Stochastic analysis of genetic feedback circuit controlling HIV cell-fate decision

Abhyudai Singh
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引用次数: 15

Abstract

After infecting a CD4+ T cell, Human Immunodeficiency Virus (HIV) can either replicate and kill the cell or enter latency, a dormant state of the virus where viral gene-expression is turned OFF. Experimental work has shown that a genetic positive feedback circuit under the control of a key HIV regulatory protein, Tat, critically influences this cell fate decision between viral replication and latency. Here, we build and analyze a stochastic model of this genetic feedback circuit. Interestingly, although the deterministic model of this circuit lacks bistability, the stochastic model can exhibit bimodal distributions of Tat levels. The modes of this bimodal distribution correspond to an ON (high Tat level) and OFF (low Tat level) state of the circuit and can be interpreted as different fates of the infected cell. For the proposed stochastic model, we find regions of the parameter space where this genetic feedback circuit exhibits unimodal and bimodal distributions of Tat levels. Our analysis predicts that in physiologically relevant parameter regimes the Tat feedback circuit will exhibit bimodality, consistent with experimental observations. In summary, results presented here provide important insights into the functioning of this essential HIV feedback circuit and shows how circuit parameters can be perturbed to bias the viral cell fate decision at the single-cell level.
控制HIV细胞命运决定的遗传反馈电路的随机分析
在感染CD4+ T细胞后,人类免疫缺陷病毒(HIV)要么复制并杀死细胞,要么进入潜伏期,即病毒基因表达被关闭的休眠状态。实验工作表明,在一种关键的HIV调节蛋白Tat的控制下,一个遗传正反馈回路对病毒复制和潜伏期之间的细胞命运决定有着关键的影响。在这里,我们建立并分析了这个遗传反馈回路的随机模型。有趣的是,尽管该电路的确定性模型缺乏双稳定性,但随机模型可以表现出Tat水平的双峰分布。这种双峰分布的模式对应于电路的ON(高Tat水平)和OFF(低Tat水平)状态,可以解释为受感染细胞的不同命运。对于所提出的随机模型,我们发现该遗传反馈电路在参数空间中表现出Tat水平的单峰和双峰分布。我们的分析预测,在生理相关的参数制度下,Tat反馈电路将呈现双峰,与实验观察一致。总之,本文的研究结果为了解HIV反馈回路的基本功能提供了重要的见解,并展示了回路参数如何在单细胞水平上受到干扰,从而影响病毒细胞的命运决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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