Abstract
This contribution summarizes recent progress in the understanding of the molecular basis of the release of organic osmolytes that occurs when inner medullary cells are confronted with a drop in osmolarity in their environment. For sorbitol release across the basolateral membrane an increase in intracellular calcium seems to be the prominent signal, initiated by G-protein activation, followed by phosphatidylcholine phospholipase activation and generation of arachidonic acid. The increase in betaine permeability is also G-protein dependent but calcium independent, and is restricted to the basal-lateral cell face. Myo-inositol and glycerophosphorylcholine efflux are calcium and G-protein independent and occur both across the apical and basolateral membrane, although to a different extent. Taurine release is also calcium and G-protein independent; a swelling-activated anion channel at the basolateral membrane represents the major efflux pathway.
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CITATION STYLE
Kinne, R. K. H., Boese, S. H., Kinne-Saffran, E., Ruhfus, B., Tinel, H., & Wehner, F. (1996). Osmoregulation in the renal papilla: Membranes, messengers and molecules. In Kidney International (Vol. 49, pp. 1686–1689). Nature Publishing Group. https://doi.org/10.1038/ki.1996.248
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