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Calcium release microdomains and mitochondria

机译:钙释放微区和线粒体

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The processes of excitation-contraction (EC) coupling consume large amounts of energy that need to be replenished by oxidative phosphorylation in the mitochondria. Since Ca2+ activates key enzymes of the Krebs cycle in the mitochondrial matrix, it is important to understand the mechanisms and kinetics of mitochondrial Ca2+ uptake to delineate how in cardiac myocytes, energy supply is efficiently matched to demand. In recent years, the identification of various proteins involved in mitochondrial Ca2+ signalling and the tethering of mitochondria to the sarcoplasmic reticulum (SR) has considerably advanced the field and supported the concept of a mitochondrial Ca2+ microdomain, in which Ca2+ concentrations are high enough to overcome the low Ca2+ affinity of the principal mitochondrial Ca2+ uptake mechanism, the Ca2+ uniporter. Furthermore, defects in EC coupling that occur in heart failure disrupt SR-mitochondrial Ca2+ crosstalk and may cause energetic deficit and oxidative stress, both factors that are thought to be causally involved in the initiation and progression of the disease.
机译:激发-收缩(EC)耦合过程消耗大量能量,需要通过线粒体中的氧化磷酸化来补充能量。由于Ca2 +激活了线粒体基质中Krebs循环的关键酶,因此了解线粒体Ca2 +摄取的机制和动力学来描述心肌细胞中能量的供应方式与需求有效匹配非常重要。近年来,线粒体Ca2 +信号转导和线粒体与肌质网的结合所涉及的各种蛋白质的鉴定已大大推动了该领域的发展,并支持了线粒体Ca2 +微域的概念,其中Ca2 +的浓度足以克服主要线粒体Ca2 +吸收机制Ca2 +单向转运体的低Ca2 +亲和力。此外,在心力衰竭中发生的EC耦合缺陷会破坏SR-线粒体Ca2 +串扰,并可能导致能量不足和氧化应激,这两个因素均被认为与疾病的发生和发展有因果关系。

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