Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10795466 | Biochimica et Biophysica Acta (BBA) - Bioenergetics | 2014 | 10 Pages |
Abstract
The mitochondrial oxidative phosphorylation (OXPHOS) system consists of four electron transport chain (ETC) complexes (CI-CIV) and the FoF1-ATP synthase (CV), which sustain ATP generation via chemiosmotic coupling. The latter requires an inward-directed proton-motive force (PMF) across the mitochondrial inner membrane (MIM) consisting of a proton (ÎpH) and electrical charge (ÎÏ) gradient. CI actively participates in sustaining these gradients via trans-MIM proton pumping. Enigmatically, at the cellular level genetic or inhibitor-induced CI dysfunction has been associated with ÎÏ depolarization or hyperpolarization. The cellular mechanism of the latter is still incompletely understood. Here we demonstrate that chronic (24Â h) CI inhibition in HEK293 cells induces a proton-based ÎÏ hyperpolarization in HEK293 cells without triggering reverse-mode action of CV or the adenine nucleotide translocase (ANT). Hyperpolarization was associated with low levels of CII-driven O2 consumption and prevented by co-inhibition of CII, CIII or CIV activity. In contrast, chronic CIII inhibition triggered CV reverse-mode action and induced ÎÏ depolarization. CI- and CIII-inhibition similarly reduced free matrix ATP levels and increased the cell's dependence on extracellular glucose to maintain cytosolic free ATP. Our findings support a model in which ÎÏ hyperpolarization in CI-inhibited cells results from low activity of CII, CIII and CIV, combined with reduced forward action of CV and ANT.
Keywords
Oligomycin Aantimycin ACyt CFCCPANTPMFCoQOXPHOSmaloΔpHKCNΔψBongkrekic acidOLIadenine nucleotide translocaseRotRotenoneelectron transport chaincytochrome cmitochondrial outer membraneMitochondrial inner membranePlasma membraneOxidative phosphorylationMoMMIMproton motive forceETcpotassium cyanideMitochondrial membrane potentialCoenzyme Q
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Authors
Marleen Forkink, Ganesh R. Manjeri, Dania C. Liemburg-Apers, Esther Nibbeling, Maxime Blanchard, Aleksandra Wojtala, Jan A.M. Smeitink, Mariusz R. Wieckowski, Peter H.G.M. Willems, Werner J.H. Koopman,