Abstract
Transport of sodium, chloride, and taurocholate was studied in primary cultures of adult rat hepatocytes incubated in a balanced electrolyte solution containing 150 mM NaCl, various concentrations of taurocholate, and (22)Na, (36)Cl, [(3)H]taurocholate, and 3-O-[(3)H]methyl-D-glucose. Lithium chloride, choline chloride, or Na(2)SO(4) and mannitol were substituted isotonically for NaCl in selected studies. The steady-state intracellular concentrations of exchangeable sodium and chloride averaged 6.5 mM and 30.1 mM, respectively. Ouabain reversibly increased intracellular sodium concentration. Chloride entry rate was about double that of sodium. Unlike sodium entry, chloride entry rate increased nonlinearly with increasing extracellular concentration. Taurocholate entry exhibited both saturable and nonsaturable components; the former accounting for virtually all taurocholate uptake at concentrations comparable to those found in vivo. Taurocholate was actively concentrated by the cultured cells, with the steady-state intracellular-to-extracellular concentration ratio decreasing from over 50 to about 1 as extracellular taurocholate concentration was increased from 10 muM to 4 mM. Both the saturable uptake component and concentrative taurocholate transport were virtually abolished by substitution of choline or lithium for sodium or by addition of ouabain. Taurocholate entry rate first increased in a sigmoid fashion and then decreased as extracellular sodium concentration was increased from 0 to 150 mM. Sodium entry rate increased in the presence of added taurocholate with an average of one sodium ion accompanying each taurocholate molecule into the cell. These findings indicate that sodium and chloride differ strikingly in their mechanism and rate of entry into cultured rat hepatocytes and in their intracellular concentration. Moreover, hepatocytes concentrate taurocholate by a sodium-coupled mechanism with an apparently equimolar transport stoichiometry.
MeSH Terms
Animals
Biological Transport, Active
Cells, Cultured
Chlorides/metabolism
Cholic Acids/metabolism
Kinetics
Liver/metabolism
Rats
Sodium/metabolism
Chemicals
Chlorides
Cholic Acids
Sodium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Scharschmidt B F
Stephens J E
References (29)
29 references, click to expand
-
The physicochemical basis of cholesterol gallstone formation in man.
J Clin Invest. 1968 May;47(5):1043-52
PMID: 5645851
-
THE HEPATIC UPTAKE AND EXCRETION OF SULFOBROMOPHTHALEIN AND BILIRUBIN.
Can Med Assoc J. 1965 Apr 17;92:851-7
PMID: 14282938
-
Determination of extracellular space and intracellular electrolytes in rat liver in vivo.
J Physiol. 1971 Jan;212(1):85-99
PMID: 5545186
-
Canalicular bile formation in the isolated perfused rat liver.
Am J Physiol. 1971 Oct;221(4):1156-63
PMID: 4255749
-
Ionic fluxes and permeabilities of cell membranes in rat liver.
J Physiol. 1972 Jun;223(2):279-95
PMID: 5039275
-
Parenchymal cells from adult rat liver in nonproliferating monolayer culture. I. Functional studies.
J Cell Biol. 1973 Dec;59(3):722-34
PMID: 4357460
-
Kinetics of taurocholate uptake by the perfused rat liver.
Gastroenterology. 1975 Jan;68(1):132-6
PMID: 1090476
-
Hepatocellular uptake of taurocholate in the dog.
J Clin Invest. 1975 Feb;55(2):419-26
PMID: 1127108
-
Properties of (Na+ plus K+)-activated ATPase in rat liver plasma membranes enriched with bile canaliculi.
Biochim Biophys Acta. 1975 Aug 5;401(1):59-72
PMID: 238659
-
Uptake of taurocholic acid into isolated rat-liver cells.
Eur J Biochem. 1975 Jul 15;55(3):617-23
PMID: 240701
-
The intermicellar bile salt concentration in equilibrium with the mixed-micelles of human bile.
Biochim Biophys Acta. 1975 Aug 25;398(2):275-86
PMID: 1182138
-
Sodium chloride transport by rabbit gallbladder. Direct evidence for a coupled NaCl influx process.
J Gen Physiol. 1975 Jun;65(6):769-95
PMID: 172595
-
A method using 3-O-methyl-D-glucose and phloretin for the determination of intracellular water space of cells in monolayer culture.
Anal Biochem. 1975 Oct;68(2):537-44
PMID: 1200353
-
Ouabain-mediated sodium uptake and bile formation by isolated perfused rat liver.
Am J Physiol. 1976 Apr;230(4):876-85
PMID: 1267018
-
Study of hepatocyte function in cell culture.
Prog Liver Dis. 1976;5:69-82
PMID: 775562
-
Investigations on the sodium dependence of bile acid fluxes in the isolated perfused rat liver.
Biochim Biophys Acta. 1976 Aug 4;443(1):81-91
PMID: 133726
-
Uptake of bile acids by perfused rat liver.
Am J Physiol. 1976 Sep;231(3):734-42
PMID: 788526
-
Mechanisms of hepatic bile formation.
Annu Rev Physiol. 1977;39:323-47
PMID: 192137
-
Bile acid concentrations in systemic and portal serum in presumably normal man and in cholestatic and cirrhotic conditions.
Scand J Gastroenterol. 1977;12(4):395-400
PMID: 560715
-
Effect of Na on bile acid uptake by isolated rat hepatocytes. Evidence for a heterogeneous system.
Hoppe Seylers Z Physiol Chem. 1978 Feb;359(2):181-92
PMID: 649053
-
Taurocholate--sodium co-transport by brush-border membrane vesicles isolated from rat ileum.
Biochem J. 1978 Sep 15;174(3):951-8
PMID: 581553
-
Cell membrane potential and resistance in liver.
J Physiol. 1978 Nov;284:105-26
PMID: 731453
-
Hepatic extraction of bile salts in conscious dogs.
Am J Physiol. 1979 Feb;236(2):E191-7
PMID: 420289
-
Validation of a recording spectrophotometric method for measurement of membrane-associated Mg- and NaK-ATPase activity.
J Lab Clin Med. 1979 May;93(5):790-9
PMID: 219124
-
Sodium-coupled chloride transport by epithelial tissues.
Am J Physiol. 1979 Jan;236(1):F1-8
PMID: 219705
-
Effects of anion-transport inhibitors on NaCl reabsorption in the rat superficial proximal convoluted tubule.
J Clin Invest. 1979 Aug;64(2):570-9
PMID: 457869
-
The mechanism of Na+-dependent D-glucose transport.
J Biol Chem. 1980 May 25;255(10):4453-62
PMID: 7372586
-
Protein measurement with the Folin phenol reagent.
J Biol Chem. 1951 Nov;193(1):265-75
PMID: 14907713
-
Effects of ouabain and diphenylhydantoin on transmembrane potentials, intracellular electrolytes, and cell pH of rat muscle and liver in vivo.
J Physiol. 1971 Jan;212(1):101-15
PMID: 5545175