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自主代谢振荡稳健地控制着细胞周期的早期和晚期。

Autonomous Metabolic Oscillations Robustly Gate the Early and Late Cell Cycle.

机构信息

Molecular Systems Biology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Nijenborgh 4, 9747 AG Groningen, the Netherlands.

Probability and Statistics, Johann Bernoulli Institute of Mathematics and Computer Science, University of Groningen, Nijenborgh 9, 9747 AG Groningen, the Netherlands.

出版信息

Mol Cell. 2017 Jan 19;65(2):285-295. doi: 10.1016/j.molcel.2016.11.018. Epub 2016 Dec 15.

Abstract

Eukaryotic cell division is known to be controlled by the cyclin/cyclin dependent kinase (CDK) machinery. However, eukaryotes have evolved prior to CDKs, and cells can divide in the absence of major cyclin/CDK components. We hypothesized that an autonomous metabolic oscillator provides dynamic triggers for cell-cycle initiation and progression. Using microfluidics, cell-cycle reporters, and single-cell metabolite measurements, we found that metabolism of budding yeast is a CDK-independent oscillator that oscillates across different growth conditions, both in synchrony with and also in the absence of the cell cycle. Using environmental perturbations and dynamic single-protein depletion experiments, we found that the metabolic oscillator and the cell cycle form a system of coupled oscillators, with the metabolic oscillator separately gating and maintaining synchrony with the early and late cell cycle. Establishing metabolism as a dynamic component within the cell-cycle network opens new avenues for cell-cycle research and therapeutic interventions for proliferative disorders.

摘要

真核细胞的分裂被认为是由细胞周期蛋白/细胞周期依赖性激酶(CDK)机制控制的。然而,真核生物在 CDK 之前就已经进化了,而且细胞可以在没有主要的细胞周期蛋白/CDK 成分的情况下分裂。我们假设自主代谢振荡器为细胞周期的启动和进展提供动态触发。我们使用微流控、细胞周期报告基因和单细胞代谢物测量,发现出芽酵母的代谢是一个与 CDK 无关的振荡器,它在不同的生长条件下振荡,与细胞周期同步,也在没有细胞周期的情况下振荡。通过环境扰动和动态的单个蛋白质耗竭实验,我们发现代谢振荡器和细胞周期形成了一个耦合振荡器系统,其中代谢振荡器分别对早期和晚期细胞周期进行门控,并保持同步。将代谢作为细胞周期网络中的一个动态组成部分确立,为细胞周期研究和增殖性疾病的治疗干预开辟了新的途径。

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