真核生物mRNA转换酶的结构生物学观点。

IF 2.9 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biological Chemistry Pub Date : 2023-09-15 Print Date: 2023-10-26 DOI:10.1515/hsz-2023-0182
Christina Krempl, Daniela Lazzaretti, Remco Sprangers
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引用次数: 0

摘要

细胞环境包含许多核糖核酸酶,它们专门处理被靶向降解的mRNA转录物。在此,我们综述了参与信使核糖核酸转换的核糖核酸酶复合物(Pan2-Pan3,Ccr4-Not,Xrn1,外泌体)和信使核糖核酸去帽酶(Dcp2,DcpS)的三维结构。这些蛋白质的主要部分的结构已经通过实验确定。这些酶和因子不是孤立作用的,而是嵌入相互作用网络中,调节酶活性并确保招募合适的底物。形成的高阶配合物的结构细节可以部分地从亚配合物的已知结构数据中准确推导出来。有趣的是,已经观察到许多核糖核酸酶和去帽酶在结构上不同的构象。结合实验数据,这突出表明结构变化通常对酶功能很重要。我们得出的结论是,信使核糖核酸衰变因子的已知结构数据提供了重要的功能见解,但静态结构数据需要补充有关蛋白质运动的信息,以完成转录物如何翻转的画面。此外,我们强调了影响信使核糖核酸转换率的多个方面,但迄今为止尚未对其进行结构表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A structural biology view on the enzymes involved in eukaryotic mRNA turnover.

The cellular environment contains numerous ribonucleases that are dedicated to process mRNA transcripts that have been targeted for degradation. Here, we review the three dimensional structures of the ribonuclease complexes (Pan2-Pan3, Ccr4-Not, Xrn1, exosome) and the mRNA decapping enzymes (Dcp2, DcpS) that are involved in mRNA turnover. Structures of major parts of these proteins have been experimentally determined. These enzymes and factors do not act in isolation, but are embedded in interaction networks which regulate enzyme activity and ensure that the appropriate substrates are recruited. The structural details of the higher order complexes that form can, in part, be accurately deduced from known structural data of sub-complexes. Interestingly, many of the ribonuclease and decapping enzymes have been observed in structurally different conformations. Together with experimental data, this highlights that structural changes are often important for enzyme function. We conclude that the known structural data of mRNA decay factors provide important functional insights, but that static structural data needs to be complemented with information regarding protein motions to complete the picture of how transcripts are turned over. In addition, we highlight multiple aspects that influence mRNA turnover rates, but that have not been structurally characterized so far.

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来源期刊
Biological Chemistry
Biological Chemistry 生物-生化与分子生物学
CiteScore
7.20
自引率
0.00%
发文量
63
审稿时长
4-8 weeks
期刊介绍: Biological Chemistry keeps you up-to-date with all new developments in the molecular life sciences. In addition to original research reports, authoritative reviews written by leading researchers in the field keep you informed about the latest advances in the molecular life sciences. Rapid, yet rigorous reviewing ensures fast access to recent research results of exceptional significance in the biological sciences. Papers are published in a "Just Accepted" format within approx.72 hours of acceptance.
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