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Citations to this article

Ursodeoxycholate stimulates Na+-H+ exchange in rat liver basolateral plasma membrane vesicles.
R H Moseley, … , D J Smith, J L Boyer
R H Moseley, … , D J Smith, J L Boyer
Published September 1, 1987
Citation Information: J Clin Invest. 1987;80(3):684-690. https://doi.org/10.1172/JCI113122.
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Research Article

Ursodeoxycholate stimulates Na+-H+ exchange in rat liver basolateral plasma membrane vesicles.

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Abstract

Na+:H+ and Cl-:HCO3- exchange are localized, respectively, to basolateral (blLPM) and canalicular (cLPM) rat liver plasma membranes. To determine whether these exchangers play a role in bile formation, we examined the effect of a choleretic agent, ursodeoxycholate (UDCA), on these exchange mechanisms. 22Na (1 mM) and 36Cl (5 mM) uptake was determined using outwardly directed H+ and HCO3- gradients, respectively. Preincubation of blLPM vesicles with UDCA (0-500 microM) resulted in a concentration-dependent increase in initial rates of amiloride-sensitive pH-driven Na+ uptake, with a maximal effect at 200 microM. UDCA (200 microM) increased Vmax from 23 +/- 2 (control) to 37 +/- 7 nmol/min per mg protein; apparent Km for Na+ was unchanged. Preincubation with tauroursodeoxycholate (200 microM), taurocholate (10-200 microM) or cholate, chenodeoxycholate, or deoxycholate (200 microM) had no effect on pH-driven Na+ uptake. UDCA (200 microM) had no effect on either membrane lipid fluidity, assessed by steady-state fluorescence polarization using the probes 1,6-diphenyl-1,3,5-hexatriene, 12-(9-anthroyloxy) stearic acid, and 2-(9-anthroyloxy) stearic acid (2-AS), or Na+,K+-ATPase activity in blLPM vesicles. In cLPM vesicles, UDCA (0-500 microM) had no stimulatory effect on initial rates of HCO3(-)-driven Cl- uptake. Enhanced basolateral Na+:H+ exchange activity, leading to intracellular HCO3- concentrations above equilibrium, may account for the bicarbonate-rich choleresis after UDCA infusion.

Authors

R H Moseley, N Ballatori, D J Smith, J L Boyer

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Total citations by year

Year: 2009 2000 1997 1996 1994 1992 1991 1990 1989 1988 Total
Citations: 1 1 1 2 2 2 4 5 1 2 21
Citation information
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Citations to this article (21)

Title and authors Publication Year
Regulation of the proprotein convertase subtilisin/kexin type 9 in intestinal epithelial cells
F Leblond, NG Seidah, LP Précourt, E Delvin, M Dominguez, E Levy
AJP Gastrointestinal and Liver Physiology 2009
Comparison of the effects of bile acids on cell viability and DNA synthesis by rat hepatocytes in primary culture
M C Martinez-Diez, M A Serrano, M J Monte, J J Marin
Biochimica et Biophysica Acta 2000
Bile Acid Therapy in Pediatric Hepatobiliary Disease: The Role of Ursodeoxycholic Acid
WF Balistreri
Journal of Pediatric Gastroenterology & Nutrition 1997
Evidence for dual effect of bile acids on thymidine anabolism and catabolism by the regenerating rat liver
GR Villanueva, MJ Monte, ER Barbero, MA Serrano, JJ Marin
Biochimica et Biophysica Acta (BBA) - General Subjects 1996
Role of rate-limiting enzymes of nucleotide metabolism in taurocholate-induced DNA synthesis inhibition
MJ Monte, ER Barbero, GR Villanueva, MA Serrano, JJ Marin
Journal of Hepatology 1996
Ursodeoxycholate-induced hypercholeresis in cirrhotic rats: Further evidence for cholehepatic shunting
C Elsing, H Sägesser, JÜ Reichen
Hepatology 1994
Effect of ursodeoxycholic acid on intracellular pH in a bile duct epithelium-like cell line
M Strazzabosco, C Poci, C Spirlí, L Sartori, A Knuth, G Crepaldi
Hepatology 1994
Cell volume and bile acid excretion
D Häussinger, C Hallbrucker, N Saha, F Lang, W Gerok
Biochemical Journal 1992
Mechanism of bile acid-induced HCO3−-rich hypercholeresis
MS Anwer
Journal of Hepatology 1992
Mechanisms and regulation of bile secretion
MH Nathanson, JL Boyer
Hepatology 1991
Mechanism of Ursodeoxycholic Acid- and Canrenoate-Induced Biliary Bicarbonate Secretion and the Effect on Glucose- and Amino Acid-Induced Cholestasis
E Omland, Ø Mathisen
Scandinavian Journal of Gastroenterology 1991
Effect of Taurine on Total Parenteral Nutrition-Associated Cholestasis
F Guertin, CC Roy, G Lepage, A Perea, R Giguère, I Yousef, B Tuchweber
JPEN. Journal of parenteral and enteral nutrition 1991
The Carbonic Anhydrases
SJ Dodgson, RE Tashian, G Gros, ND Carter
1991
Hypercholeretic bile acids: A clue to the mechanism?
S Erlinger
Hepatology 1990
Characterization of basolateral membrane Na/H antiport in rat jejunum
MN Orsenigo, M Tosco, S Zoppi, A Faelli
Biochimica et Biophysica Acta (BBA) - Biomembranes 1990
Bicarbonate stimulation of Na+ transport in liver basolateral plasma membrane vesicles requires the presence of a transmembrane pH gradient
A Felipe, SK Moule, JD McGivan
Biochimica et Biophysica Acta (BBA) - Biomembranes 1990
The ursodeoxycholate dose-dependent formation of ursodeoxycholate-glucuronide in the rat and the choleretic potencies
H Takikawa, N Sano, T Narita, M Yamanaka
Hepatology 1990
Regulation of the plasma membrane potential in hepatocytes — mechanism and physiological significance
SK Moule, JD McGivan
Biochimica et Biophysica Acta (BBA) - Reviews on Biomembranes 1990
Hepatocellular bile acid transport and ursodeoxycholic acid hypercholeresis
BF Scharschmidt, JR Lake
Digestive Diseases and Sciences 1989
Na+/H+ exchange: What, where and why?
RW van Dyke, HE Ives
Hepatology 1988
Importance of carbonic anhydrase for canalicular and ductular choleresis in the pig
T Buanes, T Grotmol, T Veel, T Landsverk, Y Ridderstråle, MG RvEDER
Acta Physiologica Scandinavica 1988

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