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首页> 外文期刊>Nucleic Acids Research >Phospho-dependent and phospho-independent interactions of the helicase UPF1 with the NMD factors SMG5-SMG7 and SMG6
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Phospho-dependent and phospho-independent interactions of the helicase UPF1 with the NMD factors SMG5-SMG7 and SMG6

机译:解旋酶UPF1与NMD因子SMG5-SMG7和SMG6的磷依赖性和磷非依赖性相互作用

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摘要

Nonsense-mediated mRNA decay (NMD) is a eukaryotic surveillance pathway that recognizes mRNAs with premature stop codons and targets them for rapid degradation. Evidence from previous studies has converged on UPF1 as the central NMD factor. In human cells, the SMG1 kinase phosphorylates UPF1 at the N-terminal and C-terminal tails, in turn allowing the recruitment of the NMD factors SMG5, SMG6 and SMG7. To understand the molecular mechanisms, we recapitulated these steps of NMD in vitro using purified components. We find that a short C-terminal segment of phosphorylated UPF1 containing the last two Ser-Gln motifs is recognized by the heterodimer of SMG5 and SMG7 14-3-3-like proteins. In contrast, the SMG6 14-3-3-like domain is a monomer. The crystal structure indicates that the phosphoserine binding site of the SMG6 14-3-3-like domain is similar to that of SMG5 and can mediate a weak phospho-dependent interaction with UPF1. The dominant SMG6-UPF1 interaction is mediated by a low-complexity region bordering the 14-3-3-like domain of SMG6 and by the helicase domain and C-terminal tail of UPF1. This interaction is phosphorylation independent. Our study demonstrates that SMG5-SMG7 and SMG6 exhibit different and non-overlapping modes of UPF1 recognition, thus pointing at distinguished roles in integrating the complex NMD interaction network.
机译:无意义介导的mRNA衰变(NMD)是一种真核监视途径,可识别具有终止密码子过早的mRNA,并将其靶向以进行快速降解。先前研究的证据已经将UPF1视为主要的NMD因素。在人类细胞中,SMG1激酶在N末端和C末端尾部使UPF1磷酸化,从而允许募集NMD因子SMG5,SMG6和SMG7。为了了解分子机制,我们使用纯化的成分在体外概括了NMD的这些步骤。我们发现,包含最后两个Ser-Gln基序的磷酸化UPF1的短C末端片段被SMG5和SMG7 14-3-3-like蛋白的异二聚体识别。相反,SMG6 14-3-3-样结构域是单体。晶体结构表明,SMG6 14-3-3-like结构域的磷酸丝氨酸结合位点与SMG5相似,并且可以介导与UPF1的弱磷酸依赖性相互作用。占主导地位的SMG6-UPF1相互作用是由与SMG6的14-3-3-like结构域接壤的低复杂性区域以及UPF1的解旋酶结构域和C末端尾部介导的。这种相互作用是独立于磷酸化的。我们的研究表明,SMG5-SMG7和SMG6展现出不同且不重叠的UPF1识别模式,从而指出了在集成复杂NMD交互网络中的杰出作用。

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