生物
核糖核蛋白
应力颗粒
细胞生物学
外小体复合体
P-体
核糖核酸
解旋酶
内在无序蛋白质
RNA结合蛋白
翻译(生物学)
血浆蛋白结合
信使核糖核酸
遗传学
生物化学
基因
Rna处理
作者
Stefanie Jonas,Elisa Izaurralde
出处
期刊:Genes & Development
[Cold Spring Harbor Laboratory Press]
日期:2013-12-15
卷期号:27 (24): 2628-2641
被引量:208
标识
DOI:10.1101/gad.227843.113
摘要
The removal of the 5′ cap structure by the decapping enzyme DCP2 inhibits translation and generally commits the mRNA to irreversible 5′-to-3′ exonucleolytic degradation by XRN1. DCP2 catalytic activity is stimulated by DCP1, and these proteins form the conserved core of the decapping complex. Additional decapping factors orchestrate the recruitment and activity of this complex in vivo. These factors include enhancer of decapping 3 (EDC3), EDC4, like Sm14A (LSm14A), Pat, the LSm1–7 complex, and the RNA helicase DDX6. Decapping factors are often modular and feature folded domains flanked or connected by low-complexity disordered regions. Recent studies have made important advances in understanding how these disordered regions contribute to the assembly of decapping complexes and promote phase transitions that drive RNP granule formation. These studies have also revealed that the decapping network is governed by interactions mediated by short linear motifs (SLiMs) in these disordered regions. Consequently, the network has rapidly evolved, and although decapping factors are conserved, individual interactions between orthologs have been rewired during evolution. The plasticity of the network facilitates the acquisition of additional subunits or domains in pre-existing subunits, enhances opportunities for regulating mRNA degradation, and eventually leads to the emergence of novel functions.
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