Remodelling of Cellular Protein Homeostasis by Enhanced ER-Mitochondrial Tethering.

Contact (Thousand Oaks (Ventura County, Calif.)) Pub Date : 2025-04-01 eCollection Date: 2025-01-01 DOI:10.1177/25152564251329704
Elisa Tonelli, Justyna Malecka, Elettra Barberis, Camilla Romano, Emanuela Pessolano, Maria Talmon, Armando A Genazzani, Claudio Casali, Marco Biggiogera, Marcello Manfredi, Laura Tapella, Dmitry Lim, Giulia Dematteis
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引用次数: 0

Abstract

Alterations of endoplasmic reticulum (ER)-mitochondrial interaction have been associated with different pathological conditions, including neurodegenerative diseases, characterized by dysregulation of protein homeostasis. However, little is known about how enhanced ER-mitochondrial tethering affects cellular proteostatic machinery. Here, we transiently overexpressed synthetic ER-mitochondrial linkers (EMLs), stabilizing the ER-mitochondrial distance at ≤5 nm (denominated as 5 nm-EML) and ∼10 nm (10 nm-EML), in HeLa cells. No alterations were found in cell growth, although metabolic activity and total ATP were significantly reduced. In EML-expressing cells, global protein synthesis was significantly reduced, accompanied by a reduction of total PERK and eIF2α protein levels, but increased p-eIF2α. Unfolded protein response (UPR) markers ATF4 and ATF6 were upregulated, suggesting that enhanced ER-mitochondrial tethering deranges protein synthesis and induces a low-grade ER stress/UPR. To further investigate ER-mitochondrial tethering-induced protein dyshomeostasis, we performed shotgun mass spectrometry proteomics followed by bioinformatic analysis. Analysis of highly changed proteins and the most significantly overrepresented gene ontology (GO) terms revealed that ≤5 nm tethering preferentially affected the expression of proteins involved in RNA processing and splicing and proteasomal protein degradation, while ∼10 nm tethering preferentially affected protein translation. Both EMLs affected expression of proteins involved in mitochondrial bioenergetics and metabolism, defense against oxidative stress, ER protein homeostasis, signaling and secretion. Finally, lipidomic analysis suggests that 5 nm-EML and 10 nm-EML differentially affect lipid homeostasis. Altogether, our results suggest that enhanced ER-mitochondrial tethering leads to a profound remodeling of cellular protein homeostasis, which may play a key role in pathogenesis of Alzheimer's and other neurodegenerative diseases.

内质网(ER)-线粒体相互作用的改变与不同的病理状况有关,包括神经退行性疾病,其特点是蛋白质平衡失调。然而,人们对增强的ER-线粒体系链如何影响细胞蛋白稳态机制知之甚少。在这里,我们在 HeLa 细胞中瞬时过表达合成的ER-线粒体连接体(EMLs),将ER-线粒体距离稳定在≤5 nm(5 nm-EML)和∼10 nm(10 nm-EML)。虽然新陈代谢活性和 ATP 总量显著降低,但细胞生长没有发生变化。在表达 EML 的细胞中,整体蛋白质合成显著减少,伴随着 PERK 和 eIF2α 蛋白水平的降低,但 p-eIF2α 蛋白水平增加。折叠蛋白反应(UPR)标志物 ATF4 和 ATF6 上调,这表明ER-线粒体系链的增强改变了蛋白质合成,诱导了低级别的 ER 应激/UPR。为了进一步研究ER-线粒体拴系诱导的蛋白质失衡,我们进行了霰弹枪质谱蛋白质组学研究,然后进行了生物信息学分析。对高度变化的蛋白质和最显著的基因本体论(GO)术语的分析表明,≤5 nm的系留优先影响参与RNA加工和剪接以及蛋白酶体蛋白降解的蛋白质的表达,而∼10 nm的系留优先影响蛋白质的翻译。两种 EML 都会影响参与线粒体生物能和代谢、氧化应激防御、ER 蛋白平衡、信号传递和分泌的蛋白质的表达。最后,脂质体分析表明,5 nm-EML 和 10 nm-EML 会对脂质稳态产生不同的影响。总之,我们的研究结果表明,ER-线粒体连接的增强导致了细胞蛋白质稳态的深刻重塑,这可能在阿尔茨海默氏症和其他神经退行性疾病的发病机制中起着关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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