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Details

Autor(en) / Beteiligte
Titel
CTL escape mediated by proteasomal destruction of an HIV-1 cryptic epitope
Ist Teil von
  • PLoS pathogens, 2011-05, Vol.7 (5), p.e1002049-e1002049
Ort / Verlag
United States: Public Library of Science
Erscheinungsjahr
2011
Link zum Volltext
Quelle
MEDLINE
Beschreibungen/Notizen
  • Cytotoxic CD8+ T cells (CTLs) play a critical role in controlling viral infections. HIV-infected individuals develop CTL responses against epitopes derived from viral proteins, but also against cryptic epitopes encoded by viral alternative reading frames (ARF). We studied here the mechanisms of HIV-1 escape from CTLs targeting one such cryptic epitope, Q9VF, encoded by an HIVgag ARF and presented by HLA-B*07. Using PBMCs of HIV-infected patients, we first cloned and sequenced proviral DNA encoding for Q9VF. We identified several polymorphisms with a minority of proviruses encoding at position 5 an aspartic acid (Q9VF/5D) and a majority encoding an asparagine (Q9VF/5N). We compared the prevalence of each variant in PBMCs of HLA-B*07+ and HLA-B*07- patients. Proviruses encoding Q9VF/5D were significantly less represented in HLA-B*07+ than in HLA-B*07- patients, suggesting that Q9FV/5D encoding viruses might be under selective pressure in HLA-B*07+ individuals. We thus analyzed ex vivo CTL responses directed against Q9VF/5D and Q9VF/5N. Around 16% of HLA-B*07+ patients exhibited CTL responses targeting Q9VF epitopes. The frequency and the magnitude of CTL responses induced with Q9VF/5D or Q9VF/5N peptides were almost equal indicating a possible cross-reactivity of the same CTLs on the two peptides. We then dissected the cellular mechanisms involved in the presentation of Q9VF variants. As expected, cells infected with HIV strains encoding for Q9VF/5D were recognized by Q9VF/5D-specific CTLs. In contrast, Q9VF/5N-encoding strains were neither recognized by Q9VF/5N- nor by Q9VF/5D-specific CTLs. Using in vitro proteasomal digestions and MS/MS analysis, we demonstrate that the 5N variation introduces a strong proteasomal cleavage site within the epitope, leading to a dramatic reduction of Q9VF epitope production. Our results strongly suggest that HIV-1 escapes CTL surveillance by introducing mutations leading to HIV ARF-epitope destruction by proteasomes.
Sprache
Englisch
Identifikatoren
ISSN: 1553-7374, 1553-7366
eISSN: 1553-7374
DOI: 10.1371/journal.ppat.1002049
Titel-ID: cdi_plos_journals_1289082112
Format
Schlagworte
Acquired immune deficiency syndrome, Adult, AIDS, Amino Acid Sequence, Animals, Antigen presentation, Antigen Presentation - genetics, Antigen Presentation - immunology, Antigen processing, Antigenic determinants, Asparagine, Aspartic acid, CD8 antigen, Cross-reactivity, Cytotoxicity, Data Collection, Digestion, DNA, Epitopes, Epitopes, T-Lymphocyte - genetics, Epitopes, T-Lymphocyte - immunology, Epitopes, T-Lymphocyte - physiology, Female, gag Gene Products, Human Immunodeficiency Virus - genetics, gag Gene Products, Human Immunodeficiency Virus - immunology, gag Gene Products, Human Immunodeficiency Virus - metabolism, Gag protein, Genetic aspects, Histocompatibility antigen HLA, HIV, HIV Antigens - metabolism, HIV Infections - immunology, HIV Infections - virology, HIV-1 - genetics, HIV-1 - immunology, HIV-1 - metabolism, HLA-B7 Antigen - metabolism, Hospitals, Human immunodeficiency virus, Human immunodeficiency virus 1, Humans, Immunology, Infection, Language, Life Sciences, Long-Term Care, Lymphocytes T, Male, Medicine, Mice, Mice, Inbred BALB C, Microbiology and Parasitology, Middle Aged, Molecular Sequence Data, Mutation, New Jersey, Nucleotide sequence, Open reading frames, Pathogens, Patient Discharge, Physiological aspects, Polymorphism, Genetic, Pressure, Proteasome Endopeptidase Complex - immunology, Proteasome Endopeptidase Complex - physiology, proteasomes, Proteins, Proviruses, Replication, RNA, Viral - chemistry, RNA, Viral - genetics, Sequence Analysis, DNA, T cells, T-Lymphocytes, Cytotoxic - immunology, T-Lymphocytes, Cytotoxic - virology, Viral Load, Virology, Virus diseases, Young Adult

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