Effect of electroneutral luminal and basolateral lactate transport on intracellular pH in salamander proximal tubules.
Open Access
- 1 December 1987
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 90 (6) , 799-831
- https://doi.org/10.1085/jgp.90.6.799
Abstract
We used microelectrodes to examine the effects of organic substrates, particularly lactate (Lac-), on the intracellular pH (pHi) and basolateral membrane potential (Vbl) in isolated, perfused proximal tubules of the tiger salamander. Exposure of the luminal and basolateral membranes to 3.6 mM Lac- caused pHi to increase by .apprx. 0.2, opposite to the decrease expected from nonionic diffusion of lactic acid (HLac) into the cell. Addition of Lac- to only the lumen also caused alkalinization, but only if Na+ was present. This alkalinization was not accompanied by immediate Vbl changes, which suggests that it involves luminal, electroneutral Na/Lac cotransport. Addition of Lac- to only the basolateral solution caused pHi to decrease by .apprx. 0.08. The initial rate of this acidification was a saturable function of [Lac-], was not affected by removal of Na+, and was reversibly reduced by .alpha.-cyano-4-hydroxycinnamate (CHC). Thus, the pHi decrease induced by basolateral Lac- appears to be due to the basolateral entry of H+ and Lac-, mediated by an H/Lac cotransporter (or a Lac-base exchanger). Our data suggest that this transporter is electroneutral and is not present at the luminal membrane. A key question is how the addition of Lac- to the lumen increases pHi. We found that inhibition of basolateral H/Lac cotransport by basolateral CHC reduced the initial rate of pHi increase caused by luminal Lac-. On the other hand, luminal CHC had no effect on the luminal Lac--induced alkalinization. These data suggest that when Lac- is present in the lumen, it enters the cell from the lumen via electroneutral Na/Lac cotransport and then exists with H+ across the basolateral membrane via electroneutral H/Lac cotransport. The net effect is transepithelial Lac- reabsportion, basolateral acid extrusion, and intracellular alkalinization.Keywords
This publication has 40 references indexed in Scilit:
- The mechanism of Na+-L-lactate cotransport by brush-border membrane vesicles from horse kidney. Analysis by isotopic exchange kinetics of a sequential model and stoichiometry.Journal of Biological Chemistry, 1983
- Specificity of the Na+-dependent monocarboxylic acid transport pathway in rabbit renal brush border membranesThe Journal of Membrane Biology, 1983
- Influence of organic acids on intracellular pHAmerican Journal of Physiology-Cell Physiology, 1983
- Specificity and modes of the anion exchanger in dog renal microvillus membranesAmerican Journal of Physiology-Renal Physiology, 1983
- Intracellular pH regulation in the renal proximal tubule of the salamander. Na-H exchange.The Journal of general physiology, 1983
- Monocarboxylate transport in erythrocytesThe Journal of Membrane Biology, 1982
- Asymmetry in the transport of lactate by basolateral and brush border membranes of rat kidney cortexPflügers Archiv - European Journal of Physiology, 1982
- Discrimination of three parallel pathways of lactate transport in the human erythrocyte membrane by inhibitors and kinetic propertiesBiochimica et Biophysica Acta (BBA) - Biomembranes, 1982
- Reabsorption of monocarboxylic acids in the proximal tubule of the rat kidneyPflügers Archiv - European Journal of Physiology, 1982
- Neutral carrier based hydrogen ion selective microelectrode for extra- and intracellular studiesAnalytical Chemistry, 1981