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活性氧(ROS)对 SUMO 和泛素的调控:信号转导与疾病关联。

Control of SUMO and Ubiquitin by ROS: Signaling and disease implications.

机构信息

Zentrum für Molekulare Biologie der Universität Heidelberg (ZMBH), DKFZ - ZMBH Alliance, Heidelberg, Germany.

出版信息

Mol Aspects Med. 2018 Oct;63:3-17. doi: 10.1016/j.mam.2018.07.002. Epub 2018 Aug 4.

Abstract

Reversible post-translational modifications (PTMs) ensure rapid signal transmission from sensors to effectors. Reversible modification of proteins by the small proteins Ubiquitin and SUMO are involved in virtually all cellular processes and can modify thousands of proteins. Ubiquitination or SUMOylation is the reversible attachment of these modifiers to lysine residues of a target via isopeptide bond formation. These modifications require ATP and an enzymatic cascade composed of three classes of proteins: E1 activating enzymes, E2 conjugating enzymes and E3 ligases. The reversibility of the modification is ensured by specific isopeptidases. E1 and E2 enzymes, some E3 ligases and most isopeptidases have catalytic cysteine residues, which make them potentially susceptible for oxidation. Indeed, an increasing number of examples reveal regulation of ubiquitination and SUMOylation by reactive oxygen species, both in the context of redox signaling and in severe oxidative stress. Importantly, ubiquitination and SUMOylation play essential roles in the regulation of ROS homeostasis, participating in the control of ROS production and clearance. In this review, we will discuss the interplay between ROS homeostasis, Ubiquitin and SUMO pathways and the implications for the oxidative stress response and cell signaling.

摘要

可逆翻译后修饰(PTMs)确保了从传感器到效应器的快速信号传递。通过小蛋白泛素和 SUMO 对蛋白质的可逆修饰参与了几乎所有的细胞过程,可以修饰数千种蛋白质。泛素化或 SUMO 化是通过形成异肽键将这些修饰物可逆地附着到靶蛋白的赖氨酸残基上。这些修饰需要 ATP 和由三类蛋白质组成的酶级联反应:E1 激活酶、E2 连接酶和 E3 连接酶。修饰的可逆性由特异性异肽酶来保证。E1 和 E2 酶、一些 E3 连接酶和大多数异肽酶具有催化半胱氨酸残基,这使它们容易受到氧化。事实上,越来越多的例子揭示了活性氧对泛素化和 SUMO 化的调节,既有在氧化还原信号的背景下,也有在严重的氧化应激下。重要的是,泛素化和 SUMO 化在 ROS 动态平衡的调节中起着至关重要的作用,参与了 ROS 产生和清除的控制。在这篇综述中,我们将讨论 ROS 动态平衡、泛素和 SUMO 途径之间的相互作用,以及它们对氧化应激反应和细胞信号转导的影响。

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