Coupled transmembrane mechanisms control MCU-mediated mitochondrial Ca<sup>2+</sup> uptake.

Vais, Horia; Payne, Riley; Paudel, Usha; Li, Carmen; Foskett, J Kevin · Proc Natl Acad Sci U S A · 2020

basic_science · Level V

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Abstract

Ca<sup>2+</sup> uptake by mitochondria regulates bioenergetics, apoptosis, and Ca<sup>2+</sup> signaling. The primary pathway for mitochondrial Ca<sup>2+</sup> uptake is the mitochondrial calcium uniporter (MCU), a Ca<sup>2+</sup>-selective ion channel in the inner mitochondrial membrane. MCU-mediated Ca<sup>2+</sup> uptake is driven by the sizable inner-membrane potential generated by the electron-transport chain. Despite the large thermodynamic driving force, mitochondrial Ca<sup>2+</sup> uptake is tightly regulated to maintain low matrix [Ca<sup>2+</sup>] and prevent opening of the permeability transition pore and cell death, while meeting dynamic cellular energy demands. How this is accomplished is controversial. Here we define a regulatory mechanism of MCU-channel activity in which cytoplasmic Ca<sup>2+</sup> regulation of intermembrane space-localized MICU1/2 is controlled by Ca<sup>2+</sup>-regulatory mechanisms localized across the membrane in the mitochondrial matrix. Ca<sup>2+</sup> that permeates through the channel pore regulates Ca<sup>2+</sup> affinities of coupled inhibitory and activating sensors in the matrix. Ca<sup>2+</sup> binding to the inhibitory sensor within the MCU amino terminus closes the channel despite Ca<sup>2+</sup> binding to MICU1/2. Conversely, disruption of the interaction of MICU1/2 with the MCU complex disables matrix Ca<sup>2+</sup> regulation of channel activity. Our results demonstrate how Ca<sup>2+</sup> influx into mitochondria is tuned by coupled Ca<sup>2+</sup>-regulatory mechanisms on both sides of the inner mitochondrial membrane.

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