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Dudek, Timothy E

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Dudek

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Timothy E

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Dudek, Timothy E

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Now showing 1 - 5 of 5
  • Publication

    TLR7/9 Antagonist Reduces HIV-1-Induced Immune Activation

    (BioMed Central, 2012) Chang, Ju-Hui; Lindsay, RJ; Doyle, EH; Vrbanac, Vladimir; Seung, Edward N.; Dudek, Timothy E; Bosch, Ronald; Precopio, M; Kandimalla, E; Tager, Andrew Martin; Altfeld, Marcus
  • 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

    The Humanized BLT Mouse to Study HIV Transmission

    (BioMed Central, 2012) Deruaz, Maud; Murooka, Thomas; Dudek, Timothy E; Vrbanac, Vladimir; Tivet, T; Bankert, KC; Allen, Todd; Tager, Andrew Martin; Luster, Andrew
  • Publication

    Neutralizing Anti-HIV Antibodies Develop in a Humanized Mouse Model of HIV-1 Infection

    (BioMed Central, 2012) Vrbanac, Vladimir; Tivey, T; Cariappa, A; Seung, Edward N.; Dugast, Anne-Sophie; Dudek, Timothy E; Mattoo, Hamid; Murooka, Thomas; Pillai, Shiv; Tager, Andrew Martin; Luster, Andrew
  • Publication

    PD-1 Blockade in Chronically HIV-1-Infected Humanized Mice Suppresses Viral Loads

    (Public Library of Science, 2013) Seung, Edward N.; Dudek, Timothy E; Allen, Todd M.; Freeman, Gordon; Luster, Andrew; Tager, Andrew Martin

    An estimated 34 million people are living with HIV worldwide (UNAIDS, 2012), with the number of infected persons rising every year. Increases in HIV prevalence have resulted not only from new infections, but also from increases in the survival of HIV-infected persons produced by effective anti-retroviral therapies. Augmentation of anti-viral immune responses may be able to further increase the survival of HIV-infected persons. One strategy to augment these responses is to reinvigorate exhausted anti-HIV immune cells present in chronically infected persons. The PD-1-PD-L1 pathway has been implicated in the exhaustion of virus-specific T cells during chronic HIV infection. Inhibition of PD-1 signaling using blocking anti-PD-1 antibodies has been shown to reduce simian immunodeficiency virus (SIV) loads in monkeys. We now show that PD-1 blockade can improve control of HIV replication in vivo in an animal model. BLT (Bone marrow-Liver-Thymus) humanized mice chronically infected with HIV-1 were treated with an anti-PD-1 antibody over a 10-day period. The PD-1 blockade resulted in a very significant 45-fold reduction in HIV viral loads in humanized mice with high CD8+ T cell expression of PD-1, compared to controls at 4 weeks post-treatment. The anti-PD-1 antibody treatment also resulted in a significant increase in CD8+ T cells. PD-1 blockade did not affect T cell expression of other inhibitory receptors co-expressed with PD-1, including CD244, CD160 and LAG-3, and did not appear to affect virus-specific humoral immune responses. These data demonstrate that inhibiting PD-1 signaling can reduce HIV viral loads in vivo in the humanized BLT mouse model, suggesting that blockade of the PD-1-PD-L1 pathway may have therapeutic potential in the treatment of patients already infected with the AIDS virus.