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Efficient analysis of stochastic gene dynamics in the non-adiabatic regime using piecewise deterministic Markov processes

机译:使用分段确定性马尔可夫过程对非绝热状态下的随机基因动力学进行有效分析

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摘要

Single-cell experiments show that gene expression is stochastic and bursty, a feature that can emerge from slow switching between promoter states with different activities. In addition to slow chromatin and/or DNA looping dynamics, one source of long-lived promoter states is the slow binding and unbinding kinetics of transcription factors to promoters, i.e. the non-adiabatic binding regime. Here, we introduce a simple analytical framework, known as a piecewise deterministic Markov process (PDMP), that accurately describes the stochastic dynamics of gene expression in the non-adiabatic regime. We illustrate the utility of the PDMP on a non-trivial dynamical system by analysing the properties of a titration-based oscillator in the non-adiabatic limit. We first show how to transform the underlying chemical master equation into a PDMP where the slow transitions between promoter states are stochastic, but whose rates depend upon the faster deterministic dynamics of the transcription factors regulated by these promoters. We show that the PDMP accurately describes the observed periods of stochastic cycles in activator and repressor-based titration oscillators. We then generalize our PDMP analysis to more complicated versions of titration-based oscillators to explain how multiple binding sites lengthen the period and improve coherence. Last, we show how noise-induced oscillation previously observed in a titration-based oscillator arises from non-adiabatic and discrete binding events at the promoter site.
机译:单细胞实验表明基因表达是随机的和突变的,这一特征可以通过具有不同活性的启动子状态之间的缓慢切换来显现。除了缓慢的染色质和/或DNA循环动力学之外,长寿命启动子状态的一种来源是转录因子与启动子的缓慢结合和非结合动力学,即非绝热结合机制。在这里,我们介绍了一个简单的分析框架,称为分段确定性马尔可夫过程(PDMP),它可以准确地描述非绝热条件下基因表达的随机动力学。通过分析非绝热极限中基于滴定的振荡器的特性,我们说明了PDMP在非平凡动力系统上的效用。我们首先展示如何将基本化学主方程式转换成PDMP,其中启动子状态之间的缓慢过渡是随机的,但其速率取决于这些启动子调节的转录因子的更快确定性动力学。我们表明,PDMP准确描述了在活化剂和阻遏物的滴定振荡器中观察到的随机周期。然后,我们将PDMP分析推广到基于滴定的振荡器的更复杂版本,以解释多个结合位点如何延长周期和改善相干性。最后,我们显示了以前在基于滴定的振荡器中观察到的噪声诱导的振荡是如何在启动子位点发生非绝热和离散结合事件的。

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