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Enhancement of cellular memory by reducing stochastic transitions

机译:通过减少随机跃迁来增强细胞记忆

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On induction of cell differentiation, distinct cell phenotypes are encoded by complex genetic networks(1-3). These networks can prevent the reversion of established phenotypes even in the presence of significant fluctuations. Here we explore the key parameters that determine the stability of cellular memory by using the yeast galactose-signalling network as a model system. This network contains multiple nested feedback loops. Of the two positive feedback loops, only the loop mediated by the cytoplasmic signal transducer Gal3p is able to generate two stable expression states with a persistent memory of previous galactose consumption states. The parallel loop mediated by the galactose transporter Gal2p only increases the expression difference between the two states. A negative feedback through the inhibitor Gal80p reduces the strength of the core positive feedback. Despite this, a constitutive increase in the Gal80p concentration tunes the system from having destabilized memory to having persistent memory. A model reveals that fluctuations are trapped more efficiently at higher Gal80p concentrations. Indeed, the rate at which single cells randomly switch back and forth between expression states was reduced. These observations provide a quantitative understanding of the stability and reversibility of cellular differentiation states.
机译:在诱导细胞分化时,不同的细胞表型由复杂的遗传网络编码(1-3)。即使存在明显的波动,这些网络也可以防止已建立的表型逆转。在这里,我们探索通过使用酵母半乳糖信号传递网络作为模型系统来确定细胞记忆稳定性的关键参数。该网络包含多个嵌套的反馈回路。在两个正反馈回路中,仅由细胞质信号转导子Gal3p介导的回路能够产生两个稳定的表达状态,并具有先前半乳糖消耗状态的持久性记忆。半乳糖转运蛋白Gal2p介导的平行环只会增加两种状态之间的表达差异。通过抑制器Gal80p产生的负反馈会降低核心正反馈的强度。尽管如此,Gal80p浓度的组成性增加会将系统从具有不稳定的内存调整为具有持久性内存。模型显示,在较高的Gal80p浓度下,波动被更有效地捕获。实际上,降低了单个细胞在表达状态之间来回随机切换的速率。这些观察结果提供了对细胞分化状态的稳定性和可逆性的定量理解。

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