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Mitochondria possess a large, non-selective ionic current that is enhanced during cardiac injury.

Authors :
Balderas E
Lee SHJ
Shankar TS
Yin X
Balynas AM
Kyriakopoulos CP
Selzman CH
Drakos SG
Chaudhuri D
Source :
BioRxiv : the preprint server for biology [bioRxiv] 2023 Nov 16. Date of Electronic Publication: 2023 Nov 16.
Publication Year :
2023

Abstract

Mitochondrial ion channels are essential for energy production and cell survival. To avoid depleting the electrochemical gradient used for ATP synthesis, channels so far described in the mitochondrial inner membrane open only briefly, are highly ion-selective, have restricted tissue distributions, or have small currents. Here, we identify a mitochondrial inner membrane conductance that has strikingly different behavior from previously described channels. It is expressed ubiquitously, and transports cations non-selectively, producing a large, up to nanoampere-level, current. The channel does not lead to inner membrane uncoupling during normal physiology because it only becomes active at depolarized voltages. It is inhibited by external Ca <superscript>2+</superscript> , corresponding to the intermembrane space, as well as amiloride. This large, ubiquitous, non-selective, amiloride-sensitive (LUNA) current appears most active when expression of the mitochondrial calcium uniporter is minimal, such as in the heart. In this organ, we find that LUNA current magnitude increases two- to threefold in multiple mouse models of injury, an effect also seen in cardiac mitochondria from human patients with heart failure with reduced ejection fraction. Taken together, these features lead us to speculate that LUNA current may arise from an essential protein that acts as a transporter under physiological conditions, but becomes a channel under conditions of mitochondrial stress and depolarization.

Details

Language :
English
Database :
MEDLINE
Journal :
BioRxiv : the preprint server for biology
Accession number :
38014208
Full Text :
https://doi.org/10.1101/2023.11.15.567241