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首页> 外文期刊>Biophysical Journal >Computational analysis of dynamical responses to the intrinsic pathway of programmed cell death.
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Computational analysis of dynamical responses to the intrinsic pathway of programmed cell death.

机译:对程序性细胞死亡的内在途径的动力响应的计算分析。

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摘要

Multicellular organisms shape development and remove aberrant cells by programmed cell death ("apoptosis"). Because defective cell death (too little or too much) is implicated in various diseases (like cancer and autoimmunity), understanding how apoptosis is regulated is an important goal of molecular cell biologists. To this end, we propose a mathematical model of the intrinsic apoptotic pathway that captures three key dynamical features: a signal threshold to elicit cell death, irreversible commitment to the response, and a time delay that is inversely proportional to signal strength. Subdividing the intrinsic pathway into three modules (initiator, amplifier, executioner), we use computer simulation and bifurcation theory to attribute signal threshold and time delay to positive feedback in the initiator module and irreversible commitment to positive feedback in the executioner module. The model accounts for the behavior of mutants deficient in various genes and is used to design experiments that would test its basic assumptions. Finally, we apply the model to study p53-induced cellular responses to DNA damage. Cells first undergo cell cycle arrest and DNA repair, and then apoptosis if the damage is beyond repair. The model ascribes this cell-fate transition to a transformation of p53 from "helper" to "killer" forms.
机译:多细胞生物通过程序性细胞死亡(“凋亡”)塑造发育并清除异常细胞。由于缺陷细胞死亡(太少或太多)与多种疾病(如癌症和自身免疫性疾病)有关,因此了解细胞凋亡的调控方式是分子细胞生物学家的重要目标。为此,我们提出了固有凋亡途径的数学模型,该模型捕获了三个关键的动力学特征:引起细胞死亡的信号阈值,对反应的不可逆承诺以及与信号强度成反比的时间延迟。将内在路径细分为三个模块(启动器,放大器,执行器),我们使用计算机仿真和分叉理论将信号阈值和时间延迟归因于启动器模块中的正反馈,并确定执行器模块中对正反馈的不可逆承诺。该模型说明了缺乏各种基因的突变体的行为,并用于设计可测试其基本假设的实验。最后,我们将该模型应用于研究p53诱导的细胞对DNA损伤的反应。细胞首先经历细胞周期停滞和DNA修复,如果损伤无法修复,则细胞凋亡。该模型将这种细胞命运的转变归因于p53从“辅助”形式向“杀手”形式的转化。

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