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Mathematical modeling of an oscillating gene circuit to unravel the circadian clock network of Arabidopsis thaliana

机译:振荡电路基因的数学建模解开拟南芥的生物钟网络

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摘要

The Arabidopsis thaliana circadian clock is an interconnected network highly tractable to systems approaches. Most elements in the transcriptional–translational oscillator were identified by genetic means and the expression of clock genes in various mutants led to the founding hypothesis of a positive–negative feedback loop being the core clock. The identification of additional clock genes beyond those defined in the core led to the use of systems approaches to decipher this angiosperm oscillator circuit. Kinetic modeling was first used to explain periodicity effects of various circadian mutants. This conformed in a flexible way to experimental details. Such observations allowed a recursive use of hypothesis generating from modeling, followed by experimental corroboration. More recently, the biochemical finding of new description of a DNA-binding activity for one class of clock components directed improvements in feature generation, one of which revealed that the core of the oscillator is a negative–negative feedback loop. The recursive use of modeling and experimental validation has thus revealed many essential transcriptional components that drive negative arms in the circadian oscillator. What awaits is to more fully describe the positive arms and an understanding of how additional pathways converge on the clock.
机译:拟南芥昼夜节律时钟是一个相互连接的网络,对于系统方法来说非常容易处理。转录-翻译振荡器中的大多数元素都是通过遗传手段鉴定的,并且时钟基因在各种突变体中的表达导致了正负反馈环为核心时钟的成立假设。除了核心中定义的那些之外的其他时钟基因的鉴定导致使用系统方法来解密该被子植物振荡器电路。动力学建模首先用于解释各种昼夜节律突变体的周期性效应。这以灵活的方式符合实验细节。这些观察结果允许递归使用建模产生的假设,然后进行实验确认。最近,对一类时钟组件的DNA结合活性的新描述的生化发现直接导致了特征生成的改进,其中之一表明振荡器的核心是一个负-负反馈回路。因此,对建模和实验验证的递归使用揭示了许多必需的转录成分,这些成分在昼夜节律振荡器中驱动负臂。期待的是更充分地描述积极的一面,以及对其他途径如何日积月累的理解。

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