Analysis of osmoadaptation system in budding yeast suggests that regulated degradation of glycerol synthesis enzyme is key to near-perfect adaptation.

Systems and Synthetic Biology Pub Date : 2014-06-01 Epub Date: 2013-09-19 DOI:10.1007/s11693-013-9126-2
Anilkumar K Patel, Sharad Bhartiya, K V Venkatesh
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Abstract

In order to maintain its turgor pressure at a desired homeostatic level, budding yeast, Saccharomyces cerevisiae responds to the external variation of the osmotic pressure by varying its internal osmotic pressure through regulation of synthesis and transport of the intracellular glycerol. Hog1PP (dually phosphorylated Hog1), a final effector in the signalling pathway of the hyper osmotic stress, regulates the glycerol synthesis both at transcriptional and non-transcriptional stages. It is known that for a step-change in salt concentration leading to moderate osmotic shock, Hog1PP activity shows a transient response before it returns to the vicinity of pre-stimulus level. It is believed that an integrating process in a negative feedback loop can be a design strategy to yield such an adaptive response. Several negative feedback loops have been identified in the osmoadaptation system in yeast. However, the precise location of the integrating process in the osmoadaptation system which includes signalling, gene regulation, metabolism and biophysical modules is unclear. To address this issue, we developed a reduced model which captures various experimental observations of the osmoadaptation behaviour of wild type and mutant strains. Dynamic simulations and steady state analysis suggested that known information about the osmoadaptation system of budding yeast does not necessarily give a perfect integrating process through the known feedback loops of Hog1PP. On the other hand, regulation of glycerol synthesising enzyme degradation can result in a near integrating process leading to a near-perfect adaptation.

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对芽殖酵母的渗透调节系统的分析表明,甘油合成酶的调节降解是近乎完美适应的关键。
为了将其张力压力维持在理想的平衡水平,芽殖酵母(Saccharomyces cerevisiae)通过调节细胞内甘油的合成和运输来改变其内部渗透压,从而对外部渗透压的变化做出反应。Hog1PP(双重磷酸化 Hog1)是高渗透压信号通路的最终效应器,在转录和非转录阶段调节甘油的合成。众所周知,盐浓度的阶跃变化导致中度渗透休克时,Hog1PP 的活性会出现短暂的反应,然后恢复到刺激前的水平附近。人们认为,负反馈回路中的整合过程是产生这种适应性反应的一种设计策略。在酵母的渗透调节系统中已经发现了几个负反馈回路。然而,在包括信号、基因调控、新陈代谢和生物物理模块在内的渗透适应系统中,整合过程的确切位置尚不清楚。为了解决这个问题,我们开发了一个简化模型,该模型捕捉了对野生型和突变型菌株渗透调节行为的各种实验观察结果。动态模拟和稳态分析表明,芽殖酵母渗透调节系统的已知信息并不一定能通过 Hog1PP 的已知反馈回路给出一个完美的整合过程。另一方面,对甘油合成酶降解的调控可导致一个接近完美适应的整合过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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