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A Hardwired HIV Latency Program

机译:硬连线HIV延迟计划

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摘要

Biological circuits can be controlled by two general schemes: environmental sensing or autonomous programs. For viruses such as HIV, the prevailing hypothesis is that latent infection is controlled by cellular state (i.e., environment), with latency simply an epiphenomenon of infected cells transitioning from an activated to resting state. However, we find that HIV expression persists despite the activated-to-resting cellular transition. Mathematical modeling indicates that HIV's Tat positive-feedback circuitry enables this persistence and strongly controls latency. To overcome the inherent crosstalk between viral circuitry and cellular activation and to directly test this hypothesis, we synthetically decouple viral dependence on cellular environment from viral transcription. These circuits enable control of viral transcription without cellular activation and show that Tat feedback is sufficient to regulate latency independent of cellular activation. Overall, synthetic reconstruction demonstrates that a largely autonomous, viral-encoded program underlies HIV latency potentially explaining why cell-targeted latency-reversing agents exhibit incomplete penetrance.
机译:生物电路可以由两个一般方案控制:环境感官或自主程序。对于诸如HIV的病毒,普遍的假设是通过细胞状态(即环境)来控制潜在感染,延迟仅仅是从活化到静止状态转变的受感染细胞的Epiphenomenon。然而,尽管活化到静止的蜂窝过渡,但我们发现HIV表达仍然存在。数学建模表明,HIV的TAT正反馈电路使得能够这种持久性并强烈控制延迟。为了克服病毒电路和细胞活化之间的固有串扰并直接测试该假设,我们从病毒转录中综合对病毒环境脱钩。这些电路能够控制无细胞激活的病毒转录,并表明TAT反馈足以调节与细胞激活无关的潜伏期。总体而言,合成重建表明,主要是自主的病毒编码的程序下潜艾滋病毒潜伏期潜在地解释为什么细胞靶向延迟逆转剂表现出不完全渗透的原因。

著录项

  • 来源
    《Cell》 |2015年第5期|共12页
  • 作者单位

    Gladstone Inst Virol &

    Immunol San Francisco CA 94141 USA;

    Gladstone Inst Virol &

    Immunol San Francisco CA 94141 USA;

    Univ Calif San Francisco Biophys Grad Grp Calif Inst Quantitat Biosci San Francisco CA 94158 USA;

    Gladstone Inst Virol &

    Immunol San Francisco CA 94141 USA;

    Gladstone Inst Virol &

    Immunol San Francisco CA 94141 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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