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秀丽隐杆线虫光感受器 VIVID 对光感应发挥负向和正向调控作用以实现适应。

The Neurospora photoreceptor VIVID exerts negative and positive control on light sensing to achieve adaptation.

机构信息

Division of Theoretical Systems Biology, German Cancer Research Center-DKFZ, Heidelberg, Germany.

出版信息

Mol Syst Biol. 2013 May 28;9:667. doi: 10.1038/msb.2013.24.

Abstract

The light response in Neurospora is mediated by the photoreceptor and circadian transcription factor White Collar Complex (WCC). The expression rate of the WCC target genes adapts in daylight and remains refractory to moonlight, despite the extraordinary light sensitivity of the WCC. To explain this photoadaptation, feedback inhibition by the WCC interaction partner VIVID (VVD) has been invoked. Here we show through data-driven mathematical modeling that VVD allows Neurospora to detect relative changes in light intensity. To achieve this behavior, VVD acts as an inhibitor of WCC-driven gene expression and, at the same time, as a positive regulator that maintains the responsiveness of the photosystem. Our data indicate that this paradoxical function is realized by a futile cycle that involves the light-induced sequestration of active WCC by VVD and the replenishment of the activatable WCC pool through the decay of the photoactivated state. Our quantitative study uncovers a novel network motif for achieving sensory adaptation and defines a core input module of the circadian clock in Neurospora.

摘要

Neurospora 的光反应由光受体和昼夜节律转录因子 White Collar Complex(WCC)介导。尽管 WCC 具有非凡的光敏感性,但 WCC 靶基因的表达率在白天会适应,并且对月光仍然具有抗性。为了解释这种光适应,人们提出了 WCC 相互作用伙伴 VIVID(VVD)的反馈抑制作用。在这里,我们通过数据驱动的数学建模表明,VVD 允许 Neurospora 检测光强度的相对变化。为了实现这种行为,VVD 作为 WCC 驱动的基因表达的抑制剂,同时作为一种正调节剂,维持光系统的反应性。我们的数据表明,这种自相矛盾的功能是通过一种无效循环来实现的,该循环涉及 VVD 对活性 WCC 的光诱导隔离,以及通过光激活状态的衰减来补充可激活的 WCC 池。我们的定量研究揭示了一种用于实现感觉适应的新网络基序,并定义了 Neurospora 中昼夜节律钟的核心输入模块。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/226d/4039372/695156657f7d/msb201324-f1.jpg

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