G 蛋白通路抑制因子 2 (GPS2) 对 K63 泛素化的抑制调节线粒体相关翻译。

IF 9.1 2区 医学 Q1 PHARMACOLOGY & PHARMACY
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引用次数: 0

摘要

G 蛋白通路抑制因子 2(GPS2)是 E2 泛素结合酶 Ubc13 介导的 K63 泛素化的非蛋白水解抑制因子。以往的研究表明,GPS2 介导的泛素化限制与不同组织和细胞类型的胰岛素信号传导、炎症反应和线粒体-核通讯的调控有关。然而,目前还缺乏对 GPS2/Ubc13 活性靶标的详细了解。在这里,我们剖析了小鼠胚胎成纤维细胞和人类乳腺癌细胞中受 GPS2 调节的 K63 泛素组,意外地发现线粒体外膜上参与 RNA 结合和翻译的蛋白质富集。对 GPS2 介导的选定调控靶标(包括 RNA 结合蛋白 PABPC1 和翻译因子 RPS1、RACK1 和 eIF3M)的验证揭示了通过非蛋白酶泛素化调控核编码线粒体蛋白翻译的线粒体特异性策略。通过基因缺失或应激诱导的核转位消除 GPS2 介导的抑制,可促进选定 mRNA 的导入耦合翻译,从而增加适应性抗氧化程序的表达。鉴于 GPS2 在核-线粒体通讯中的作用,这些发现揭示了通过空间协调转录和翻译调节线粒体基因表达的精致调控网络。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inhibition of K63 ubiquitination by G-Protein pathway suppressor 2 (GPS2) regulates mitochondria-associated translation

G-Protein Pathway Suppressor 2 (GPS2) is an inhibitor of non-proteolytic K63 ubiquitination mediated by the E2 ubiquitin-conjugating enzyme Ubc13. Previous studies have associated GPS2-mediated restriction of ubiquitination with the regulation of insulin signaling, inflammatory responses and mitochondria-nuclear communication across different tissues and cell types. However, a detailed understanding of the targets of GPS2/Ubc13 activity is lacking. Here, we have dissected the GPS2-regulated K63 ubiquitome in mouse embryonic fibroblasts and human breast cancer cells, unexpectedly finding an enrichment for proteins involved in RNA binding and translation on the outer mitochondrial membrane. Validation of selected targets of GPS2-mediated regulation, including the RNA-binding protein PABPC1 and translation factors RPS1, RACK1 and eIF3M, revealed a mitochondrial-specific strategy for regulating the translation of nuclear-encoded mitochondrial proteins via non-proteolytic ubiquitination. Removal of GPS2-mediated inhibition, either via genetic deletion or stress-induced nuclear translocation, promotes the import-coupled translation of selected mRNAs leading to the increased expression of an adaptive antioxidant program. In light of GPS2 role in nuclear-mitochondria communication, these findings reveal an exquisite regulatory network for modulating mitochondrial gene expression through spatially coordinated transcription and translation.

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来源期刊
Pharmacological research
Pharmacological research 医学-药学
CiteScore
18.70
自引率
3.20%
发文量
491
审稿时长
8 days
期刊介绍: Pharmacological Research publishes cutting-edge articles in biomedical sciences to cover a broad range of topics that move the pharmacological field forward. Pharmacological research publishes articles on molecular, biochemical, translational, and clinical research (including clinical trials); it is proud of its rapid publication of accepted papers that comprises a dedicated, fast acceptance and publication track for high profile articles.
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