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不同切应力模式对血管内皮细胞线粒体钙单向转运体复合物亚基表达的调节。

Modulation of the mitochondrial Ca uniporter complex subunit expression by different shear stress patterns in vascular endothelial cells.

机构信息

Vascular Mechanobiology Laboratory, Department of Biomedical Engineering, and Center for Cell, Gene, and Tissue Engineering, University at Buffalo - The State University of New York, Buffalo, New York, USA.

Department of Medicine, Center for Mitochondrial Medicine, University of Texas Health San Antonio, San Antonio, Texas, USA.

出版信息

Physiol Rep. 2023 Feb;11(3):e15588. doi: 10.14814/phy2.15588.

Abstract

Mitochondrial calcium ( Ca ) uptake occurs via the Mitochondrial Ca Uniporter (MCU) complex and plays a critical role in mitochondrial dynamics, mitophagy, and apoptosis. MCU complex activity is in part modulated by the expression of its regulatory subunits. Cardiovascular disease models demonstrated altered gene/protein expression of one or multiple subunits in different cells, including vascular endothelial cells (ECs). MCU complex activity was found necessary for stable flow (s-flow)-induced mitophagy and promotion of an atheroprotective EC phenotype. Disturbed flow (d-flow) is known to lead to an atheroprone phenotype. Despite the role of MCU in flow-regulated EC function, flow-induced alterations in MCU complex subunit expression are currently unknown. We exposed cultured human ECs to atheroprotective (steady shear stress, SS) or atheroprone flow (oscillatory shear stress, OS) and measured mRNA and protein levels of the MCU complex members. SS and OS differentially modulated subunit expression at gene/protein levels. Protein expression changes of the core MCU, Ca uptake 1 (MICU1) and MCU regulator 1 (MCUR1) subunits in SS- and OS-exposed, compared to static, ECs suggested an enhanced Ca influx under each flow and a potential contribution to EC dysfunction under OS. In silico analysis of a single-cell RNA-sequencing dataset was employed to extract transcript values of MCU subunits in mouse carotid ECs from regions exposed to s-flow or d-flow. Mcu and Mcur1 genes showed significant differences in expression after prolonged exposure to each flow. The differential expression of MCU complex subunits indicated a tight regulation of the complex activity under physiological and pathological hemodynamic conditions.

摘要

线粒体钙(Ca)摄取通过线粒体钙单向转运体(MCU)复合物发生,在线粒体动力学、线粒体自噬和细胞凋亡中起关键作用。MCU 复合物的活性部分受其调节亚基的表达调节。心血管疾病模型表明,不同细胞(包括血管内皮细胞[ECs])中一个或多个亚基的基因/蛋白表达发生改变。发现 MCU 复合物的活性对于稳定流动(s-flow)诱导的线粒体自噬和促进抗动脉粥样硬化的 EC 表型是必要的。已知紊乱的流动(d-flow)导致动脉粥样硬化易损表型。尽管 MCU 在调节 EC 功能的流动中起作用,但目前尚不清楚流动诱导的 MCU 复合物亚基表达的改变。我们将培养的人 EC 暴露于抗动脉粥样硬化(稳态剪切应力,SS)或动脉粥样硬化易感(振荡剪切应力,OS)中,并测量 MCU 复合物成员的 mRNA 和蛋白水平。SS 和 OS 在基因/蛋白水平上差异调节亚基表达。与静态相比,SS 和 OS 暴露的 EC 中 MCU 核心、Ca 摄取 1(MICU1)和 MCU 调节 1(MCUR1)亚基的蛋白表达变化表明,在每种流动下,Ca 内流增强,并可能导致 OS 下的 EC 功能障碍。对单细胞 RNA 测序数据集的计算机分析用于从暴露于 s-flow 或 d-flow 的小鼠颈动脉 EC 中提取 MCU 亚基的转录值。Mcu 和 Mcur1 基因在长时间暴露于每种流动后表达差异显著。MCU 复合物亚基的差异表达表明,在生理和病理血液动力学条件下,该复合物的活性受到严格调控。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f123/9908435/d1f3759dd29b/PHY2-11-e15588-g003.jpg

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