4.8 Article

Metformin, phenformin, and galegine inhibit complex IV activity and reduce glycerol-derived gluconeogenesis

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2122287119

Keywords

gluconeogenesis; complex I; complex IV; biguanides; redox

Funding

  1. US Public Health Service [R01 DK116774, R01 DK119968, R01 DK113984, R01 DK114793, P30 DK045735, F31 DK126362, T32GM007324, K99 HL150234]

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Metformin reduces hepatic gluconeogenesis by inhibiting complex IV to decrease the function of GPD2, leading to a decrease in glycerol-derived hepatic gluconeogenesis.
Metformin exerts its plasma glucose-lowering therapeutic effect primarily through inhibition of hepatic gluconeogenesis. However, the precise molecular mechanism by which metformin inhibits hepatic gluconeogenesis is still unclear. Although inhibition of mitochondrial complex I is frequently invoked as metformin's primary mechanism of action, the metabolic effects of complex I inhibition have not been thoroughly evaluated in vivo. Here, we show that acute portal infusion of piericidin A, a potent and specific complex I inhibitor, does not reduce hepatic gluconeogenesis in vivo. In contrast, we show that metformin, phenformin, and galegine selectively inhibit hepatic gluconeogenesis from glycerol. Specifically, we show that guanides/biguanides interact with complex IV to reduce its enzymatic activity, leading to indirect inhibition of glycerol-3-phosphate (G3P) dehydrogenase (GPD2), increased cytosolic redox, and reduced glycerol-derived gluconeogenesis. We report that inhibition of complex IV with potassium cyanide replicates the effects of the guanides/biguanides in vitro by selectively reducing glycerol-derived gluconeogenesis via increased cytosolic redox. Finally, we show that complex IV inhibition is sufficient to inhibit G3P-mediated respiration and gluconeogenesis from glycerol. Taken together, we propose a mechanism of metformin action in which complex IV-mediated inhibition of GPD2 reduces glycerol-derived hepatic gluconeogenesis.

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