Lactate transporters (MCT proteins) in heart and skeletal muscles
- 1 April 2000
- journal article
- review article
- Published by Wolters Kluwer Health in Medicine & Science in Sports & Exercise
- Vol. 32 (4) , 778-789
- https://doi.org/10.1097/00005768-200004000-00010
Abstract
BONEN, A. Lactate transporters (MCT proteins) in heart and skeletal muscles. Med. Sci. Sports Exerc., Vol. 32, No. 4, pp. 778–789, 2000. Lactate traverses the cell membranes of many tissues, including the heart and skeletal muscle via a facilitated monocarboxylate transport system that functions as a proton symport and is stereoselective for L-lactate. In the past few years, seven monocarboxylate transporters have been cloned. Monocarboxylate transporters are ubiquitously distributed among many tissues, and the transcripts of several monocarboxylate transporters are present within many of the same tissues. This complicates the identification of their metabolic function. There is also evidence that that there is some species specificity, with differences in MCT tissue distributions in hamsters, rats, and humans. MCT1 and MCT3-M/MCT4 are present in rat and human muscles, and MCT1 expression is highly correlated with the oxidative capacity of skeletal muscles and with their capacity to take up lactate from the circulation. MCT1 is also present in heart and is located on the plasma membrane (in subdomains), T-tubules, and in caveolae. With training, MCT1 is increased in rat and human muscle, and in rat hearts, resulting in an increased uptake of lactate from the buffers perfused through these tissues and an increase in lactate efflux out of purified vesicles. In humans, the training-induced increases in MCT1 are associated with an increased lactate efflux out of muscle. MCT3-M/MCT4 is not correlated with the muscles’ oxidative capacities but is equally abundant in Type IIa and IIb muscles, whereas it is markedly lower in slow-twitch (Type I) muscles. Clearly, we are at the threshold of a new era in understanding the regulation of lactate movement into and out of skeletal muscle and cardiac cells.Keywords
This publication has 52 references indexed in Scilit:
- FGF‐2 stimulates migration of Kaposi's sarcoma‐like vascular cells by HGF‐dependent relocalization of the urokinase receptorThe FASEB Journal, 1998
- Training intensity-dependent and tissue-specific increases in lactate uptake and MCT-1 in heart and muscleJournal of Applied Physiology, 1998
- Short-term training increases human muscle MCT1 and femoral venous lactate in relation to muscle lactate.American Journal of Physiology-Endocrinology and Metabolism, 1998
- Lactate Transport and Lactate Transporters in Skeletal MuscleCanadian Journal of Applied Physiology, 1997
- Cloning and sequencing of the monocarboxylate transporter from mouse Ehrlich Lettré tumour cell confirms its identity as MCT1 and demonstrates that glycosylation is not required for MCT1 functionBiochimica et Biophysica Acta (BBA) - Biomembranes, 1996
- Lactate uptake by skeletal muscle sarcolemmal vesicles decreases after 4 wk of hindlimb unweighting in ratsJournal of Applied Physiology, 1996
- Partial purification and reconstitution of the sarcolemmal l-lactate carrier from rat skeletal muscleBiochemical Journal, 1994
- Effects of Exercise on Lactate Transport Into Mouse Skeletal MusclesCanadian Journal of Applied Physiology, 1994
- Sperm 1: a POU-domain gene transiently expressed immediately before meiosis I in the male germ cell.Proceedings of the National Academy of Sciences, 1993
- Endurance exercise training reduces lactate productionJournal of Applied Physiology, 1986