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Walker, Bruce

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Walker

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Bruce

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Walker, Bruce

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Now showing 1 - 5 of 5
  • Publication

    Antigen Load and Viral Sequence Diversification Determine the Functional Profile of HIV-1–Specific CD8+ T Cells

    (Public Library of Science, 2008) Brumme, Zabrina L; Anastario, Michael; Cohen, Kristin W; Jolin, Jonathan S; Brumme, Chanson J; Streeck, Hendrik; Meier, Angela; Rosenberg, Eric; Alter, Galit; Allen, Todd; Walker, Bruce; Altfeld, Marcus

    Background: Virus-specific CD8+ T lymphocytes play a key role in the initial reduction of peak viremia during acute viral infections, but display signs of increasing dysfunction and exhaustion under conditions of chronic antigen persistence. It has been suggested that virus-specific CD8+ T cells with a “polyfunctional” profile, defined by the capacity to secrete multiple cytokines or chemokines, are most competent in controlling viral replication in chronic HIV-1 infection. We used HIV-1 infection as a model of chronic persistent viral infection to investigate the process of exhaustion and dysfunction of virus-specific CD8+ T cell responses on the single-epitope level over time, starting in primary HIV-1 infection. Methods and Findings: We longitudinally analyzed the polyfunctional epitope-specific CD8+ T cell responses of 18 patients during primary HIV-1 infection before and after therapy initiation or sequence variation in the targeted epitope. Epitope-specific CD8+ T cells responded with multiple effector functions to antigenic stimulation during primary HIV-1 infection, but lost their polyfunctional capacity in response to antigen and up-regulated programmed death 1 (PD-1) expression with persistent viremic infection. This exhausted phenotype significantly decreased upon removal of stimulation by antigen, either in response to antiretroviral therapy or by reduction of epitope-specific antigen load in the presence of ongoing viral replication, as a consequence of in vivo selection of cytotoxic T lymphocyte escape mutations in the respective epitopes. Monofunctionality increased in CD8+ T cell responses directed against conserved epitopes from 49% (95% confidence interval 27%–72%) to 76% (56%–95%) (standard deviation [SD] of the effect size 0.71), while monofunctionality remained stable or slightly decreased for responses directed against escaped epitopes from 61% (47%–75%) to 56% (42%–70%) (SD of the effect size 0.18) (p < 0.05). Conclusion: These data suggest that persistence of antigen can be the cause, rather than the consequence, of the functional impairment of virus-specific T cell responses observed during chronic HIV-1 infection, and underscore the importance of evaluating autologous viral sequences in studies aimed at investigating the relationship between virus-specific immunity and associated pathogenesis.

  • Publication

    HLA Alleles Associated with Delayed Progression to AIDS Contribute Strongly to the Initial CD8+ T Cell Response against HIV-1

    (Public Library of Science, 2006) Kalife, Elizabeth T; Qi, Ying; Johnston, Mary N; Burgett, Nicole; Swartz, Martha E; Yang, Amy; Rockstroh, Juergen K; Jessen, Heiko; Carrington, Mary; Altfeld, Marcus; Streeck, Hendrik; Lichterfeld, Mathias; Alter, Galit; Yu, Xu; Meier, Angela; Allen, Todd; Rosenberg, Eric; Walker, Bruce

    Background: Very little is known about the immunodominance patterns of HIV-1-specific T cell responses during primary HIV-1 infection and the reasons for human lymphocyte antigen (HLA) modulation of disease progression. Methods and Findings: In a cohort of 104 individuals with primary HIV-1 infection, we demonstrate that a subset of CD8+ T cell epitopes within HIV-1 are consistently targeted early after infection, while other epitopes subsequently targeted through the same HLA class I alleles are rarely recognized. Certain HLA alleles consistently contributed more than others to the total virus-specific CD8+ T cell response during primary infection, and also reduced the absolute magnitude of responses restricted by other alleles if coexpressed in the same individual, consistent with immunodomination. Furthermore, individual HLA class I alleles that have been associated with slower HIV-1 disease progression contributed strongly to the total HIV-1-specific CD8+ T cell response during primary infection. Conclusions: These data demonstrate consistent immunodominance patterns of HIV-1-specific CD8+ T cell responses during primary infection and provide a mechanistic explanation for the protective effect of specific HLA class I alleles on HIV-1 disease progression.

  • Publication

    P09-20 LB. Ultra-Deep Sequencing of Full-Length HIV-1 Genomes Identifies Rapid Viral Evolution During Acute Infection

    (BioMed Central, 2009) Henn, MR; Lennon, N; Malboeuf, C; Charlebois, P; Philips, L; Berical, A; Erlich, R; Kemper, M; Axten, K; Brumme, Z; Brumme, C; Jessen, H; Nusbaum, C; Birren, B; Allen, TM; Boutwell, C; Power, K; Gladden, Andrew B; Levin, Jonathan; Casali, Monica; Berlin, Adam; Anderson, S; Streeck, Hendrik; Ryan, Edward; Wang, Y; Green, L; Russ, Christiana; Rosenberg, Eric; Altfeld, Marcus; Walker, Bruce
  • Publication

    Whole Genome Deep Sequencing of HIV-1 Reveals the Impact of Early Minor Variants Upon Immune Recognition During Acute Infection

    (Public Library of Science, 2012) Henn, Matthew R.; Charlebois, Patrick; Lennon, Niall J.; Power, Karen A.; Macalalad, Alexander R.; Berlin, Aaron M.; Malboeuf, Christine M.; Gnerre, Sante; Erlich, Rachel L.; Green, Lisa M.; Berical, Andrew; Wang, Yaoyu; Newman, Ruchi; Axten, Karen L.; Gladden, Adrianne D.; Battis, Laura; Kemper, Michael; Zeng, Qiandong; Shea, Terrance P.; Gujja, Sharvari; Zedlack, Carmen; Gasser, Olivier; Brander, Christian; Günthard, Huldrych F.; Brumme, Zabrina L.; Brumme, Chanson J.; Bazner, Suzane; Rychert, Jenna; Tinsley, Jake P.; Levin, Joshua Z.; Jessen, Heiko; Birren, Bruce W.; Boutwell, C; Ryan, Elizabeth M.; Zody, M; Casali, Monica; Streeck, Hendrik; Bloom, Allyson; Dudek, Timothy E; Tully, Damien C; Hess, Christoph; Mayer, Kenneth; Rosenberg, Eric; Pereyra, F; Young, Sarah K.; Altfeld, Marcus; Walker, Bruce; Allen, Todd

    Deep sequencing technologies have the potential to transform the study of highly variable viral pathogens by providing a rapid and cost-effective approach to sensitively characterize rapidly evolving viral quasispecies. Here, we report on a high-throughput whole HIV-1 genome deep sequencing platform that combines 454 pyrosequencing with novel assembly and variant detection algorithms. In one subject we combined these genetic data with detailed immunological analyses to comprehensively evaluate viral evolution and immune escape during the acute phase of HIV-1 infection. The majority of early, low frequency mutations represented viral adaptation to host CD8+ T cell responses, evidence of strong immune selection pressure occurring during the early decline from peak viremia. CD8+ T cell responses capable of recognizing these low frequency escape variants coincided with the selection and evolution of more effective secondary HLA-anchor escape mutations. Frequent, and in some cases rapid, reversion of transmitted mutations was also observed across the viral genome. When located within restricted CD8 epitopes these low frequency reverting mutations were sufficient to prime de novo responses to these epitopes, again illustrating the capacity of the immune response to recognize and respond to low frequency variants. More importantly, rapid viral escape from the most immunodominant CD8+ T cell responses coincided with plateauing of the initial viral load decline in this subject, suggestive of a potential link between maintenance of effective, dominant CD8 responses and the degree of early viremia reduction. We conclude that the early control of HIV-1 replication by immunodominant CD8+ T cell responses may be substantially influenced by rapid, low frequency viral adaptations not detected by conventional sequencing approaches, which warrants further investigation. These data support the critical need for vaccine-induced CD8+ T cell responses to target more highly constrained regions of the virus in order to ensure the maintenance of immunodominant CD8 responses and the sustained decline of early viremia.

  • Publication

    Temporal effect of HLA-B*57 on viral control during primary HIV-1 infection

    (BioMed Central, 2013) Vaidya, Sagar A; Streeck, Hendrik; Beckwith, Noor; Ghebremichael, Musie; Pereyra, F; Kwon, Douglas; Addo, Marylyn M; Rychert, Jenna; Routy, Jean-Pierre; Jessen, Heiko; Kelleher, Anthony D; Hecht, Frederick; Sekaly, Rafick-Pierre; Carrington, Mary; Walker, Bruce; Allen, Todd; Rosenberg, Eric; Altfeld, Marcus

    Background: HLA-B alleles are associated with viral control in chronic HIV-1 infection, however, their role in primary HIV-1 disease is unclear. This study sought to determine the role of HLA-B alleles in viral control during the acute phase of HIV-1 infection and establishment of the early viral load set point (VLSP). Findings: Individuals identified during primary HIV-1 infection were HLA class I typed and followed longitudinally. Associations between HLA-B alleles and HIV-1 viral replication during acute infection and VLSP were analyzed in untreated subjects. The results showed that neither HLA-B57 nor HLA-B27 were significantly associated with viral control during acute HIV-1 infection (Fiebig stage I-IV, n=171). HLA-B57 was however significantly associated with a subsequent lower VLSP (p<0.001, n=135) with nearly 1 log10 less median viral load. Analysis of a known polymorphism at position 97 of HLA-B showed significant associations with both lower initial viral load (p<0.01) and lower VLSP (p<0.05). However, this association was dependent on different amino acids at this position for each endpoint. Conclusions: The effect of HLA-B57 on viral control is more pronounced during the later stages of primary HIV-1 infection, which suggests the underlying mechanism of control occurs at a critical period in the first several months after HIV-1 acquisition. The risk profile of polymorphisms at position 97 of HLA-B are more broadly associated with HIV-1 viral load during primary infection and may serve as a focal point in further studies of HLA-B function.