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Theoretical predictions on the first-passage time for a gene expression model

机译:基因表达模型首次通过时间的理论预测

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Expression of a gene is inherently random, leading to variability in a protein's level across a population of cells with same genetic information and environment. Another consequence of this is the cell-to-cell variability in the time at which a certain protein level is achieved inside individual cells. In this work, we model such times using the first-passage time (FPT) framework. Gene expression is modeled in translation bursts wherein each mRNA molecule arrives as per a Poisson process, produces a geometrically distributed burst of protein molecules and degrades instantaneously. Also, the proteins are assumed to degrade as well. The FPT probability density function and statistical moments are determined for this model. In addition, the effects of change in model parameters (transcription rate, mean translation burst size, FPT threshold) on the mean and noise (quantified as the coefficient of variation squared) of FPT are studied. Our analysis shows that the mean FPT increases by increasing the FPT threshold or decreasing the protein production by a lower mean burst size or a lower transcription rate. The noise properties, however, show non-trivial pattern: a U-shape behavior is seen with respect to change in mean burst size or FPT threshold whereas a monotonous trend is observed for change in transcription rate. Lastly, we also discuss how these predictions can possibly be tested via experiments on the lysis time of the bacterial virus bacteriophage ??.
机译:基因的表达固有地是随机的,从而导致具有相同遗传信息和环境的细胞群体中蛋白质水平的可变性。这样做的另一个结果是各个细胞内部达到一定蛋白质水平时的细胞间差异。在这项工作中,我们使用首次通过时间(FPT)框架对此类时间进行建模。基因表达以翻译爆发为模型,其中每个mRNA分子按照泊松过程到达,产生几何上分布的蛋白质分子爆发,并瞬时降解。同样,假定蛋白质也降解。为此模型确定了FPT概率密度函数和统计矩。此外,研究了模型参数(转录速率,平均翻译猝发大小,FPT阈值)变化对FPT的均值和噪声(量化为变异系数的平方)的影响。我们的分析表明,平均FPT通过提高FPT阈值或以较低的平均突发大小或较低的转录速率来降低蛋白质产量而增加。但是,噪声特性显示出不平凡的模式:相对于平均突发大小或FPT阈值的变化,可以看到U形行为,而转录速率的变化则呈现单调趋势。最后,我们还讨论了如何通过对细菌病毒噬菌体的裂解时间进行实验来检验这些预测。

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