Intracellular chloride activity in intact rat liver: relationship to membrane potential and bile flow
- 1 May 1987
- journal article
- research article
- Published by American Physiological Society in American Journal of Physiology-Gastrointestinal and Liver Physiology
- Vol. 252 (5), G699-G706
- https://doi.org/10.1152/ajpgi.1987.252.5.g699
Abstract
Active chloride transport has been described in a variety of epithelia, and intracellular chloride activity (aiCl) in these tissues is generally elevated twofold or more above the level predicted for passive diffusion. To determine whether active chloride transport might contribute to canalicular bile formation, we have used conventional and Cl- -selective microelectrodes to measure aiCl of rat hepatocytes in vivo under a variety of conditions. Under basal conditions, the membrane potential difference averaged -33.2 +/- 3.5 mV (means +/- SD) in 29 animals, and the ratio (R) of observed aiCl (24.8 mM) to that expected for passive distribution at this membrane potential (22.6 mM) was 1.10 +/- 0.08, a value slightly but significantly greater than that predicted for passive distribution. Infusion of alanine (45-mumol bolus, 10.8-mumol/min infusion) in 5 animals hyperpolarized the membrane potential to -43.6 +/- 4.0 mV over 10-15 min and resulted in a significant fall in aiCl to 15.1 +/- 4.8 mM but with no change in R. Infusion of theophylline (577 nmol/min), taurocholate (3-mumol bolus, 810-nmol/min infusion), and ursodeoxycholic acid (4-mumol bolus, 2.13-mumol/min infusion) into 5 animals each increased bile flow by 6.1, 34.1, and 96.8%, respectively, compared with saline-infused controls but did not alter membrane potential or chloride distribution. These observations indicate that aiCl is close to the level predicted for passive distribution under basal conditions, after hyperpolarization of the membrane potential by alanine, and after stimulation of bile flow by a variety of choleretics. By analogy with Cl- -secreting epithelia, it appears unlikely that active chloride transport across the basolateral membrane contributes significantly to canalicular bile formation by the hepatocyte.This publication has 16 references indexed in Scilit:
- Chloride transport by intact rat liver and cultured rat hepatocytesAmerican Journal of Physiology-Gastrointestinal and Liver Physiology, 1982
- Transport of sodium, chloride, and taurocholate by cultured rat hepatocytesProceedings of the National Academy of Sciences, 1981
- Hypercholeresis induced by ursodeoxycholic acid and 7-ketolithocholic acid in the rat: Possible role of bicarbonate transportGastroenterology, 1980
- Bicarbonate-dependent chloride absorption in small intestine: Ion fluxes and intracellular chloride activitiesThe Journal of Membrane Biology, 1980
- Energization of alanine transport in isolated rat hepatocytes. Electrogenic Na+-alanine co-transport leading to increased K+ permeability.Journal of Biological Chemistry, 1980
- Intracellular chloride activities and active chloride absorption in the intestinal epithelium of the winter flounderThe Journal of Membrane Biology, 1979
- Sodium-coupled chloride transport by epithelial tissuesAmerican Journal of Physiology-Renal Physiology, 1979
- Cell membrane potential and resistance in liver.The Journal of Physiology, 1978
- Intracellular chloride activities in rabbit gallbladder: Direct evidence for the role of the sodium-gradient in energizing “Uphill” chloride transportThe Journal of Membrane Biology, 1978
- Evaluation of fluorimetrically estimated serum bile acid in liver diseaseClinica Chimica Acta; International Journal of Clinical Chemistry, 1977