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Geminin5在蛋白质合成中的作用:二聚化结构域的磷酸化残基调节核糖体结合。

Impact of Gemin5 in protein synthesis: phosphoresidues of the dimerization domain regulate ribosome binding.

作者信息

Abellan Salvador, Escos Alejandra, Francisco-Velilla Rosario, Martinez-Salas Encarnacion

机构信息

Centro de Biologia Molecular Severo Ochoa, CSIC-UAM, Madrid, Spain.

出版信息

RNA Biol. 2025 Dec;22(1):1-15. doi: 10.1080/15476286.2025.2540654. Epub 2025 Aug 3.

DOI:10.1080/15476286.2025.2540654
PMID:40734649
Abstract

RNA-binding proteins are involved in all steps of gene expression. Their malfunction has important consequences for cell growth through dysregulation of protein synthesis events leading to cancer. Gemin5 is a predominantly cytoplasmic protein involved in spliceosome assembly and gene expression reprogramming. The protein is phosphorylated at multiple sites, although the role of the individual phosphorylated residues remains poorly understood. With the aim to understand the impact of Gemin5 post-translation modifications for RNA-binding, protein synthesis, and therefore cell growth, we have analysed the role of conserved P-residues located in the dimerization domain of the protein in subcellular localization, protein stability, interactome, ribosome binding and translation regulation. We show that the activation of signalling pathways in response to a dsRNA mimic, which leads to phosphorylation of eIF2α, enhanced the intensity of Gemin5 binding to a cognate RNA ligand. In addition, ribosome binding decreased when Ser/Thr 847 and 852-854 are substituted by a non-phosphorylatable residue, consistent with decreased protein stability, and reduced number of associated factors. Similar analyses of phosphomimetic mutants (S847D and STS852-854DDD) suggested conformational changes of the protein structure as the responsible factor for the defective proteins. Moreover, cap-dependent protein synthesis was significantly altered by the triple substitution STS/DDD, pointing towards a role of these residues in protein synthesis regulation.

摘要

RNA结合蛋白参与基因表达的所有步骤。它们的功能失调会通过导致癌症的蛋白质合成事件的失调对细胞生长产生重要影响。Gemin5是一种主要位于细胞质中的蛋白质,参与剪接体组装和基因表达重编程。该蛋白在多个位点被磷酸化,尽管单个磷酸化残基的作用仍知之甚少。为了了解Gemin5翻译后修饰对RNA结合、蛋白质合成以及细胞生长的影响,我们分析了位于该蛋白二聚化结构域的保守磷酸化残基在亚细胞定位、蛋白质稳定性、相互作用组、核糖体结合和翻译调控中的作用。我们发现,对双链RNA模拟物的信号通路激活导致eIF2α磷酸化,增强了Gemin5与同源RNA配体的结合强度。此外,当丝氨酸/苏氨酸847和852 - 854被不可磷酸化的残基取代时,核糖体结合减少,这与蛋白质稳定性降低和相关因子数量减少一致。对磷酸模拟突变体(S847D和STS852 - 854DDD)的类似分析表明,蛋白质结构的构象变化是导致蛋白质缺陷的原因。此外,三重取代STS/DDD显著改变了帽依赖性蛋白质合成,表明这些残基在蛋白质合成调控中发挥作用。

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本文引用的文献

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Understanding GEMIN5 Interactions: From Structural and Functional Insights to Selective Translation.了解GEMIN5相互作用:从结构和功能洞察到选择性翻译
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Alternative splicing events driven by altered levels of GEMIN5 undergo translation.由 GEMIN5 水平改变驱动的可变剪接事件发生翻译。
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寡聚化调节Gemin5与SMN复合体成员及翻译机制之间的相互作用。
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An insight into PI3k/Akt pathway and associated protein-protein interactions in metabolic syndrome: A recent update.代谢综合征中 PI3k/Akt 通路及相关蛋白-蛋白相互作用的研究进展:最新综述
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SMN regulates GEMIN5 expression and acts as a modifier of GEMIN5-mediated neurodegeneration.运动神经元存活基因(SMN)调控 GEMIN5 的表达,并作为 GEMIN5 介导的神经退行性变的修饰因子。
Acta Neuropathol. 2023 Sep;146(3):477-498. doi: 10.1007/s00401-023-02607-8. Epub 2023 Jun 27.
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