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Fate-Regulating Circuits in Viruses: From Discovery to New Therapy Targets
Annual Review of Virology ( IF 11.3 ) Pub Date : 2017-09-29 00:00:00 , DOI: 10.1146/annurev-virology-110615-035606
Anand Pai 1 , Leor S Weinberger 1, 2
Affiliation  

Current antivirals effectively target diverse viruses at various stages of their life cycles. Nevertheless, curative therapy has remained elusive for important pathogens, such as human immunodeficiency virus type 1 (HIV-1) and herpesviruses, in large part due to viral latency and the evolution of resistance to existing therapies. Here, we review the discovery of viral master circuits: virus-encoded autoregulatory gene networks that autonomously control viral expression programs (i.e., between active, latent, and abortive fates). These circuits offer the opportunity for a new class of antivirals that could lead to intrinsic combination-antiviral therapies within a single molecule—evolutionary escape from such circuit-disrupting antivirals would require simultaneous evolution of both the viral cis regulatory element (e.g., the DNA-binding site) and the trans element (e.g., the transcription factor) in order for the virus to recapitulate a circuit that would not be disrupted. We review the architectures of these fate-regulating master circuits in HIV-1 and the human herpesvirus cytomegalovirus along with potential circuit-disruption strategies that may ultimately enable escape-resistant antiviral therapies.

中文翻译:


病毒中的命运调控电路:从发现到新的治疗靶标

当前的抗病毒剂在其生命周期的各个阶段有效地针对多种病毒。然而,对于重要的病原体,例如1型人类免疫缺陷病毒(HIV-1)和疱疹病毒,仍无法进行治愈性治疗,这在很大程度上归因于病毒潜伏期和对现有疗法的抵抗力的演变。在这里,我们回顾了病毒主回路的发现:病毒编码的自动调节基因网络,可自主控制病毒表达程序(即活动,潜伏和流产之间的命运)。这些回路为新型抗病毒药提供了机会,这些抗病毒药可能导致在单个分子内进行内在组合-抗病毒治疗-从此类破坏电路的抗病毒药中进化逃逸将需要同时使两个病毒顺式进化调节元件(例如,DNA结合位点)和反式元件(例如,转录因子),以便病毒重现不会被破坏的回路。我们审查了HIV-1和人类疱疹病毒巨细胞病毒中这些命运调控主回路的结构,以及可能最终实现逃逸抗性抗病毒治疗的潜在回路破坏策略。

更新日期:2017-09-29
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