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Modeling Cell-to-Cell Stochastic Variability in Intrinsic Apoptosis Pathway

机译:内在凋亡途径中的细胞对细胞随机变异性

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Apoptosis is a cell suicide mechanism that enables metazoans to control cell number in tissues and to eliminate individual cells that threaten the animal's survival. Dependent on the type of stimulus, apoptosis can be propagated by intrinsic pathway or extrinsic pathway. Previously, we have proposed a deterministic model of intrinsic apoptosis pathway which is bistable in a robust parameter region. Cellular networks, however, are inherently stochastic and significant cell-to-cell variability in apoptosis response has been observed at single cell level. In this work, we examine the impact of intrinsic stochastic fluctuations as well as variation of protein concentrations on behavior of the intrinsic apoptosis network. First, Gillespie Stochastic Simulation Algorithm (SSA) of the model is implemented to account for intrinsic noise. Using histograms of steady-state output at varying input levels, we show that the intrinsic noise in the apoptosis network elicits a wider region of bistability. We further analyze the dependence of system stochasticity due to intrinsic fluctuations, such as steady-state noise level and random response delay time, on the input signal. We find however that the intrinsic noise is insufficient to generate significant stochastic variations at physiologically relevant level of molecular numbers. Finally, extrinsic fluctuation represented by variations of two key proteins is modeled and the resultant stochasticity of apoptosis timing is analyzed. Indeed, these protein variations can induce cell-to-cell stochastic variability at a quantitative level agreeing with experiments. Therefore, we conclude that the heterogeneity in intrinsic apoptosis responses among individual cells plausibly arises from extrinsic rather than intrinsic origin of fluctuations.
机译:细胞凋亡是一种细胞的自杀机制,使得美容化能够控制组织中的细胞数并消除威胁动物的生存的个体细胞。依赖于刺激的类型,细胞凋亡可以通过内在途径或外在途径繁殖。以前,我们提出了一种确定性模型的内在凋亡途径,其在鲁棒参数区域中是如此。然而,细胞网络在单细胞水平下已经观察到具有本质上随机性的随机性,并且在细胞凋亡反应中的显着细胞对细胞变异。在这项工作中,我们研究了内在随机波动的影响以及蛋白质浓度的变异对内在凋亡网络的行为。首先,实现模型的Gillespie随机仿真算法(SSA)以解释内在噪声。在不同输入水平下使用稳态输出的直方图,我们表明凋亡网络中的内在噪声引发了更广泛的双稳态区域。我们进一步分析了系统随机性由于内在波动,例如稳态噪声水平和随机响应延迟时间,在输入信号上的依赖性。然而,我们发现,内在噪声不足以在生理相关的分子数水平处产生显着的随机变化。最后,模拟了由两个关键蛋白的变化表示的外部波动,并分析了凋亡时序的所得随机性。实际上,这些蛋白质变异可以在定量水平同意实验中诱导细胞对细胞随机变化。因此,我们得出结论,个体细胞之间的内在凋亡反应中的异质性合理地由外本而不是固有的波动起源产生。

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