Abstract
The ion transport mechanism that regulates intracellular pH (pHi) in giant barnacle muscle fibers was studied by measuring pHi and unidirectional Na+ fluxes in internally dialyzed fibers. The overall process normally results in a net acid extrusion from the cell, presumably by a membrane transport mechanism that exchanges external Na+ and HCO−3 for internal Cl− and possibly H+. However, we found that net transport can be reversed either by lowering [HCO3−]o and pH0 or by reducing [Na+]0. This reversal (acid uptake) required external Cl−, was stimulated by raising [Na+]i, and was blocked by SITS. When the transporter was operating in the net forward direction (acid extrusion), we found a unidirectional Na+ influx of ~60 pmol. cm-2. s-1, which required external HCO3− and internal Cl− and was stimulated by cyclic AMP and blocked by SITS or DIDS. These properties of the Na+ influx are all shared with the net acid extrusion process. We also found that under conditions of net forward transport, the pHiregulating system mediated a unidirectional Na+ efflux, which was significantly smaller than the simultaneous Na+ influx. These data are consistent with a reversible transport mechanism which, even when operating in the net forward direction, mediates a small amount of reversed transport. We also found that the ouabain-sensitive Na’ efflux was sharply inhibited by acidic pHi, being totally absent at pHi values below ~6.8. © 1983, Rockefeller University Press., All rights reserved.
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CITATION STYLE
Russell, J. M., Boron, W. F., & Brodwick, M. S. (1983). Intracellular pH and Na fluxes in barnacle muscle with evidence for reversal of theionic mechanism of intra cellular pH regulation. Journal of General Physiology, 82(1), 47–78. https://doi.org/10.1085/jgp.82.1.47
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