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Mitochondrial lactate metabolism: history and implications for exercise and disease

2020/05/02 by Brian Glancy, Daniel A. Kane, Andreas N. Kavazis +3 · 198 citations
Biochemistry, Genetics and Molecular Biology · Chemistry · Medicine · #ATP Synthase and ATPases Research #ATP synthase #Adipose Tissue and Metabolism #Biochemistry #Bioenergetics #Biology #Biophysics #Chemiosmosis #Chemistry #Citric acid cycle #Cytosol #Electron transport chain #Enzyme #Glycolysis #Metabolism #Mitochondrial Function and Pathology #Mitochondrial matrix #Mitochondrion #Oxidative phosphorylation

paper · pdf · doi:10.1113/jp278930

published in The Journal of Physiology 599(3), 863-888 (Wiley)

openalex publication_date 2020/05/02 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06

Abstract

Abstract Mitochondrial structures were probably observed microscopically in the 1840s, but the idea of oxidative phosphorylation (OXPHOS) within mitochondria did not appear until the 1930s. The foundation for research into energetics arose from Meyerhof's experiments on oxidation of lactate in isolated muscles recovering from electrical contractions in an O 2 atmosphere. Today, we know that mitochondria are actually reticula and that the energy released from electron pairs being passed along the electron transport chain from NADH to O 2 generates a membrane potential and pH gradient of protons that can enter the molecular machine of ATP synthase to resynthesize ATP. Lactate stands at the crossroads of glycolytic and oxidative energy metabolism. Based on reported research and our own modelling in silico , we contend that lactate is not directly oxidized in the mitochondrial matrix. Instead, the interim glycolytic products (pyruvate and NADH) are held in cytosolic equilibrium with the products of the lactate dehydrogenase (LDH) reaction and the intermediates of the malate‐aspartate and glycerol 3‐phosphate shuttles. This equilibrium supplies the glycolytic products to the mitochondrial matrix for OXPHOS. LDH in the mitochondrial matrix is not compatible with the cytoplasmic/matrix redox gradient; its presence would drain matrix reducing power and substantially dissipate the proton motive force. OXPHOS requires O 2 as the final electron acceptor, but O 2 supply is sufficient in most situations, including exercise and often acute illness. Recent studies suggest that atmospheric normoxia may constitute a cellular hyperoxia in mitochondrial disease. As research proceeds appropriate oxygenation levels should be carefully considered. image

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