Transport of lactate and other monocarboxylates across mammalian plasma membranes
- 1 April 1993
- journal article
- research article
- Published by American Physiological Society in American Journal of Physiology-Cell Physiology
- Vol. 264 (4) , C761-C782
- https://doi.org/10.1152/ajpcell.1993.264.4.c761
Abstract
Transport of L-lactate across the plasma membrane is of considerable importance to almost all mammalian cells. In most cells a specific H(+)-monocarboxylate cotransporter is largely responsible for this process; the capacity of this carrier is usually very high, to support the high rates of production or utilization of L-lactate. The best characterized H(+)-monocarboxylate transporter is that of the erythrocyte membrane, which transports L-lactate and a wide range of other aliphatic monocarboxylates, including pyruvate and the ketone bodies acetoacetate and beta-hydroxybutyrate. This carrier is inhibited by alpha-cyanocinnamate derivatives and some stilbene disulfonates and has been identified as a protein of 35-50 kDa on the basis of purification and specific labeling experiments. Other cells possess similar alpha-cyanocinnamate-sensitive H(+)-linked monocarboxylate transporters, but in some cases there are significant differences in the properties of these systems, sufficient to suggest the existence of a family of such carriers. In particular, cardiac muscle and tumor cells have transporters that differ in their Km values for certain substrates (including stereoselectivity for L- over D-lactate) and in their sensitivity to inhibitors. Mitochondria, bacteria, and yeast also possess H(+)-monocarboxylate transporters that share some properties in common with those in the mammalian plasma membrane but are adapted to their specific roles. However, there are distinct Na(+)-monocarboxylate cotransporters on the luminal surface of intestinal and kidney epithelia, which enable active uptake of lactate, pyruvate, and ketone bodies in these tissues. This article reviews the properties of these transport systems and their role in mammalian metabolism.Keywords
This publication has 21 references indexed in Scilit:
- Lactate transport in skeletal muscle cells: uptake in L6 myoblastsActa Physiologica Scandinavica, 1991
- Regulation of lactate metabolism in vivoDiabetes/Metabolism Research and Reviews, 1989
- Plasma membrane potential of Lettré cells does not depend on cation gradients but on pumpsThe Journal of Membrane Biology, 1984
- 31P nuclear magnetic resonance study of the recovery characteristics of high energy phosphate compounds and intracellular pH after global ischaemia in the perfused guinea-pig heartJournal of Molecular and Cellular Cardiology, 1983
- Untersuchung von Flußgeschwindigkeiten in der isolierten perfundierten Rattenleber durch Pulsmarkierung mit radioaktiven Substraten und mathematischer Analyse der AuswaschkinetikenHoppe-Seyler´s Zeitschrift Für Physiologische Chemie, 1980
- KINETICS OF BLOOD‐BRAIN BARRIER TRANSPORT OF PYRUVATE, LACTATE AND GLUCOSE IN SUCKLING, WEANLING AND ADULT RATSJournal of Neurochemistry, 1979
- The anion transport system of the red blood cell The role of membrane protein evaluated by the use of ‘probes’Biochimica et Biophysica Acta (BBA) - Reviews on Biomembranes, 1978
- Characterization of β-hydroxybutyrate transport in rat erythrocytes and thymocytesBiochimica et Biophysica Acta (BBA) - Biomembranes, 1978
- The movement of monocarboxylic acids across phospholipid membranes: evidence for an exchange diffusion between pyruvate and other monocarboxylate ionsBiochimica et Biophysica Acta (BBA) - Biomembranes, 1974
- Inhibition of lactate dehydrogenase by high concentrations of pyruvate: The nature and removal of the inhibitorFEBS Letters, 1969