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首页> 外文期刊>Circulation: An Official Journal of the American Heart Association >MCUB Regulates the Molecular Composition of the Mitochondrial Calcium Uniporter Channel to Limit Mitochondrial Calcium Overload During Stress
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MCUB Regulates the Molecular Composition of the Mitochondrial Calcium Uniporter Channel to Limit Mitochondrial Calcium Overload During Stress

机译:Mcub调节线粒体钙的单钙通道的分子组合物,以限制应力期间的线粒体钙过载

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Background: The mitochondrial calcium uniporter (mtCU) is an approximate to 700-kD multisubunit channel residing in the inner mitochondrial membrane required for mitochondrial Ca2+ (Ca-m(2+)) uptake. Here, we detail the contribution of MCUB, a paralog of the pore-forming subunit MCU, in mtCU regulation and function and for the first time investigate the relevance of MCUB to cardiac physiology. Methods: We created a stable MCUB knockout cell line (MCUB-/-) using CRISPR-Cas9n technology and generated a cardiac-specific, tamoxifen-inducible MCUB mutant mouse (CAG-CAT-MCUB x MCM; MCUB-Tg) for in vivo assessment of cardiac physiology and response to ischemia/reperfusion injury. Live-cell imaging and high-resolution spectrofluorometery were used to determine intracellular Ca2+ exchange and size-exclusion chromatography; blue native page and immunoprecipitation studies were used to determine the molecular function and impact of MCUB on the high-molecular-weight mtCU complex. Results: Using genetic gain- and loss-of-function approaches, we show that MCUB expression displaces MCU from the functional mtCU complex and thereby decreases the association of mitochondrial calcium uptake 1 and 2 (MICU1/2) to alter channel gating. These molecular changes decrease MICU1/2-dependent cooperative activation of the mtCU, thereby decreasing Ca-m(2+) uptake. Furthermore, we show that MCUB incorporation into the mtCU is a stress-responsive mechanism to limit Ca-m(2+) overload during cardiac injury. Indeed, overexpression of MCUB is sufficient to decrease infarct size after ischemia/reperfusion injury. However, MCUB incorporation into the mtCU does come at a cost; acute decreases in Ca-m(2+) uptake impair mitochondrial energetics and contractile function. Conclusions: We detail a new regulatory mechanism to modulate mtCU function and Ca-m(2+) uptake. Our results suggest that MCUB-dependent changes in mtCU stoichiometry are a prominent regulatory mechanism to modulate Ca-m(2+) uptake and cellular physiology.
机译:背景:线粒体钙的单钙(MTCU)是差别在线粒体Ca2 +(Ca-m(2+))摄取所需的内部线粒体膜中的700kd多管道沟道。在这里,我们详细介绍了MCUB,孔隙形成亚基MCU的ParaLoG,在MTCU调节和功能中,首次研究MCUB与心脏生理学的相关性。方法:我们使用CRISPR-CAS9N技术创建了一个稳定的MCUB敲除细胞系(MCUB - / - ),并为体内产生了一种心脏特异性的三莫豆诱导的MCUB突变鼠(CAG-CAT-MCUB X MCM; MCUB-TG)对心脏生理学评估和对缺血/再灌注损伤的反应。实时细胞成像和高分辨率分光氟量用于确定细胞内Ca2 +交换和尺寸排阻色谱;蓝色天然页面和免疫沉淀研究用于确定MCUB对高分子量MTCU复合物的分子功能和影响。结果:使用遗传增益和函数丧失方法,我们表明MCUB表达从功能性MTCU复合物中取代MCU,从而降低线粒体钙吸收1和2(MICU1 / 2)的关联改变通道门控。这些分子变化降低了MTCu的Micu1 / 2依赖性激活,从而降低Ca-M(2+)摄取。此外,我们表明MCUB掺入MTCU是一种应力响应机制,以限制心脏损伤期间的CA-M(2+)过载。实际上,MCUB的过表达足以降低缺血/再灌注损伤后的梗塞尺寸。但是,MCUB进入MTCU确实以成本为止; Ca-M(2+)摄取急性降低损伤线粒体能量和收缩功能。结论:我们详细介绍了一种调节MTCU功能和CA-M(2+)摄取的新调节机制。我们的研究结果表明,MTCU化学计量中的MCUB依赖性变化是调节Ca-M(2+)摄取和细胞生理学的突出调节机制。

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