Spatial adjustment of bioenergetics, a possible determinant of contractile adaptation and development of contractile failure

Marten Szibor, Marie Mühlon, Torsten Doenst, Jaakko L. O. Pohjoismäki
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Abstract

Cardiomyocytes depend on mitochondrial oxidative phosphorylation (OXPHOS) for energy metabolism, which is facilitated by the mitochondrial electron transfer system (ETS). In a series of thermogenic redox reactions, electrons are shuttled through the ETS to oxygen as the final electron acceptor. This electron transfer is coupled to proton translocation across the inner mitochondrial membrane, which itself is the main driving force for ATP production. Oxygen availability is thus a prerequisite for ATP production and consequently contractility. Notably, cardiomyocytes are exceptionally large cells and densely packed with contractile structures, which constrains intracellular oxygen distribution. Moreover, oxygen must pass through layers of actively respiring mitochondria to reach the ones located in the innermost contractile compartment. Indeed, uneven oxygen distribution was observed in cardiomyocytes, suggesting that local ATP supply may also vary according to oxygen availability. Here, we discuss how spatial adjustment of bioenergetics to intracellular oxygen fluctuations may underlie cardiac contractile adaptation and how this adaptation may pose a risk for the development of contractile failure.
生物能的空间调整--收缩适应和收缩衰竭发展的可能决定因素
心肌细胞依靠线粒体氧化磷酸化(OXPHOS)进行能量代谢,这是由线粒体电子传递系统(ETS)促进的。在一系列热源氧化还原反应中,电子通过ETS被传送到氧作为最终的电子受体。这种电子转移与穿过线粒体内膜的质子易位相耦合,而质子易位本身就是ATP产生的主要驱动力。因此,氧的可用性是ATP产生和收缩性的先决条件。值得注意的是,心肌细胞是非常大的细胞,密集地挤满了收缩结构,这限制了细胞内氧气的分布。此外,氧气必须穿过活跃呼吸的线粒体层,才能到达位于最内层可收缩室的线粒体。事实上,在心肌细胞中观察到不均匀的氧分布,表明局部ATP供应也可能根据氧的可用性而变化。在这里,我们讨论了生物能量对细胞内氧波动的空间调节如何可能是心脏收缩适应的基础,以及这种适应如何可能对收缩衰竭的发展构成风险。
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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