Scinovex
article Open AccessTop 10% cited

Evidence that metformin exerts its anti-diabetic effects through inhibition of complex 1 of the mitochondrial respiratory chain

Biochemical Journal · 2000 · Vol. 348(3) · pp. 607–614
Mark R. OwenE. DoranAndrew P. Halestrap

Abstract

Although metformin is widely used for the treatment of non-insulin-dependent diabetes, its mode of action remains unclear. Here we provide evidence that its primary site of action is through a direct inhibition of complex 1 of the respiratory chain. Metformin(50 microM) inhibited mitochondrial oxidation of glutamate+malate in hepatoma cells by 13 and 30% after 24 and 60 h exposure respectively, but succinate oxidation was unaffected. Metformin also caused time-dependent inhibition of complex 1 in isolated mitochondria, whereas in sub-mitochondrial particles inhibition was immediate but required very high metformin concentrations (K(0.5),79 mM). These data are compatible with the slow membrane-potential-driven accumulation of the positively charged drug within the mitochondrial matrix leading to inhibition of complex 1. Metformin inhibition of gluconeogenesis from L-lactate in isolated rat hepatocytes was also time- and concentration-dependent, and accompanied by changes in metabolite levels similar to those induced by other inhibitors of gluconeogenesis acting on complex 1. Freeze-clamped livers from metformin-treated rats exhibited similar changes in metabolite concentrations. We conclude that the drug's pharmacological effects are mediated, at least in part, through a time-dependent, self-limiting inhibition of the respiratory chain that restrains hepatic gluconeogenesis while increasing glucose utilization in peripheral tissues. Lactic acidosis, an occasional side effect, canal so be explained in this way.

Metabolism, Diabetes, and CancerPancreatic function and diabetesAdipose Tissue and MetabolismMetforminGluconeogenesisMetaboliteRespiratory chainMitochondrionLactic acidosisMitochondrial respiratory chainPharmacologyBiologyEndocrinology

MeSH terms

AnimalsElectron TransportGluconeogenesisHypoglycemic AgentsLiverMaleMetforminMitochondriaNADH, NADPH OxidoreductasesSubmitochondrial ParticlesTumor Cells, CulturedSignal TransductionRats, WistarElectron Transport Complex IRats
Citations
2,061
FWCI
4.15
field-weighted impact
References
40
Percentile
95%
vs. same field & year
Citations per year
Cited by
Treatment of nonalcoholic fatty liver disease: role of AMPK
American Journal of Physiology-Endocrinology and Metabolism · 2016 · 491 citations
Fundamentals of cancer metabolism
Science Advances · 2016 · 2,929 citations
The Warburg effect: 80 years on
Biochemical Society Transactions · 2016 · 501 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.