infected Rhesus Monkeys1 , 2002, The Journal of Immunology.
[46] Kristin Beaudry,et al. Viral Escape from Dominant Simian Immunodeficiency Virus Epitope-Specific Cytotoxic T Lymphocytes in DNA-Vaccinated Rhesus Monkeys , 2003, Journal of Virology.
[47] M. Kuroda,et al. A Commonly Recognized Simian Immunodeficiency Virus Nef Epitope Presented to Cytotoxic T Lymphocytes of Indian-Origin Rhesus Monkeys by the Prevalent Major Histocompatibility Complex Class I Allele Mamu-A*02 , 2001, Journal of Virology.
[48] G. Aldrovandi,et al. Favorable and Unfavorable HLA Class I Alleles and Haplotypes in Zambians Predominantly Infected with Clade C Human Immunodeficiency Virus Type 1 , 2002, Journal of Virology.
[49] R. Desrosiers,et al. The complete nucleotide sequence of a pathogenic molecular clone of simian immunodeficiency virus. , 1990, AIDS research and human retroviruses.
[50] H. Clifford Lane,et al. Transfer of HIV-1-specific cytotoxic T lymphocytes to an AIDS patient leads to selection for mutant HIV variants and subsequent disease progression , 1995, Nature Medicine.
[51] W. Sundquist,et al. Crucial for Viral Replication Virus Type 1 Core of Optimal Stability Is Formation of a Human Immunodeficiency , 2002 .
[52] Steven M. Wolinsky,et al. Eventual AIDS vaccine failure in a rhesus monkey by viral escape from cytotoxic T lymphocytes , 2002, Nature.
[53] W. Sundquist,et al. Proteolytic refolding of the HIV‐1 capsid protein amino‐terminus facilitates viral core assembly , 1998, The EMBO journal.