Mechanisms and significance of tissue-specific MICU regulation of the mitochondrial calcium uniporter complex

线粒体钙单向转运复合物组织特异性MICU调控的机制和意义

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作者:Chen-Wei Tsai ,Madison X Rodriguez ,Anna M Van Keuren ,Charles B Phillips ,Hannah M Shushunov ,Jessica E Lee ,Anastacia M Garcia ,Amrut V Ambardekar ,Joseph C Cleveland Jr ,Julie A Reisz ,Catherine Proenza ,Kathryn C Chatfield ,Ming-Feng Tsai

Abstract

Mitochondrial Ca2+ uptake, mediated by the mitochondrial Ca2+ uniporter, regulates oxidative phosphorylation, apoptosis, and intracellular Ca2+ signaling. Previous studies suggest that non-neuronal uniporters are exclusively regulated by a MICU1-MICU2 heterodimer. Here, we show that skeletal-muscle and kidney uniporters also complex with a MICU1-MICU1 homodimer and that human/mouse cardiac uniporters are largely devoid of MICUs. Cells employ protein-importation machineries to fine-tune the relative abundance of MICU1 homo- and heterodimers and utilize a conserved MICU intersubunit disulfide to protect properly assembled dimers from proteolysis by YME1L1. Using the MICU1 homodimer or removing MICU1 allows mitochondria to more readily take up Ca2+ so that cells can produce more ATP in response to intracellular Ca2+ transients. However, the trade-off is elevated ROS, impaired basal metabolism, and higher susceptibility to death. These results provide mechanistic insights into how tissues can manipulate mitochondrial Ca2+ uptake properties to support their unique physiological functions. Keywords: calcium channels; cardiac pathophysiology; cellular metabolism; intracellular calcium signaling; membrane-transport mechanisms; mitochondrial physiology; mitochondrial proteases; organellar channels; protein complexes.

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