Systems Biology, School of Biosciences and Medicine, Faculty of Health and Medical Sciences, University of Surrey, Guildford, UK.
Centre for Mathematical and Computational Biology, CMCB, University of Surrey, Guildford, UK.
NPJ Syst Biol Appl. 2021 Jun 11;7(1):28. doi: 10.1038/s41540-021-00187-5.
In budding yeast, synchronization of waves of mitotic cyclins that activate the Cdk1 kinase occur through Forkhead transcription factors. These molecules act as controllers of their sequential order and may account for the separation in time of incompatible processes. Here, a Forkhead-mediated design principle underlying the quantitative model of Cdk control is proposed for budding yeast. This design rationalizes timing of cell division, through progressive and coordinated cyclin/Cdk-mediated phosphorylation of Forkhead, and autonomous cyclin/Cdk oscillations. A "clock unit" incorporating this design that regulates timing of cell division is proposed for both yeast and mammals, and has a DRIVER operating the incompatible processes that is instructed by multiple CLOCKS. TIMERS determine whether the clocks are active, whereas CONTROLLERS determine how quickly the clocks shall function depending on external MODULATORS. This "clock unit" may coordinate temporal waves of cyclin/Cdk concentration/activity in the eukaryotic cell cycle making the driver operate the incompatible processes, at separate times.
在芽殖酵母中,通过 Forkhead 转录因子同步激活 Cdk1 激酶的有丝分裂细胞周期蛋白波的发生。这些分子作为其顺序的控制器,可能解释了不兼容过程在时间上的分离。在这里,提出了一个 Forkhead 介导的芽殖酵母 CDK 控制定量模型的设计原则。该设计通过 Forkhead 的逐步和协调的细胞周期蛋白/Cdk 介导的磷酸化,以及自主的细胞周期蛋白/Cdk 振荡,合理化细胞分裂的时间。提出了一种“时钟单元”,该单元包含了用于调节细胞分裂时间的设计,该设计适用于酵母和哺乳动物,并且具有一个由多个时钟驱动的操作不兼容过程的“驱动器”。“定时器”确定时钟是否处于活动状态,而“控制器”根据外部“调制器”确定时钟的运行速度。这个“时钟单元”可以协调真核细胞周期中细胞周期蛋白/Cdk 浓度/活性的时间波,使得“驱动器”在不同的时间操作不兼容的过程。