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Optogenetic control of mitochondrial protonmotive force to impact cellular stress resistance

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journal contribution
posted on 2020-04-01, 00:00 authored by B J Berry, Adam Trewin, A S Milliken, A Baldzizhar, A M Amitrano, Y Lim, M Kim, A P Wojtovich
Mitochondrial respiration generates an electrochemical proton gradient across the mitochondrial inner membrane called protonmotive force (PMF) to drive diverse functions and synthesize ATP. Current techniques to manipulate the PMF are limited to its dissipation; yet, there is no precise and reversible method to increase the PMF. To address this issue, we aimed to use an optogenetic approach and engineered a mitochondria-targeted light-activated proton pump that we name mitochondria-ON (mtON) to selectively increase the PMF in Caenorhabditis elegans. Here we show that mtON photoactivation increases the PMF in a dose-dependent manner, supports ATP synthesis, increases resistance to mitochondrial toxins, and modulates energy-sensing behavior. Moreover, transient mtON activation during hypoxic preconditioning prevents the well-characterized adaptive response of hypoxia resistance. Our results show that optogenetic manipulation of the PMF is a powerful tool to modulate metabolism and cell signaling.

History

Journal

EMBO Reports

Volume

21

Issue

4

Pagination

1 - 14

Publisher

Embo Press

Location

Heidelberg, Germany

ISSN

1469-221X

eISSN

1469-3178

Language

eng

Publication classification

C1 Refereed article in a scholarly journal