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Metabolic gene regulation in a dynamically changing environment

机译:动态变化环境中的代谢基因调控

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Natural selection dictates that cells constantly adapt to dynamically changing environments in a context-dependent manner. Gene-regulatory networks often mediate the cellular response to perturbation, and an understanding of cellular adaptation will require experimental approaches aimed at subjecting cells to a dynamic environment that mimics their natural habitat. Here we monitor the response of Saccharomyces cerevisiae metabolic gene regulation to periodic changes in the external carbon source by using a microfluidic platform that allows precise, dynamic control over environmental conditions. We show that the metabolic system acts as a low-pass filter that reliably responds to a slowly changing environment, while effectively ignoring fast fluctuations. The sensitive low-frequency response was significantly faster than in predictions arising from our computational modelling, and this discrepancy was resolved by the discovery that two key galactose transcripts possess half-lives that depend on the carbon source. Finally, to explore how induction characteristics affect frequency response, we compare two 5. cerevisiae strains and show that they have the same frequency response despite having markedly different induction properties. This suggests that although certain characteristics of the complex networks may differ when probed in a static environment, the system has been optimized for a robust response to a dynamically changing environment.
机译:自然选择指示细胞以上下文相关的方式不断适应动态变化的环境。基因调控网络通常介导细胞对微扰的反应,而对细胞适应性的了解将需要旨在使细胞处于模仿其自然栖息地的动态环境的实验方法。在这里,我们通过使用微流体平台来监测酿酒酵母代谢基因调控对外部碳源周期性变化的响应,该平台允许对环境条件进行精确,动态的控制。我们表明,代谢系统起着低通滤波器的作用,可以可靠地响应缓慢变化的环境,同时有效地忽略了快速波动。灵敏的低频响应明显快于我们的计算建模所产生的预测,并且这一差异通过发现两个关键的半乳糖转录物具有取决于碳源的半衰期而得以解决。最后,为探讨感应特性如何影响频率响应,我们比较了两种5.酿酒酵母菌株,并表明它们具有相同的频率响应,尽管它们的感应特性明显不同。这表明,尽管在静态环境中进行探测时,复杂网络的某些特征可能会有所不同,但系统已针对对动态变化的环境的强大响应进行了优化。

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