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Stochasticity Triggers Activation of the S-phase Checkpoint Pathway in Budding Yeast

机译:随机触发在萌芽酵母中激活S相检查点途径

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In a complex and ever-changing environment, various signal transduction pathways mediate outside signals and stress to a living cell and its intracellular responses. Eukaryotic cells utilize the DNA synthesis phase (S-phase) checkpoint to respond to DNA damage and replication stress, and the activation of the S-phase checkpoint defers the routine progression in the S phase. Through the analysis of microfluidic single-cell measurements, we find that the behavior of yeast cells exhibits bimodal distribution in the activation of the S-phase checkpoint, and the nonactivated portion of cells obeys the exponential decay law over time, the rate of which is dictated by HU dosage. Mathematical modeling and further experimental evidence from different mutant strains support the idea that the activation of the yeast S-phase checkpoint is a stochastic barrier-crossing process in a double-well system, where the barrier height is determined by both DNA replication stress and autophosphorylation of the key effector kinase Rad53. Our approach, as a novel methodology, is generally applicable to quantitative analysis of the signal transduction pathways at the single-cell level.
机译:在复杂和不断变化的环境中,各种信号转导途径介导外部信号和应力对活细胞及其细胞内反应。真核细胞利用DNA合成相(S相)检查点来响应DNA损伤和复制应力,并且S相检查点的激活越差异在S期中的常规进展。通过对微细胞单细胞测量的分析,我们发现酵母细胞的行为在S相检查点的激活中表现出双峰分布,并且电池的非活动部分随着时间的推移,细胞遵守指数衰减法,其率是由hu剂量决定。来自不同突变菌株的数学建模和进一步的实验证据支持酵母S相检查点的激活是双阱系统中的随机屏障交叉过程,其中阻挡高度由DNA复制应力和自磷酸化确定关键效应器激酶Rad53。作为一种新方法,我们的方法通常适用于单细胞水平的信号转导途径的定量分析。

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