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S Erlinger

Publications and source records attributed to S Erlinger.

At least 145 records · Page 8Linked to original sources

[Formation of the bile].

Bile is an aqueous isotonic solution of bile acids, cholesterol, phospholipids, bile pigments and inorganic electrolytes. It is secreted by the hepatocytes into the bile canaliculi and modified by the bile ducts and gallbladder. The chief mechanisms of bile formation are: 1. active transport of bile acids, responsible for the bile acid-dependent flow. This is the consequence of an osmotic flux of water and electrolytes in response to bile acid secretion. Ursodeoxycholic acid (and other bile acids) have an hypercholeretic effect, probably through a chole-hepatic circulation. 2. Transport of other compounds, responsible for the bile acid-independent flow. These compounds are incompletely identified: organic compounds (such as glutathione) or inorganic electrolytes could be involved. 3. Reabsorption of water and electrolytes in the bile ducts and in the gallbladder, and secretion of bicarbonate by the bile ducts, stimulated by secretin. Cholestasis may be extra or intrahepatic. Extrahepatic cholestasis is always due to obstruction of bile ducts. Intrahepatic cholestasis may result from obstruction of intrahepatic bile ducts or alteration of secretory mechanisms by the hepatocyte.

Animals↗

Effects of taurolithocholate, a Ca2(+)-mobilizing agent, on cell Ca2(+) in rat hepatocytes, human platelets and neuroblastoma NG108-15 cell line.

The monohydroxy bile acid taurolithocholate permeabilizes the endoplasmic reticulum to Ca2+ in rat liver cells. To assess whether this action on the endoplasmic reticulum was restricted to this tissue, the effects of bile acid were investigated in two cell types quite unrelated to rat hepatocyte, namely human platelets and neuronal NG108-15 cell line. The results showed that taurolithocholate (3-100 microM) had no effect on free cytosolic [Ca2+] in human platelets and NG108-15 cells. whereas it increased it from 180 to 520 nM in rat hepatocytes. In contrast, in cells permeabilized by saponin, taurolithocholate initiated a profound release of the stored Ca2+ from the internal Ca2+ pools in the three cell types. The bile acid released 90% of the Ca2+ pools, with rate constants of about 5 min-1 and half-maximal effects at 15-30 microM. The results also showed that, in contrast with liver cells, which displayed an influx of [14C]taurolithocholate of 2 nmol/min per mg, human platelets and the neuronal cell line appeared to be resistant to [14C]taurolithocholate uptake. The influx measured in these latter cells was about 100-fold lower than in rat liver cells. Taken together, these data suggest that human platelets and NG108-15 cells do not possess the transport system for concentrating monohydroxy bile acids into cells. However, they show that human platelets and neuronal NG108-15 possess, in common with liver cells, the intracellular system responsible for taurolithocholate-mediated Ca2+ release from internal stores.

Animals↗

Inhibition by colchicine of biliary secretion of diethylmaleate in the rat: evidence for microtubule-dependent vesicular transport.

It has been proposed that a microtubule-dependent transport of vesicles derived from the Golgi apparatus may play a role in biliary secretion of bile salts and other cholephilic anions. To test this hypothesis, we examined the influence of colchicine and vinblastine, two microtubule inhibitors, on diethylmaleate-induced bile flow and on the biliary secretion of diethylmaleate, an organic anion whose glutathione conjugates may be secreted into bile through the Golgi apparatus and Golgi-derived vesicles. Rats were pretreated with colchicine or vinblastine, and diethylmaleate was injected intraperitoneally at doses of 28 to 400 mumol/100 gm body wt. Basal bile flow was unaffected by colchicine or vinblastine. In contrast, diethylmaleate-induced bile flow and the secretion into bile of diethylmaleate conjugates (estimated by the cation-anion gap in bile) were significantly lower in colchicine-treated and vinblastine-treated animals than in controls. Diethylmaleate-induced bile flow was reduced in proportion to diethylmaleate conjugate secretion. A linear relationship was seen between bile flow and biliary output of diethylmaleate conjugates: this relationship was similar in colchicine-treated or vinblastine-treated animals and in controls. At electron microscopy, diethylmaleate had induced distension of the Golgi saccules of the hepatocytes. In conclusion, colchicine and vinblastine inhibited the secretion into bile of diethylmaleate conjugates and diethylmaleate-induced bile flow. These results support the view that microtubule-dependent transport of Golgi-derived vesicles is involved in the biliary secretion of diethylmaleate and, perhaps, other cholephilic organic anions.

Animals↗

Giant hemangioma of the liver with pain, fever, and abnormal liver tests. Report of two cases.

In conclusion, we report the cases of two patients with large hemangiomas of the liver, abdominal pain, increased ESR and fibrinogen, increased serum alkaline phosphatase and gamma-glutamyltransferase activity, and normal white blood cell counts. Clinical and biochemical abnormalities disappeared after surgical resection. Increased ESR and fibrinogen are probably related to thrombosis within the tumor. This mode of presentation may suggest a diagnosis of hepatocellular carcinoma.

Adult↗

Effect of chronic administration of cyclosporin A on hepatic uptake and biliary secretion of bromosulfophthalein in rat.

Cyclosporin A (CyA) decreases bile flow and bile salt secretion in the rat. The purpose of this study was to examine the influence of CyA on the hepatic transport of bromosulfophthalein (BSP). Male Sprague-Dawley rats were injected with CyA at the daily dose of 10 mg/kg (treated animals) or solvent (controls) during three weeks. Hepatic uptake of BSP (assessed by the plasma disappearance curve of the dye) and biliary secretion during infusions (95.5 and 178 nmol/min/100 g) were examined in both groups. Administration of CyA resulted in a decrease in both bile flow and BSP biliary secretion at the two infusion rates used. BSP plasma disappearance rate was significantly lower in treated animals than in controls. Conjugation of the dye was unaffected by CyA. There was no modification in ALT activity or in liver histology. These data show that chronic administration of CyA in rats decreases both hepatic uptake and biliary secretion of BSP. Thus, the inhibitory effect of CyA on biliary secretion is not limited to bile salts but also is observed with other cholephilic substances.

Animals↗

Acute infusions of bile salts increase biliary excretion of iron in iron-loaded rats.

The mechanisms of biliary excretion of iron are not well known. The aim of this study was to examine the effect of choleresis induced by several agents on biliary iron excretion in iron-loaded rats. Iron overload was obtained with a diet supplemented by 3% iron carbonyl during a 6-week period. Bile was collected with an external bile fistula. Biliary iron concentration was measured by atomic absorption spectrophotometry, and hepatic iron concentration was measured by a chemical method. Compared with controls, iron overload resulted in a 14-fold increase in hepatic iron concentration but only a 3.9-fold increase in biliary iron output. In iron-loaded rats, taurocholate infusion caused a 1.8-fold significant increase in biliary iron output. Dehydrocholate, given at the same dose, induced a significant but less pronounced (1.3-fold) increase in biliary iron output in spite of a higher bile flow. Taurochenodeoxycholate, tauroursodeoxycholate, and tauro-7-ketolithocholate induced an increase in biliary iron output similar to that observed with taurocholate. The canalicular bile salt-independent choleretic dihydroxydibutyl ether caused a significant but less pronounced increase in biliary iron output (1.4-fold). These results confirm that in iron-loaded rats biliary iron excretion is increased much less than hepatic iron concentration. They show that in iron loaded rats (a) bile salts can increase biliary iron secretion, and (b) this increase is related in part to choleresis and in part to bile salts themselves. This increase may be related to an interaction of iron with bile salt monomers and/or micelles.

Animals↗

Severe monochlorobenzene-induced liver cell necrosis.

Benzene derivatives can induce severe liver cell necrosis in animals. A case of a 40-year-old man whose daily consumption of alcohol was 200 g and who had a severe monochlorobenzene-induced liver necrosis is described. Liver biopsy specimen showed centrilobular and mediolobular necrosis, similar to that in mice after experimental bromobenzene administration. Monochlorobenzene serum concentration, assayed from day 3 to day 15 after poisoning, decreased monoexponentially with a half-life of 40.3 hours. Prostaglandin E1 was administered from day 3 to day 8. The patient ultimately recovered. The mechanism of monochlorobenzene-induced liver injury and the possible aggravating role of chronic alcohol consumption are discussed.

Adult↗

Bile acids mobilise internal Ca2+ independently of external Ca2+ in rat hepatocytes.

In the present study, we investigated the possible role of external Ca2+ in the rise of the cytosolic Ca+ concentration induced by the monohydroxy bile acid taurolithocholate in isolated rat liver cells. The results showed that: (a) the bile acid promotes the same dose-dependent increase in the cytosolic Ca+ concentration (half-maximal effect at 23 microM) in hepatocytes incubated in the presence of 1.2 mM Ca2+ or 6 microM Ca2+; (b) taurolithocholate is able to activate the Ca2(+)-dependent glycogen phosphorylase a by 6.3-fold and 6.0-fold in high and low Ca2+ media, respectively; (c) [14C]taurolithocholate influx is not affected by external Ca2+, and 45Ca2+ influx is not altered by taurolithocholate. These results establish that the effects of taurolithocholate on cell Ca2+ do not require extracellular Ca2+ and are consistent with the view that monohydroxy bile acids primarily release Ca2+ from the endoplasmic reticulum in the liver.

Aminoquinolines↗

Cholangitis associated with cholecystitis in patients with acquired immunodeficiency syndrome.

Four patients with acquired immunodeficiency syndrome developed severe abdominal pain and fever due to acute acalculous cholecystitis. In all patients, preoperative laboratory data showed elevation of alkaline phosphatase and gamma-glutamyltransferase levels. Endoscopic or intraoperative cholangiography showed signs of intrahepatic and extrahepatic cholangitis. Cholecystectomy was performed and prompt relief of symptoms was achieved in all patients; no postoperative complication was observed. One patient did not develop any recurrence during an 18-month period of follow-up; two patients died 2 and 3 months after the operation. One patient developed recurrent abdominal pain and cholestasis 4 months after the operation, with dilatation of the common bile duct and papillary stenosis due to progression of cholangitis. These observations suggest that cholangitis is frequently associated with cholecystitis in patients with the acquired immunodeficiency syndrome. Its pathogenesis is not known.

Acquired Immunodeficiency Syndrome↗

Cholangiographic appearance simulating sclerosing cholangitis in metastatic adenocarcinoma of the liver.

Three patients with liver metastases and clinical and biochemical signs of cholestasis are reported in this study. In the three patients, cholangiography showed shifted and stretched intrahepatic bile ducts and multifocal strictures simulating intrahepatic primary sclerosing cholangitis. In two patients, histological examination showed periductal fibrosis or inflammation. Hepatic metastases should be included among the conditions considered to simulate intrahepatic primary sclerosing cholangitis during cholangiography.

Adenocarcinoma↗