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泛素样修饰(UFMylation)概述:一种新兴的翻译后修饰。

A guide to UFMylation, an emerging posttranslational modification.

机构信息

Medical Research Council Protein Phosphorylation & Ubiquitylation Unit (MRC-PPU), School of Life Sciences, University of Dundee, UK.

出版信息

FEBS J. 2023 Nov;290(21):5040-5056. doi: 10.1111/febs.16730. Epub 2023 Feb 8.

Abstract

Ubiquitin Fold Modifier-1 (UFM1) is a ubiquitin-like modifier (UBL) that is posttranslationally attached to lysine residues on substrates via a dedicated system of enzymes conserved in most eukaryotes. Despite the structural similarity between UFM1 and ubiquitin, the UFMylation machinery employs unique mechanisms that ensure fidelity. While physiological triggers and consequences of UFMylation are not entirely clear, its biological importance is epitomized by mutations in the UFMylation pathway in human pathophysiology including musculoskeletal and neurodevelopmental diseases. Some of these diseases can be explained by the increased endoplasmic reticulum (ER) stress and disrupted translational homeostasis observed upon loss of UFMylation. The roles of UFM1 in these processes likely stem from its function at the ER where ribosomes are UFMylated in response to translational stalling. In addition, UFMylation has been implicated in other cellular processes including DNA damage response and telomere maintenance. Hence, the study of UFM1 pathway mechanics and its biological function will reveal insights into fundamental cell biology and is likely to afford new therapeutic opportunities for the benefit of human health. To this end, we herein provide a comprehensive guide to the current state of knowledge of UFM1 biogenesis, conjugation, and function with an emphasis on the underlying mechanisms.

摘要

泛素样修饰物 1(UFM1)是一种泛素样修饰物(UBL),通过在大多数真核生物中保守的专门酶系统,将赖氨酸残基连接到底物上。尽管 UFM1 和泛素在结构上具有相似性,但 UFMylation 机制采用了独特的机制来确保保真度。虽然 UFMylation 的生理触发因素和后果尚不完全清楚,但 UFMylation 途径中的突变在人类病理生理学中包括肌肉骨骼和神经发育疾病中突显了其生物学重要性。这些疾病中的一些可以通过内质网(ER)应激增加和翻译动态平衡破坏来解释,这是在 UFMylation 丢失时观察到的。UFM1 在这些过程中的作用可能源于其在 ER 中的功能,核糖体在翻译停滞时被 UFMylation。此外,UFMylation 还涉及其他细胞过程,包括 DNA 损伤反应和端粒维持。因此,研究 UFM1 途径的机制及其生物学功能将揭示对基础细胞生物学的深入了解,并可能为人类健康带来新的治疗机会。为此,我们在此提供了 UFM1 生物发生、缀合和功能的当前知识状态的综合指南,重点介绍了潜在的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a26/10952357/ea2ff4759598/FEBS-290-5040-g001.jpg

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