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活性氧物种对哺乳动物细胞细胞周期进程的影响。

The influence of reactive oxygen species on cell cycle progression in mammalian cells.

机构信息

University College Utrecht, P O Box 80145, 3508 TC Utrecht, The Netherlands.

出版信息

Gene. 2012 Dec 10;511(1):1-6. doi: 10.1016/j.gene.2012.08.038. Epub 2012 Aug 31.

Abstract

Cell cycle regulation is performed by cyclins and cyclin dependent kinases (CDKs). Recently, it has become clear that reactive oxygen species (ROS) influence the presence and activity of these enzymes and thereby control cell cycle progression. In this review, we first describe the discovery of enzymes specialized in ROS production: the NADPH oxidase (NOX) complexes. This discovery led to the recognition of ROS as essential players in many cellular processes, including cell cycle progression. ROS influence cell cycle progression in a context-dependent manner via phosphorylation and ubiquitination of CDKs and cell cycle regulatory molecules. We show that ROS often regulate ubiquitination via intermediate phosphorylation and that phosphorylation is thus the major regulatory mechanism influenced by ROS. In addition, ROS have recently been shown to be able to activate growth factor receptors. We will illustrate the diverse roles of ROS as mediators in cell cycle regulation by incorporating phosphorylation, ubiquitination and receptor activation in a model of cell cycle regulation involving EGF-receptor activation. We conclude that ROS can no longer be ignored when studying cell cycle progression.

摘要

细胞周期的调控是由细胞周期蛋白和细胞周期蛋白依赖性激酶(CDKs)完成的。最近,人们已经清楚地认识到活性氧(ROS)会影响这些酶的存在和活性,从而控制细胞周期的进程。在这篇综述中,我们首先描述了专门用于 ROS 产生的酶的发现:NADPH 氧化酶(NOX)复合物。这一发现使人们认识到 ROS 是许多细胞过程(包括细胞周期进程)中的重要参与者。ROS 通过对 CDK 和细胞周期调节分子的磷酸化和泛素化,以依赖于上下文的方式影响细胞周期的进程。我们表明,ROS 通常通过中间磷酸化来调节泛素化,因此磷酸化是受 ROS 影响的主要调节机制。此外,ROS 最近被证明能够激活生长因子受体。我们将通过在涉及 EGF 受体激活的细胞周期调控模型中整合磷酸化、泛素化和受体激活,来说明 ROS 作为细胞周期调控介质的多种作用。我们得出结论,在研究细胞周期进程时,不能再忽视 ROS。

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