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A Systems-Level Analysis of Perfect Adaptation in Yeast Osmoregulation

机译:酵母渗透调节过程中完美适应的系统级分析

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Negative feedback can serve many different cellular functions, including noise reduction in transcriptional networks and the creation of circadian oscillations. However, only one special type of negative feedback ("integral feedback'') ensures perfect adaptation, where steady-state output is independent of steady-state input. Here we quantitatively measure single-cell dynamics in the Saccharomyces cerevisiae hyperosmotic shock network, which regulates membrane turgor pressure. Importantly, we find that the nuclear enrichment of the MAP kinase Hog1 perfectly adapts to changes in external osmolarity, a feature robust to signaling fidelity and operating with very low noise. By monitoring multiple system quantities (e.g., cell volume, Hog1, glycerol) and using varied input waveforms (e.g., steps and ramps), we assess in a minimally invasive manner the network location of the mechanism responsible for perfect adaptation. We conclude that the system contains only one effective integrating mechanism, which requires Hog1 kinase activity and regulates glycerol synthesis but not leakage.
机译:负反馈可以起到许多不同的细胞功能,包括减少转录网络中的噪声和产生昼夜节律振荡。但是,只有一种特殊类型的负反馈(“积分反馈”)才能确保完美的适应性,其中稳态输出独立于稳态输入,在此我们定量测量酿酒酵母高渗休克网络中的单细胞动力学,调节膜的膨大压力。重要的是,我们发现MAP激酶Hog1的核富集完全适应外部渗透压的变化,这是发信号保真度强的功能,并且在非常低的噪声下运行。通过监控多个系统数量(例如细胞体积, Hog1,甘油)并使用各种输入波形(例如,阶跃和斜坡),我们以最小的侵入方式评估了负责完美适应的机制的网络位置,我们得出结论,系统仅包含一种有效的整合机制,因此需要Hog1激酶活性并调节甘油合成,但不调节泄漏。

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