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- W2129606590 abstract "HepatologyVolume 21, Issue 4 p. 1174-1189 Special ArticleFree Access New insights into the mechanism of bile acid—induced biliary lipid secretion Henkjan J. Verkade MD, PhD, Corresponding Author Henkjan J. Verkade MD, PhD Department of Pediatrics, University of Groningen, Groningen, the NetherlandsDepartment of Pediatrics, University of Groningen, Academic Hospital, Oostersingel 59, 9713 EZ Groningen, the Netherlands===Search for more papers by this authorRoel J. Vonk, Roel J. Vonk Department of Pediatrics, University of Groningen, Groningen, the NetherlandsSearch for more papers by this authorFolkert Kuipers, Folkert Kuipers Department of Pediatrics, University of Groningen, Groningen, the NetherlandsSearch for more papers by this author Henkjan J. Verkade MD, PhD, Corresponding Author Henkjan J. Verkade MD, PhD Department of Pediatrics, University of Groningen, Groningen, the NetherlandsDepartment of Pediatrics, University of Groningen, Academic Hospital, Oostersingel 59, 9713 EZ Groningen, the Netherlands===Search for more papers by this authorRoel J. Vonk, Roel J. Vonk Department of Pediatrics, University of Groningen, Groningen, the NetherlandsSearch for more papers by this authorFolkert Kuipers, Folkert Kuipers Department of Pediatrics, University of Groningen, Groningen, the NetherlandsSearch for more papers by this author First published: April 1995 https://doi.org/10.1002/hep.1840210442Citations: 17AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat References 1 Bartles JR, Hubbard AL. Biogenesis of the rat hepatocyte plasma membrane. Methods Enzymol 1990; 191: 825– 841. 2 Boyer JL, Graf J, Meier PJ. Hepatic transport systems regulating pHi. cell volume, and bile secretion. Annu Rev Physiol 1992; 54: 415– 438. 3 Meier PJ. Transport polarity of hepatocytes. Semin Liver Dis 1988; 8: 293– 307. 4 Nathanson MH, Boyer JL. Mechanisms and regulation of bile secretion. Hepatology 1991; 14: 551– 566. 5 Simons K, Van Meer G. Lipid sorting in epithelial cells. Biochemistry 1988; 27: 6197– 6202. 6 Dashti N. Synthesis and secretion of nascent lipoprotein particles. Prog Lipid Res 1991; 30: 219– 230. 7 Tall AR. Plasma high density lipoproteins. Metabolism and relationship to atherogenesis. J Clin Invest 1990; 86: 379– 384. 8 Vance JE, Vance DE. Lipoprotein assembly and secretion by hepatocytes. Annu Rev Nutr 1990; 10: 337– 356. 9 Vance JE, Vance DE. The assembly of lipids into lipoproteins during secretion. Experientia 1990; 560– 569. 10 Carey MC, Hernell O. Digestion and absorption of fat. Semin Gastroint Dis 1992; 3: 189– 208. 11 Hernell O, Staggers JE, Carey MC. Physical-chemical behaviour of dietary and biliary lipids during intestinal digestion and absorption. 2. Phase analysis and aggregation states of luminal lipids during duodenal fat digestion in healthy adult human beings. Biochemistry 1990; 29: 2041– 2056. 12 Staggers JE, Hernell O, Stafford RJ, Carey MC. Physical-chemical behaviour of dietary and biliary lipids during intestinal digestion and absorption. 1. Phase behaviour and aggregation states of model lipid systems patterned after aqueous duodenal contents of healthy adult human beings. Biochemistry 1990; 29: 2028– 2040. 13 Nakano A, Tietz PS, LaRusso NF. Circadian rhythms of biliary protein and lipid excretion in rats. Am J Physiol 1990; 258: G653– G659. 14 Kawamoto T, Mao SJT, LaRusso NF. Biliary excretion of apolipoprotein B by the isolated perfused rat liver. Relationship to receptor mediated-uptake of human low-density lipoprotein and biliary lipid secretion. Gastroenterology 1987; 92: 1236– 1242. 15 Rusiñol A, Verkade HJ, Vance JE. Assembly of rat hepatic very low density lipoproteins in the endoplasmic reticulum. J Biol Chem 1993; 268: 3555– 3562. 16 Hamilton RL, Moorehouse A, Havel RJ. Isolation and properties of nascent lipoproteins from highly purified rat hepatocytic Golgi fractions. J Lipid Res 1991; 32: 529– 543. 17 Arias IM, Che M, Gatmaitan Z, Leveille C, Nishida T, St. Pierre M. The biology of the bile canaliculus, 1993. Hepatology 1993; 17: 318– 329. 18 Zimniak P, Awashti YC. ATP-dependent transport systems for organic anions. Hepatology 1993; 17: 330– 339. 19 Schiff M. Gallenbildung, abhängig von der Aufsauging der Gallenstoffe. Pflüger Arch Ges Physiol 1870; 3: 598– 613. 20 Foster MG, Hooper CW, Whipple CH. Metabolism of bile acids: III. Administration by stomach of bile, bile acids, taurine, and cholic acid to show the influence upon bile acid elimination. J Biol Chem 1919; 38: 379– 392. 21 Dowling RH, Mack E, Small DM. Biliary lipid secretion and bile composition after acute and chronic interruption of the enterohepatic circulation in the Rhesus monkey. IV. Primate biliary physiology. J Clin Invest 1971; 50: 1917– 1926. 22 Erlinger S, Dhumeaux D. Mechanisms and control of secretion of bile water and electrolytes. Gastroenterology 1974; 66: 281– 304. 23 Gurantz D, Hofmann AF. Influence of bile acid structure on bile flow and biliary lipid secretion in the hamster. Am J Physiol 1984; 247: G736– G748. 24 Kuroki S, Mosbach EH, Stenger RJ, Cohen BI, McSherry CK. Comparative effects of deoxycholateand 7-methyl-deoxycholate in the hamster. Hepatology 1987; 7: 229– 234. 25 Hofmann AF. Bile acid secretion, bile flow and biliary lipid secretion in humans. Hepatology 1990; 12 (suppl): 17S– 25S. 26 Dumont M, Erlinger S, Uchman S. Hypercholeresis induced by ursodeoxycholic acid and 7-ketolithocholic acid in the rat possible role of bicarbonate transport. Gastroenterology 1980; 79: 82– 89. 27 Yoon YB, Hagey LR, Hofmann AF, Gurantz D, Michelotti EL, Steinbach JH. Effect of side-chain shortening on the physiological properties of bile acids: hepatic transport and effect on biliary secretion of 23-nor-ursodeoxycholic acid in rodents. Gastroenterology 1986; 90: 837– 852. 28 Wheeler HO. Secretion of bile acids by the liver and their role in the formation of hepatic bile. Arch Intern Med 1972; 30: 533– 541. 29 Scherstén T, Nilsson S, Chalin E, Filipson M, Brodin-Persson G. Relationship between the biliary excretion of bile acids and the excretion of water, lecithin, and cholesterol in man. Eur J Clin Invest 1971; 1: 242– 247. 30 Tavoloni N, Sarkozi L, Jones MJT. Choleretic effects of differently structured bile acids in the guinea pig. Proc Soc Exp Biol Med 178: 60– 67, 1985. 31 Klaassen CD, Watkins JB, III. Mechanisms of bile formation, hepatic uptake, and biliary excretion. Pharm Rev 1984; 36: 1– 67. 32 Eriksson S. Biliary excretion of bile acids and cholesterol in bile fistula rats. Proc Soc Exp Biol Med 1957; 94: 578– 582. 33 Kay RE, Entenman C. Stimulation of taurocholic acid systhesis and biliary excretion of lipids. Am J Physiol 1961; 200: 855– 859. 34 Danzinger RG, Nakagaki M, Hofmann AF, Ljungwe EB. Differing effects of hydroxy-7-oxotaurine-conjugated bile acids on bile flow and biliary lipid secretion in dogs. Am J Physiol 1984; 246: G166– G172. 35 Wagner CI, Trotman BW, Soloway RD. Kinetic analysis of biliary lipid excretion in man and dog. J Clin Invest 1976; 57: 473– 477. 36 Barnwell SG, Tuchweber B, Yousef IM. Biliary lipid secretion in the rat during infusion of increasing doses of unconjugated bileacids. Biochim Biophys Acta 1987; 922: 221– 233. 37 Yousef IM, Barnwell S, Gratton F, Tuchweber B, Weber AM, Roy CC. Liver cell membrane solubilization may control maximum secretory rate of cholic acid in the rat. Am J Physiol 1987; 252: G84– G91. 38 Borgström B, Barrowman J, Krabisch L, Lindström M, Lillienau J. Effects of cholic acid, 7β-hydroxy- and 12β-hydroxy-isocholic acid on bile flow, lipid secretion and bile acid synthesis in the rat. Scand J Clin Lab Invest 1986; 46: 167– 175. 39 Coleman R, Rahman K. Lipid flow in bile formation. Biochim Biophys Acta 1992; 1125: 113– 133. 40 Loria P, Carulli N, Medici G, Menozzi D, Salvioli G, Bertolotti M, Montanari M. Effect of ursocholic acid on bile lipid secretion and composition. Gastroenterology 1986; 90: 865– 874. 41 Parquet M, Legrand-Defretin V, Riottot M, Karpouza A, Lutton C. Metabolism and effects on biliary lipid secretion of murocholic acid in the hamster. J Hepatol 1990; 11: 111– 119. 42 Apstein MD. Inhibition of biliary phospholipid and cholesterol secretion by bilirubin in the Sprague-Dawley and Gunn rat. Gastroenterology 1984; 87: 634– 638. 43 Berr F, Stellaard F, Goetz A, Hammer C, Paumgartner G. Ethinylestradiol stimulates a biliary cholesterol-phospholipid cosecretion mechanism in the hamster. Hepatology 1988; 8: 619– 624. 44 Cayen MN, Dvornik D. Effect of diosgenin on lipid metabolism in rats. J Lipid Res 1979; 20: 162– 174. 45 Kitani K, Kanai S, Ohta M, Sato Y. Differing transport maxima values for taurine-conjugated bilesalts in rats and hamsters. Am J Physiol 1986; 251: G852– G858. 46 Ulloa N, Nervi F. Mechanism and kinetic characteristics of the uncoupling by plant steroids of biliary cholesterol from bile salt output. Biochim Biophys Acta 1985; 837: 181– 189. 47 Kuipers F, Derksen JTP, Gerding A, Scherphof GL, Vonk RJ. Biliary lipid secretion in the rat. The uncoupling of biliary cholesterol and phospholipid secretion from bile acid secretion by sulfated glycolithocholicacid. Biochim Biophys Acta 1987; 922: 136– 144. 48 Takikawa H, Sano N, Minagawa K, Yamanaka M. Effects of ursodeoxycholate, its glucuronide and disulfate and beta-muricholate on biliary bicarbonate concentration and biliary lipid excretion. J Hepatol 1992; 15: 77– 84. 49 Yousef IM, Barnwell S, Tuchweber B, Weber AM, Roy CC. Effect of complete sulfation of bileacids on bile formation in rats. Hepatology 1987; 7: 535– 542. 50 Yousef IM, Mignault D, Tuchweber B. Effect of complete sulfation of bile acids on bile formation: role of conjugation and number of sulfate groups. Hepatology 1992; 15: 438– 445. 51 Yousef IM, Tuchweber B, Mignault D, Weber AM. Effect of coinfusion of cholic acid and sulfated cholic acid on bile formation in rats. Am J Physiol 1989; 256: G62– G66. 52 Aoyoma N, Zeniya M, Arashiyama Y, Hihara M, Kameda H. The effect of bilirubin on biliary lipid secretion: analysis by horseradish peroxidase associated intrahepatic vesicular transport system. Gastroenterol Jpn 1988; 23: 652– 657. 53 Apstein MD, Robins SJ. Effect of organic anions on biliary lipids in the rat. Gastroenterology 1982; 83: 1120– 1126. 54 Apstein MD, Russo AR. Ampicillin inhibits biliary cholesterol secretion. Dig Dis Sci 1985; 30: 253– 256. 55 Arvidsson A, Leijd B, Nord CE, Angelin B. Interindividual variability in biliary excretion of ceftriaxone: effects on biliary lipid metabolism and on intestinal microflora. Eur J Clin Invest 1988; 18: 261– 266. 56 Bellringer ME, Rahman K, Coleman R. Sodium valproate inhibits the movement of secretory vesicles in rat hepatocytes. Biochem J 1988; 249: 513– 519. 57 Cava F, Gonzalez J, Gonzalez-Buitrago JM, Muriel C, Jimenez R. Inhibition of biliary cholesterol and phospholipid secretion by cefmetazole. The role of vesicular transport and of canalicular events. Biochem J 1991; 275: 591– 595. 58 Garcia-Marin JJ, Esteller A. Biliary inter-relationship between phospholipid, bilirubin and taurocholate in the anaesthetized rat. Clin Sci 1984; 67: 499– 504. 59 Gonzalez J, Fernandez C, Marino E, Morales A, Jimenez R. Biliary excretion and choleretic effect of cefmetazole in rats. Antimicrob Agents Chemother 1989; 33: 1970– 1974. 60 Gonzalez J, Pérez-Barriocanal F, Esteller A. Inhibition of biliary phospholipid secretion by bilirubin in partially hepatectomized rats. Exp Pathol 1987; 32: 81– 87. 61 Monte MJ, Cava F, Esteller A, Jimenez R. Inhibition of biliary cholesterol and phospholipid secretion during cyclobutyrol-induced hydrocholeresis. Biochem J 1989; 263: 513– 518. 62 Monte MJ, Parslow RA, Coleman R. Inhibitory action of cyclobutyrol on the secretion of biliary cholesterol and phospholipids. Biochem J 1990; 266: 165– 171. 63 Pattinson NR, Wiilis KE, Chapman BA. Inhibition of biliary phospholipid and cholesterol secretion by cefoperazone. Dig Dis Sci 1987; 32: 615– 619. 64 Shaffer EA, Preshaw RM. Effects of sulfobromophtalein excretion on biliary lipid secretion in humans and dogs. Am J Physiol 1981; 240: G85– G89. 65 Xia Y, Lambert KJ, Schteingart CD, Gu JJ, Hofmann AF. Concentrative biliary secretion ofceftriaxone. Inhibition of lipid secretion and precipitation of calcium ceftriaxone in bile. Gastroenterology 1990; 99: 454– 465. 66 Smit MJ, Temmerman AM, Wolters H, Kuipers F, Beynen AC, Vonk RJ. Dietary fish oil-induced changes in intrahepatic cholesterol transport and bile acid synthesis in rats. J Clin Invest 1991; 88: 943– 951. 67 Smit MJ, Verkade HJ, Havinga R, Vonk RJ, Scherphof GL, In't Veld G, Kuipers F. Dietary fish oil potentiates bile acid-induced cholesterol secretion into bile in rats. J Lipid Res 1994; 35: 301– 310. 68 Kern F, Jr, Eriksson H, Curstedt T, Sjövall J. Effect of ethinylestradiol on biliary excretion of bile acids, phosphatidylcolines, and cholesterol in the bile fistula rat. J Lipid Res 1977; 18: 623– 634. 69 Nervi F, Del Pozo R, Covarrubias C, Ronco B. The effect of progesterone on the regulatory mechanisms of biliary cholesterol secretion in the rat. Hepatology 1983; 3: 360– 367. 70 Gebhard RL, Prigge WF. Thyroid hormone differentially augments biliary sterol secretion in the rat. II. The chronic bile fistula model. J Lipid Res 1992; 33: 1467– 1473. 71 Gebhard RL, Stone BG, Andreini JP, Duane WC, Evans CD, Prigge WF. Thyroid hormone differentially augments biliary sterol secretion in the rat. I. The isolated-perfused liver model. J Lipid Res 1992; 33: 1459– 1466. 72 Smit JJM, Schinkel AH, Ou de Elferink RPJ, Groen AK, Wagenaar E, Van Deemter L. Mol CAAM, et al. Homozygous disruption of the mutine mdr2 P-glycoprotein gene leads to a complete absence of phospholipid from bile and to liver disease. Cell 1993; 75: 451– 462. 73 Aldini R, Roda A, Simoni P, Lenzi P, Roda E. Uptake of bile acids by perfused rat liver: evidence of a structure-activity relationship. Hepatology 1989; 10: 840– 845. 74 Iga T, Klaassen CD. Hepatic extraction of bile acids in the rats. Biochem Pharmacol 1982; 31: 205– 209. 76 Coleman R. Bile salts and biliary lipids. Biochem Soc Trans 1987; 15 (suppl): 68S– 80S. 77 Stolz A, Takikawa H, Ookhtens M, Kaplowitz N. The role of cytoplasmic proteins in hepatic bile acid transport. Annu Rev Physiol 1989; 51: 161– 176. 78 Stolz A, Hammond L, Lou H, Takikawa H, Ronk M, Shively JE. cDNA-cloning and expression of the hyman hepatic bile acid binding protein. A member of the monomeric reductase gene family. J Biol Chem 1993; 268: 10448– 10457. 79 Cohen DE, Leonard MR, Carey MC. Submicellar bile salt concentrations stimulate biliary phosphatidylcholine transfer from model endoplasmic reticulum to canalicular membranes via hepatic PC-transfer protein [Abstract]. Hepatology 1992; 16: 90A. 80 Robins SJ, Fasulo JM, Collins MA, Patton GM. Evidence of separate pathways of newly synthesized and preformed cholesterol into bile. J Biol Chem 1985; 260: 6511– 6513. 81 Carey MC, Mazer NA. Biliary lipid secretion in health and in cholesterol gallstone disease. Hepatology 1984; 4: 31S– 37S. 82 Crawford JM, Berken CA, Gollan JL. Role of the hepatocyte microtubular system in the excretion of bile salts and biliary lipid: implications for intracellular vesicular transport. J Lipid Res 1988; 29: 144– 156. 83 Graham J, Ahmed H, Northfield TC. In: G Paumgartner, A Stichl, W Gerok, eds. Trends in bile acid research. Lancaster: Kluwer Academic Publishers, 1989: 177– 187. 84 Gregory DH, Vlahcevic ZR, Prugh MR, Swell L. Mechanism of secretion of biliary lipids: role of a microtubular system in hepatocellular transport of biliary lipids in the rat. Gastroenterology 1978; 74: 93– 100. 85 Entenman C, Holloway RJ, Albright ML, Leong GF. Bile acids and lipid metabolism. II. Essential role of bile acids in bile phospholipid excretion. Arch Biochem Biophys 1969; 130: 253– 256. 86 Reuben A, Allen RM. Intrahepatic sources of biliary-like micelles. Biochim Biophys Acta 1986; 876: 1– 12. 87 Lamri Y, Roda A, Dumont M, Feldmann G, Erlinger S. Immunoperoxidase localization of bile salts in rat liver cells. Evidence for a role of the Golgi apparatus in bile transport. J Clin Invest 1988; 82: 1173– 1182. 88 Reynier MO, Hashieh IA, Crotte C, Carbuccia N, Richard B, Gérolami A. Monensin action on the Golgi complex in perfused rat liver: evidence against bile salt vesicular transport. Gastroenterology 1992; 102: 2024– 2032. 89 Barnwell SG, Godfrey PP, Lowe PJ, Coleman R. Biliary protein output by isolated perfused rat livers. Effects of bile salts. Biochem J 1993; 210: 549– 557. 90 Barnwell SG, Yousef IM, Tuchweber B. The effect of colchicine on the development of lithocholic acid-induced cholestasis. A study of the role of microtubules in intracellular cholesterol transport. Biochem J 1986; 236: 345– 350. 91 Crawford JM, Gollan JL. Hepatocyte cotransport of taurocholate and bilirubin glucuronides: role of microtubules. Am J Physiol 1988; 255: G121– G131. 92 Dubin M, Maurice M, Feldmann G, Erlinger S. Influence of colchicine and phalloidin on bile secretion and hepatic ultrastructure in the rat. Possible interaction between microtubules and microfilaments. Gastroenterology 1980; 79: 646– 654. 93 Katagiri K, Nakai T, Hoshino M, Hayakawa T, Ohnishi H, Okayama Y, Yamada T, et al. Tauro-β-muricholate preserves choleresis and prevents taurocholate-induced cholestasis in colchicine-treated rat liver. Gastroenterology 1992; 102: 1660– 1667. 94 Nakai T, Katagiri K, Hoskino M, Hayakawa T, Ohiwa T. Microtubule-independent choleresis and anti-cholestatic action of tauroursodeoxycholate in colchicine-treated rat liver. Biochem J 1992; 288: 613– 617. 95 Lowe PJ, Barnwell SG, Coleman R. Rapid kinetic analysis of the bile-salt-dependent secretion of phospholipid, cholesterol and a plasma-membrane enzyme into bile. Biochem J 1984; 222: 631– 637. 96 Rahman K, Coleman R. Biliary lipid secretion and its control. Effect of taurodehydrocholate. Biochem J 1987; 245: 531– 536. 97 Rahman K, Hammond TG, Lowe PJ, Barnwell SG, Clark B, Coleman R. Control of biliary phospholipid secretion. Effect of continuous and discontinuous infusion of taurocholate on biliary phospholipid secretion. Biochem J 1986; 234: 421– 427. 98 Coleman R. Biochemistry of bile secretion. Biochem J 1987; 244: 249– 261. 99 Azhar S, Hwang SF, Reaven E. Effects of antimicrotubule agents on phospholipid metabolism in rat hepatic subcellular membranes. Biochem Pharm 1985; 34: 3153– 3159. 100 Benedetti A, Marucci L, Ferretti G, Curatola G, Jézéquel AM, Orlandi F. Evidence that plasma membrane fluidity of isolated hepatocytes is modified by exposure to microtubule-depolymerizing drug. J Hepatol 1990; 10: 144– 148. 101 Sakisaka S, Oi Cheng N, Boyer JL. Tubulovesicular transcytotic pathway in isolated rat hepatocyte couplets in culture. Effect of colchicine and taurocholate. Gastroenterology 1988; 95: 793– 804. 102 Scapin G, Gordon JI, Sacchettini JC. Refinement of the structure of recombinant rat intestinal fatty acid-binding apoprotein at 1.2-A resolution. J Biol Chem 1992; 267: 4253– 4269. 103 Small DM. The formation of gallstones. Adv Intern Med 1970; 16: 243– 264. 104 Wheeler HO, King KK. Biliary excretion of lecithin and cholesterol in the dog. J Clin Invest 1972; 51: 1337– 1350. 105 Hardison WGM, Apter JT. Micellar theory of biliary cholesterol excretion. Am J Physiol 1972; 222: 61– 67. 106 Yousef IM, Fisher MM. In vitro effect of free bile acids on the bile canalicular membrane phospholipids in the rat. Can J Biochem 1976; 54: 1040– 1046. 107 Graham JM, Northfield TM. Solubilization of lipids from hamster bile canalicular and contiguous membranes and from human erythrocyte membranes by conjugated bile salts. Biochem J 1987; 242: 825– 834. 108 Coleman R, Rahman K, Kan K, Parslow RA. Retrograde intra-biliary injection of amphipathic materials causes phospholipid secretion into bile. Taurocholate causes phosphatidylcholine secretion, 3-[(3-cholamidopropyl)dimethylammoni-o]-propane-1-sulphonate (CHAPS) causes mixed phospholipid secretion. Biochem J 1989; 258: 17– 22. 109 Coleman R, Rahman K, Bellringer ME, Kan K, Hamlin S. Secretion of biliary lipids and its control. In: G Paumgartner, A Stiehl, W Gerok, eds. Trends in bile acid research. Dordrecht: Kluwer Academic Publishers, 1989: 161– 173. 110 Lowe PJ, Barnwell SG, Coleman R. Rapid kinetic analysis of the bile-salt-dependent secretion of phospholipid, cholesterol and a plasma-membrane enzyme into bile. Biochem J 1984; 222: 631– 637. 111 Lanzini A, Northfield TC. Biliary lipid secretion in man. Eur J Clin Invest 1991; 21: 259– 272. 112 Erlinger S, Bienfait D, Poupon D, Bumont M, Duval M. Effect of lysine acetyl salicylate on biliary lipid secretion in dogs. Clin Sci Mol Med 1975; 49: 253– 256. 113 Bellringer ME, Rahman K, Coleman R. Sodium valproate inhibits the movement of secretory vesicles in rat hepatocytes. Biochem J 1988; 249: 513– 519. 114 Bellringer ME, Steele NJ, Rahman K, Coleman R. Ampicillin inhibits the movement of biliary secretory vesicles in rat hepatocytes. Biochem J 1988; 941: 71– 75. 115 Monte MJ, Parslow RA, Coleman R. Inhibitory action of cyclobuterol on the secretion of biliary cholesterol and phospholipids. Biochem J 1990; 266: 165– 171. 116 Monte MJ, Cava F, Esteller A, Jimenez R. Inhibition of biliary cholesterol and phospholipid secretion during cyclobuterol-induced choleresis. Biochem J 1989; 263: 513– 518. 117 Kuipers F, Ensering M, Havinga R, Van der Steen ABM, Hardonk MJ, Fevery J, Vonk RJ. Separate transport systems for biliary secretion of sulfated and unsulfated bile acids in the rat. J Clin Invest 1988; 81: 1593– 1599. 118 Tazuma S, Barnhardt RL, Reeve LE, Tokumo H, Holzbach RT. Biliary secretion of organic anions in the dog: association with defined lipid particles. Am J Physiol 1988; 255: G745– G751. 119 Tazuma S, Holzbach RT. Transport of conjugated bilirubin and other organic anions in bile: relation to biliary lipid structures. Proc Natl Acad Sci U S A 1987; 84: 2052– 2056. 120 Jansen PLM, Peters WH, Lamers WH. Hereditary chronic conjugated hyperbilirubinemia in mutant rats caused by defective hepatic anion transport. Hepatology 1985; 5: 573– 579. 121 Takikawa H, Sano N, Narita T, Uchida Y, Yamanaka M, Horie T, Mikami T. et al. Biliary excretion of bile acid conjugates in a hyperbilirubinemic mutant Sprague-Dawley rat. Hepatology 1991; 14: 352– 360. 122 Fernandez-Checa JC, Takikawa H, Horie T, Ookthens M, Kaplowitz N. Canalicular transport of reduced glutathione in normal and mutant Eisai hyperbilirubinemic rats. J Biol Chem 1992; 267: 1667– 1673. 123 Kitamura T, Jansen P, Hardenbrook C, Kamimoto Y, Gatmaitan Z, Arias IM. Defective ATP-dependent bile canalicular transport of organic anions in mutant (TR-) rats with conjugated hyperbilirubinemia. Proc Natl Acad Sci U S A 1990; 87: 3557– 3561. 124 Kuipers F, Ensering M, Havinga R, Van der Steen ABM, Hardonk MJ, Fevery J, Vonk RJ. Separate transport systems for biliary secretion of sulphated and unsulphated bile acids. In: G Paumgartner, A Stiehl, W Gerok, eds. Trends in bile acid research. Lancaster: Kluwer Academic Publishers, 1989: 143– 152. 125 Nishida T, Hardenbrook C, Gatmaitan Z, Arias IM. ATP-dependent organic anion transport system in normal and TR-rat liver canalicular membranes. Am J Physiol 1992; 262: G629– G635. 126 Ou de Elferink RPJ, Ottenhof R, Liefting W, De Haan J, Jansen PLM. Hepatobiliary transport of glutathione and glutathione conjugate in rats with hereditary hyperbilirubinemia. J Clin Invest 1989; 84: 476– 483. 127 Ou de Elferink RPJ, Ottenhof R, Liefting WGM, Schoemaker B, Groen AK, Jansen PLM. ATP-dependent efflux of GSSG and GS-conjugate from isolated rat hepatocytes. Am J Physiol 1990; 258: G699– G706. 128 Verkade HJ, Wolbers MJ, Havinga R, Uges DRA, Vonk RJ, Kuipers F. The uncoupling of biliary lipid from bile acid secretion by organic anions in the rat. Gastroenterology 1990; 99: 1485– 1492. 129 Verkade HJ, Havinga R, Gerding A, Vonk RJ, Kuipers F. The mechanism of bile acid-induced biliary lipid secretion in the rat. Effect of conjugated bilirubin. Am J Physiol 1993; 264: G462– G469. 130 Heuman DM. Quantitative estimation of the hydrophilic-hydrophobic balance of mixed bile salt solutions. J Lipid Res 1989; 30: 719– 730. 131 Verkade HJ, Wolters H, Gerding A, Havinga R, Fidler V, Vonk RJ, Kuipers F. Mechanism of biliary lipid secretion in the rat. A role for bile acid-independent bile flow? Hepatology 1993; 17: 1074– 1080. 132 Villanueva GR, Herreros M, Perez-Barriocanal F, Bolanos JP, Bravo P, Marin JJG. Enhancement of bile acid-induced biliary lipid secretion by streptozotocin in rats: role of insulin deficiency. J Lab Clin Med 1990; 115: 441– 448. 133 Villanueva GR, Herreros M, Perez-Barriocanal F, Fernandez E, Marin JJG. Effect of acute insulin administration on biliary lipid secretion by the diabetic rat. J Exp Pathol 1990; 71: 89– 94. 134 Graf J. Canalicular bile salt-independent bile formation: concepts and clues from electrolyte transport in rat liver. Am J Physiol 1983; 244: G233– G246. 135 Ballatori N, Truong AT. Relation between biliary glutathione excretion and bile acid-independent bile flow. Am J Physiol 1989; 256: G22– G30. 136 Kuipers F, Havinga R, Bosschieter H, Toorop GP, Hindriks FR, Vonk RJ. Enterohepatic circulation in the rat. Gastroenterology 1985; 88: 403– 411. 137 Ahmed P, Graham J, Dormandy J, Northfield TC. Lipid composition of bile canalicular membrane (BCM) and bile in man [Abstract]. Clin Sci 1987; 72: 32. 138 Angelico M, Alvaro D, Masella R, Ginanni Corradini S, Cantafora A. Transport, utilization and biliary secretion of lysophosphatidylcholine in the rat liver. Biochim Biophys Acta 1987; 905: 91– 99. 139 Evans WH, Kremmer T, Culvenor JG. Role of membranes in bile formation. Comparison of the composition of bile and a liver bile-canalicular plasma-membrane subfraction. Biochem J 1976; 154: 589– 595. 140 Wilson MD, Rudel LL. Review of cholesterol absorption with emphasis on dietary and biliary cholesterol. J Lipid Res 1994; 35: 943– 955. 141 Lopez del Pino VH, LaRusso NF. Dissociation of bile flow and biliary lipid secretion from biliary lysosomal enzyme output in experimental cholestasis. J Lipid Res 1981; 22: 229– 235. 142 Sewell RB, Grinpukel SA, Zinsmeister AR, LaRusso NF. Pharmacologic perturbation of rat liver lysosomes: effects on release of lysosomal enzymes and of lipids into bile. Gastroenterology 1988; 95: 1088– 1098. 143 Hay DW, Cahalane MJ, Timofeyeva N, Carey MC. Molecular species of lecithins in human gall bladder bile. J Lipid Res 1993; 34: 759– 768. 144 Alvaro D, Angelico M, Cantafora A, Di Biase A, Gaeta GB, Ginanni Corradini S, Tripodi MF, et al. Influence of tauroursodeoxycholic and taurodeoxycholic acids on hepatic metabolism and biliary secretion of phosphatidylcho" @default.
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- W2129606590 cites W1483806228 @default.
- W2129606590 cites W1486967891 @default.
- W2129606590 cites W1487490391 @default.
- W2129606590 cites W1490267748 @default.
- W2129606590 cites W1493685170 @default.
- W2129606590 cites W1502624023 @default.
- W2129606590 cites W1512075851 @default.
- W2129606590 cites W1529549178 @default.
- W2129606590 cites W1532193515 @default.
- W2129606590 cites W1536975361 @default.
- W2129606590 cites W154885573 @default.
- W2129606590 cites W1557322059 @default.
- W2129606590 cites W157061808 @default.
- W2129606590 cites W1589288750 @default.
- W2129606590 cites W1589619638 @default.
- W2129606590 cites W1589840812 @default.
- W2129606590 cites W1592695345 @default.
- W2129606590 cites W1655637944 @default.
- W2129606590 cites W165688990 @default.
- W2129606590 cites W1688200792 @default.
- W2129606590 cites W1717245686 @default.
- W2129606590 cites W1764819423 @default.
- W2129606590 cites W1823018609 @default.
- W2129606590 cites W1831319580 @default.
- W2129606590 cites W1833572778 @default.
- W2129606590 cites W1846859736 @default.
- W2129606590 cites W1849989959 @default.
- W2129606590 cites W1863083079 @default.
- W2129606590 cites W1901522159 @default.
- W2129606590 cites W1908879406 @default.
- W2129606590 cites W1923579966 @default.
- W2129606590 cites W1927272368 @default.
- W2129606590 cites W1933334697 @default.
- W2129606590 cites W1938049039 @default.
- W2129606590 cites W1940867966 @default.
- W2129606590 cites W1942277089 @default.
- W2129606590 cites W1942280295 @default.
- W2129606590 cites W1943976550 @default.
- W2129606590 cites W1965841085 @default.
- W2129606590 cites W1966322326 @default.
- W2129606590 cites W1967671942 @default.
- W2129606590 cites W1968161412 @default.
- W2129606590 cites W1968853280 @default.
- W2129606590 cites W1969460852 @default.
- W2129606590 cites W1975478743 @default.
- W2129606590 cites W1975515702 @default.
- W2129606590 cites W1976851708 @default.
- W2129606590 cites W1977798576 @default.
- W2129606590 cites W1977842477 @default.
- W2129606590 cites W1978845802 @default.
- W2129606590 cites W1981950301 @default.
- W2129606590 cites W1983297500 @default.
- W2129606590 cites W1983548371 @default.
- W2129606590 cites W1983579048 @default.
- W2129606590 cites W1989617127 @default.
- W2129606590 cites W1989923840 @default.
- W2129606590 cites W1991862462 @default.
- W2129606590 cites W1993016907 @default.
- W2129606590 cites W1994448710 @default.
- W2129606590 cites W1995720783 @default.
- W2129606590 cites W1998172035 @default.
- W2129606590 cites W1998736808 @default.
- W2129606590 cites W2000547571 @default.
- W2129606590 cites W2002196282 @default.
- W2129606590 cites W2004711815 @default.
- W2129606590 cites W2005825651 @default.
- W2129606590 cites W2006802950 @default.
- W2129606590 cites W2007942825 @default.
- W2129606590 cites W2010158553 @default.
- W2129606590 cites W2011621521 @default.
- W2129606590 cites W2012386903 @default.
- W2129606590 cites W2015106108 @default.
- W2129606590 cites W2016641591 @default.
- W2129606590 cites W2021861606 @default.
- W2129606590 cites W2024753390 @default.
- W2129606590 cites W2025865329 @default.
- W2129606590 cites W2026377537 @default.
- W2129606590 cites W2027225766 @default.
- W2129606590 cites W2030442583 @default.
- W2129606590 cites W2031104654 @default.
- W2129606590 cites W2034448667 @default.
- W2129606590 cites W2039229590 @default.
- W2129606590 cites W2040599877 @default.
- W2129606590 cites W2043728716 @default.
- W2129606590 cites W2044250881 @default.
- W2129606590 cites W2044915377 @default.
- W2129606590 cites W2045039445 @default.
- W2129606590 cites W2045188021 @default.
- W2129606590 cites W2045562504 @default.
- W2129606590 cites W2048978769 @default.