Literature DB >> 6130705

Role of inorganic electrolytes in bile acid-independent canalicular bile formation.

M S Anwer, D Hegner.   

Abstract

Ion-replacement studies were carried out in the isolated perfused rat liver to obtain insight into the role played by inorganic electrolytes in bile acid-independent canalicular bile flow (BAICF). The BAICF decreased significantly when Na+ (146 mM) was replaced by 120 mM K+, Rb+, Cs+, or choline and when Cl- (127 mM) was replaced by 120 mM acetate or isethionate; there was no reduction in BAICF when Na+ was replaced by Li+ (146 mM) and Cl- by NO-3. K+, Rb+, and Cs+, however, also caused a simultaneous decline in the perfusion rate. The BAICF decreased by 50% when HCO-3 was replaced by equimolar tricine; under this condition replacement of Cl- by NO-3, but not Na+ by Li+, decreased BAICF by 45%. Thus the hepatic transport of Cl- cannot be explained by simple diffusion only, and a special mechanism, probably Na+-coupled Cl- transport, may contribute about 30% of the BAICF. With Li+ replacing Na+ in the medium, the intracellular concentration of Li+ in isolated rat hepatocytes was less than that calculated for electrochemical equilibrium and was increased by 2 mM KCN, indicating active extrusion of this ion. Li+ was unable to activate Mg2+-ATPase of isolated rat liver plasma membranes, and 1 mM ouabain did not affect the Li+ distribution. These results suggest the potential importance of ion pumps other than Na+-K+-ATPase in BAICF.

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Year:  1983        PMID: 6130705     DOI: 10.1152/ajpgi.1983.244.2.G116

Source DB:  PubMed          Journal:  Am J Physiol        ISSN: 0002-9513


  8 in total

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3.  Cell membrane and transepithelial voltages and resistances in isolated rat hepatocyte couplets.

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

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5.  Evidence for carrier-mediated chloride/bicarbonate exchange in canalicular rat liver plasma membrane vesicles.

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Authors:  E L Renner; J R Lake; B F Scharschmidt; B Zimmerli; P J Meier
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7.  Solvent isotope effect on bile formation in the rat.

Authors:  C Elsing; A Hirlinger; E L Renner; B H Lauterburg; P J Meier; J Reichen
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8.  Primary liver cell cultures grown on gas permeable membrane as source for the collection of primary bile.

Authors:  E Petzinger; W Föllmann; H Acker; J Hentschel; K Zierold; R K Kinne
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  8 in total

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