Mitochondrial F1 FO ATP synthase determines the local proton motive force at cristae rims

2021 | journal article; research paper

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​Mitochondrial F1 FO ATP synthase determines the local proton motive force at cristae rims​
Rieger, B.; Arroum, T.; Borowski, M.-T.; Villalta, J. & Busch, K. B. ​ (2021) 
EMBO Reports22(12) art. e52727​.​ DOI: https://doi.org/10.15252/embr.202152727 

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Authors
Rieger, Bettina; Arroum, Tasnim; Borowski, Marie-Theres; Villalta, Jimmy; Busch, Karin B. 
Abstract
The classical view of oxidative phosphorylation is that a proton motive force (PMF) generated by the respiratory chain complexes fuels ATP synthesis via ATP synthase. Yet, under glycolytic conditions, ATP synthase in its reverse mode also can contribute to the PMF. Here, we dissected these two functions of ATP synthase and the role of its inhibitory factor 1 (IF1) under different metabolic conditions. pH profiles of mitochondrial sub-compartments were recorded with high spatial resolution in live mammalian cells by positioning a pH sensor directly at ATP synthase's F1 and FO subunits, complex IV and in the matrix. Our results clearly show that ATP synthase activity substantially controls the PMF and that IF1 is essential under OXPHOS conditions to prevent reverse ATP synthase activity due to an almost negligible ΔpH. In addition, we show how this changes lateral, transmembrane, and radial pH gradients in glycolytic and respiratory cells.
Issue Date
2021
Journal
EMBO Reports 
Project
FOR 2848: Architektur und Heterogenität der inneren mitochondrialen Membran auf der Nanoskala 
FOR 2848 | P03: Heterogenität bei der protonen-basierten Energiekopplung 
Working Group
RG K. Busch (Cellular Bioenergetics) 
ISSN
1469-221X
eISSN
1469-3178
Language
English

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