Wadsworth Center, New York State Department of Health, Empire State Plaza, Box 509, Albany, NY 12201-0509, USA.
J Mol Cell Cardiol. 2013 Sep;62:51-7. doi: 10.1016/j.yjmcc.2013.05.001. Epub 2013 May 12.
The mitochondrial inner membrane has a complex and dynamic structure that plays an important role in the function of this organelle. The internal compartments called cristae are created by processes that are just beginning to be understood. Crista size and morphology influence the internal diffusion of solutes and the surface area of the inner membrane, which is home to critical membrane proteins including ATP synthase and electron transport chain complexes; metabolite and ion transporters including the adenine nucleotide translocase, the calcium uniporter (MCU), and the sodium/calcium exchanger (NCLX); and many more. Here we provide a brief overview of what is known about crista structure and formation, and discuss mitochondrial function in the context of that structure. We also suggest that mathematical modeling of mitochondria that incorporates accurate information about the organelle's internal architecture can lead to a better understanding of its diverse functions. This article is part of a Special Issue entitled 'Calcium Signalling in Heart'.
线粒体的内膜具有复杂而动态的结构,在该细胞器的功能中起着重要作用。内部称为嵴的隔室是由刚刚开始被理解的过程产生的。嵴的大小和形态影响溶质的内部扩散和内膜的表面积,内膜上有包括 ATP 合酶和电子传递链复合物在内的关键膜蛋白;代谢物和离子转运体,包括腺嘌呤核苷酸转运蛋白、钙单向转运体 (MCU) 和钠/钙交换体 (NCLX);以及更多。在这里,我们简要概述了关于嵴结构和形成的已知信息,并讨论了在该结构背景下的线粒体功能。我们还建议,将关于细胞器内部结构的准确信息纳入到线粒体的数学模型中,可以更好地理解其多样化的功能。本文是主题为“心脏中的钙信号”的特刊的一部分。