4.8 Article

Mitochondrial dysfunction during hypoxia/reoxygenation and its correction by anaerobic metabolism of citric acid cycle intermediates

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NATL ACAD SCIENCES
DOI: 10.1073/pnas.97.6.2826

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  1. NIDDK NIH HHS [R01 DK053761, R01 DK037139, R56 DK034275, DK34275, DK-37139, DK39225, R01 DK034275, R56 DK053761, R37 DK037139, P50 DK039255] Funding Source: Medline

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Kidney proximal tubule cells developed severe energy deficits during hypoxia/reoxygenation not attributable to cellular disruption, lack of purine precursors, the mitochondrial permeability transition, or loss of cytochrome c. Reoxygenated cells showed decreased respiration with complex I substrates, but minimal or no impairment with electron donors at complexes II and IV. This was accompanied by diminished mitochondrial membrane potential (Delta Psi(m)). The energy deficit, respiratory inhibition, and loss of Delta Psi(m) were strongly ameliorated by provision of cu-ketoglutarate plus aspartate (alpha KG/ASP) supplements during either hypoxia or only during reoxygenation. Measurements of C-13-labeled metabolites in [3-C-13]aspartate-treated cells indicated the operation of anaerobic pathways of (alpha KG/ASP metabolism to generate ATP, yielding succinate as end product. Anaerobic metabolism of (alpha KG/ASP also mitigated the loss of Delta Psi(m) that occurred during hypoxia before reoxygenation. Rotenone, but not antimycin or oligomycin, prevented this effect, indicating that electron transport in complex I, rather than F1F0-ATPase activity, had been responsible for maintenance of Delta Psi(m) by the substrates. Thus, tubule cells subjected to hypoxia/reoxygenation can have persistent energy deficits associated with complex I dysfunction for substantial periods of time before onset of the mitochondrial permeability transition and/or loss of cytochrome c, The lesion can be prevented or reversed by citric acid cycle metabolites that anaerobically generate ATP by intramitochondrial substrate-level phosphorylation and maintain Delta Psi(m) via electron transport: in complex I. Utilization of these anaerobic pathways of mitochondrial energy metabolism known to be present in other mammalian tissues may provide strategies to limit mitochondrial dysfunction and allow cellular repair before the onset of irreversible injury by ischemia or hypoxia.

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