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B Angelin

Publications and source records attributed to B Angelin.

At least 127 records · Page 7Linked to original sources

Molecular aspects of human lipid metabolism.

The application of molecular biology and genetics in the field of cholesterol and lipoprotein metabolism has resulted in a tremendous expansion of knowledge during the past decade. In this short review, the normal metabolism of lipoproteins is first discussed briefly, and several clinically important examples of genetic disorders which have recently been characterized are discussed: hypobetalipoproteinaemia, familial defective apo B-100, type III hyperlipoproteinaemia, and familial hypercholesterolaemia. New data on the molecular regulation of cholesterol metabolism are summarized, and the impact of this knowledge for our future therapeutic possibilities in hypercholesterolaemia and certain malignant diseases is discussed.

Apolipoproteins B↗

[Lipid metabolism in man--new knowledge on molecular level gives hope for better therapy].

Application of the techniques of molecular biology to the study of cholesterol and lipoprotein metabolism in recent years has led to a dramatic increase in our knowledge of this field. This brief review provides a general outline of normal lipoprotein and cholesterol metabolism; some recent advances in research are discussed, and the molecular defects present in hypobetalipoproteinaemia, familial apo B-100 deficiency, type III hyperlipoproteinaemia, and familial hypercholesterolaemia are described and their clinical relevance is discussed. New aspects are presented of the finely tuned regulation of cholesterol synthesis, and its importance in treatment of hypercholesterolaemia is discussed, as is its possible involvement in oncogen expression.

Cholesterol↗

[Effect of pravastatin on hepatic cholesterol metabolism].

BACKGROUND: Inhibitors of the rate-limiting enzyme of cholesterol biosynthesis, 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase, are now used frequently to treat hypercholesterolemia. We studied the effects of specific inhibition of cholesterol synthesis by one of these agents (pravastatin) on the hepatic metabolism of cholesterol in patients with gallstone disease who were scheduled to undergo cholecystectomy. METHODS: Ten patients were treated with pravastatin (20 mg twice a day) for three weeks before cholecystectomy; 20 patients not treated served as controls. A liver specimen was obtained from each patient at operation, and the activities of rate-determining enzymes in cholesterol metabolism as well as low-density-lipoprotein (LDL)-receptor binding activity were determined. RESULTS: Pravastatin therapy reduced plasma total cholesterol by 26 percent and LDL cholesterol by 39 percent (p less than 0.005). Serum levels of free lathosterol, a precursor of cholesterol whose concentration reflects the rate of cholesterol synthesis in vivo, decreased by 63 percent (p less than 0.005), indicating reduced de novo biosynthesis of cholesterol. Microsomal HMG-CoA reductase activity, when analyzed in vitro in the absence of the inhibitor, was increased 11.8-fold (1344 +/- 311 vs. 105 +/- 14 pmol per minute per milligram of protein in the controls; p less than 0.001). The expression of LDL receptors was increased by 180 percent (p less than 0.005), whereas the activities of cholesterol 7 alpha-hydroxylase (which governs bile acid synthesis) and of acyl-coenzyme A: cholesterol O-acyltransferase (which regulates cholesterol esterification) were unaffected by treatment. CONCLUSIONS: Inhibition of hepatic HMG-CoA reductase by pravastatin results in an increased expression of hepatic LDL receptors, which explains the lowered plasma levels of LDL cholesterol.

Adult↗

Effects of bezafibrate on hepatic cholesterol metabolism.

The influence of bezafibrate treatment on hepatic cholesterol metabolism was studied in rats and in humans. The activities of the three key enzymes involved in cholesterol metabolism [3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase, cholesterol 7 alpha-hydroxylase, and acyl-coenzyme A: cholesterol acyltransferase (ACAT)] were suppressed by bezafibrate treatment in rats, but only the ACAT activity was significantly decreased when the activity was related to total liver weight. In humans, HMG-CoA reductase activity was increased about twice in the treated normolipidemic gallstone patients. In contrast, the concentration of lathosterol in serum decreased, indicating depression of the cholesterol synthesis. The increase in HMG-CoA reductase activity may be a compensatory effect of an inhibition of some other enzymes in the synthesis of cholesterol, as in vitro study on liver microsomes excluded a direct inhibitory effect of bezafibrate on HMG-CoA reductase. The ACAT activity was not significantly changed, and the cholesterol 7 alpha-hydroxylase activity was decreased by 55-60% compared with controls. The LDL-receptor-binding activity was unaffected by bezafibrate treatment.

Animals↗

Age-related changes in the metabolism of cholesterol in rat liver microsomes.

The effects of aging on the hepatic metabolism of cholesterol were studied in 1-, 6- and 24-month-old male Sprague-Dawley rats. Microsomal 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase activity, which regulates cholesterol biosynthesis, decreased from 835 +/- 144 (SEM) pmol/min/mg protein in the youngest group to 219 +/- 34 and 205 +/- 53 pmol/min/mg protein (p less than 0.001) in the 6- and 24-month-old groups, respectively. Cholesterol 7 alpha-hydroxylase activity, which governs bile acid synthesis, was gradually reduced from 70 +/- 14 pmol/min/mg protein in the 1-month-old group to 32 +/- 7 and 16 +/- 3 pmol/min/mg protein (p less than 0.05) in the 6- and 24-month-old groups, respectively. Acyl coenzyme A:cholesterol acyltransferase activity, which catalyzes the esterification of cholesterol, averaged 431 +/- 47 and 452 +/- 48 pmol/min/mg protein in the 1- and 6-month-old groups, respectively, and was increased to 585 +/- 55 pmol/min/mg protein (p less than 0.05) in the 24-month-old group. The level of total cholesterol showed an age-related increase from 1.56 +/- 0.16 mg/g liver in the 1-month-old group to 1.70 +/- 0.15 and 2.20 +/- 0.19 mg/g liver (p less than 0.05) in the 6- and 24-month-old groups, respectively. The increase was mainly caused by an accumulation of esterified cholesterol. We conclude that a marked decrease in HMG-CoA reductase occurs between 1 and 6 months of age; thereafter the enzyme activity stays unchanged. The activity of cholesterol 7 alpha-hydroxylase decreases progressively and drastically with age, whereas the capacity for esterifying cholesterol increases slightly.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Hepatic metabolism of cholesterol in Crohn's disease. Effect of partial resection of ileum.

To study cholesterol metabolism in Crohn's disease and especially the effect of ileum resection, liver biopsy specimens were obtained from patients undergoing partial ileal resection because of Crohn's disease (n = 17) and patients with Crohn's colitis undergoing colectomy (n = 3). Gallstone-free patients (n = 16) undergoing cholecystectomy because of adenomyomas or polyps of the gallbladder served as controls. The mean levels of cholesterol 7 alpha-hydroxylase activity and 3-hydroxy-3-methylglutaryl coenzyme A reductase activity, rate-determining enzymes in bile acid, and cholesterol synthesis, respectively, were twofold to threefold higher in the ileum-resected patients than in the controls. Significant positive correlations were obtained between length of resected ileum and cholesterol 7 alpha-hydroxylase activity. Provided patients who had received total parenteral nutrition preoperatively were excluded from analysis, a significant correlation was also observed between length of resected ileum and 3-hydroxy-3-methylglutaryl coenzyme A reductase activity. Significant positive correlations were also obtained between length of resected ileum and serum levels of 7 alpha-hydroxycholesterol (a marker for bile acid biosynthesis) and lathosterol (a marker for cholesterol synthesis). The plasma levels of total and low-density lipoprotein cholesterol were negatively correlated to the length of resected ileum. The expression of hepatic low-density lipoprotein-receptor binding activity was determined in five of the patients and in three of the controls. A significant positive correlation was observed between 3-hydroxy-3-methylglutaryl coenzyme A reductase activity and low-density lipoprotein-receptor binding activity. The results show that malabsorption of bile acids leads to parallel stimulation of cholesterol synthesis, cholesterol degradation, and low-density lipoprotein-receptor expression in human liver. The resulting effect in the present patients was a significant reduction in low-density lipoprotein cholesterol.

Adult↗

Digoxin-verapamil interaction: reduction of biliary but not renal digoxin clearance in humans.

The interaction between digoxin and verapamil was studied in six patients (mean age +/- SD, 61 +/- 5 years) with chronic atrial fibrillation. The effects of adding verapamil (240 mg/day) on steady-state plasma concentrations and renal and biliary clearances of digoxin were studied in a crossover manner. The biliary clearance of digoxin was determined by a duodenal perfusion technique. Verapamil induced a 44% increase in steady-state plasma concentrations of digoxin, from 0.80 +/- 0.24 to 1.15 +/- 0.40 nmol/L (p less than 0.01). The biliary clearance of digoxin decreased by 43%, from 187 +/- 89 to 101 +/- 55 ml/min (p less than 0.05), in the presence of verapamil, whereas the renal clearance was unaffected (153 +/- 31 versus 173 +/- 51 ml/min; difference not significant). Our results indicate that the main inhibitory effect of verapamil on digoxin elimination is on the biliary route.

Bile↗

No effect of probenecid on the renal and biliary clearances of digoxin in man.

1. The cardiac glycoside digoxin is subject to a number of pharmacokinetic interactions. This study concerns the influence of the anionic transport inhibitor probenecid on the steady-state kinetics of digoxin. 2. Six healthy young men were enrolled in the study. After an administration period of 6 days with digoxin only (0.5 to 1 mg p.o. day-1) or digoxin in combination with probenecid (2 g p.o. day-1; 8 days), digoxin was administered intravenously (0.7 oral dose) on day 7. Plasma and urine samples were taken over 48 h. The biliary clearance of digoxin was measured during day 8 by a duodenal perfusion technique. 3. Probenecid did not affect the plasma clearance (mean +/- s.d.: 255 +/- 80 vs 266 +/- 40 ml min-1), renal clearance (166 +/- 17 vs 155 +/- 10 ml min-1), biliary clearance (106 +/- 40 vs 111 +/- 50 ml min-1), elimination half-life (34.4 vs 35.2 h) or volume of distribution (538 +/- 241 vs 566 +/- 60 l) of digoxin. 4. Our results suggest that different systems exist in man for the renal and biliary secretion of probenecid and digoxin.

Administration, Oral↗

Gemfibrozil in familial combined hyperlipidaemia: effect of added low-dose cholestyramine on plasma and biliary lipids.

Gemfibrozil is frequently used for lipid-lowering in familial combined hyperlipidaemia (FCHL) and in other forms of combined hyperlipidaemia. This therapy increases biliary cholesterol saturation, enhancing the risk for gallstone formation. Furthermore, in hypertriglyceridaemia, LDL cholesterol levels often tend to rise. We have explored the possibility that addition of a low dose of cholestyramine to gemfibrozil therapy obliterates these phenomena. Eighteen gallstone-free patients with definite (n = 5) or probable (n = 10) FCHL, or combined hyperlipoproteinaemia (n = 3) were randomized to a 6 week treatment with gemfibrozil, 600 mg b.i.d., or gemfibrozil 600 mg b.i.d. plus 4 g cholestyramine o.d. After 6 weeks the patients were crossed over to the alternative treatment. Plasma lipoproteins and biliary lipids were determined at baseline and at the end of each period. Institution of gemfibrozil treatment resulted in a decrease in plasma cholesterol by 15% (P less than 0.05) and in plasma triglycerides by 47% (P less than 0.05); HDL cholesterol increased by 18% (P less than 0.05). Addition of cholestyramine further decreased plasma and LDL total cholesterol by 9% (P less than 0.05). Total triglycerides and HDL cholesterol did not change. Gemfibrozil treatment was associated with a rise in the relative biliary concentration of cholesterol from 5.6 +/- 0.4 to 6.9 +/- 0.5 molar percent (P less than 0.01), and a parallel decrease in the relative concentration of bile acids, resulting in an increased cholesterol saturation of the bile, from 77 +/- 5 to 90 +/- 6% (P less than 0.05). This change was not observed during the combined therapy (mean cholesterol saturation, 82 +/- 4%).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Effect of cholestyramine treatment on biliary lipid secretion rates in normolipidaemic men.

This study was designed to clarify the effect of bile acid sequestrant treatment on the total biliary output rates of cholesterol, phospholipids and bile acids in man, and to correlate these changes with the alterations in plasma lipoprotein levels. For this purpose nine healthy, normolipidaemic men were treated with 16 g of cholestyramine daily over a period of 4 weeks, and the biliary secretion rates were measured by a duodenal perfusion technique. Resin therapy, which profoundly increases de novo synthesis of bile acids, resulted in a lowering of total plasma cholesterol levels, mainly due to a 35% reduction in low density lipoprotein (LDL) cholesterol, and in a 33% increase in plasma triglyceride levels, reflecting enhanced very low density lipoprotein (VLDL) triglyceride concentrations; high density lipoprotein (HDL) levels did not change. However, these lipoprotein changes did not correlate with any alterations in biliary lipid output. Total hepatic secretion rates of the biliary lipids remained generally unchanged during treatment, with a tendency towards lower cholesterol output, resulting in a lower molar percentage of cholesterol in hepatic bile, 3.4 +/- 0.4 vs. 2.9 +/- 0.2 mol %. This is probably due to an increased rate of conversion of cholesterol to bile acids in the hepatocyte. It is concluded that, in man, the liver may adapt well to changes in the enterohepatic circulation of bile acids, thereby maintaining output rates of biliary lipids at a relatively constant level.

Adult↗

Nucleation time of gall bladder bile in gall stone patients: influence of bile acid treatment.

The time required for precipitation of cholesterol crystals (nucleation time, NT) was determined and related to the cholesterol saturation in gall bladder bile of gall stone free subjects (n = 11), patients with pigment stones (n = 3), and patients with cholesterol gall stones (n = 30) undergoing cholecystectomy. Seven of the gall stone patients had been treated with chenodeoxycholic acid (CDCA) and nine with ursodeoxycholic acid (UDCA), 15 mg/kg/day for three weeks before operation. NT was longer in gall stone free subjects (mean, 20 days), patients with pigment stones (14 days) and patients treated with CDCA (24 days) and UDCA (17 days) compared with untreated patients with cholesterol gall stones (1.5 days). In spite of low cholesterol saturation and prolonged NT, and in contrast to those treated with CDCA, four of the nine patients treated with UDCA had cholesterol crystals in their bile. These observations give further support to the concept that the mechanism for inducing gall stone dissolution may be different for CDCA and UDCA.

Bile↗

Effect of ursodeoxycholic acid treatment on ileal absorption of bile acids in man as determined by the SeHCAT test.

The effects of urodeoxycholic acid on ileal absorption of bile acids and on serum bile acid and lipoprotein concentrations were studied. Eight healthy subjects were investigated. The gamma emitting bile acid analogue, SeHCAT, was given orally and its fractional catabolic rate and seven day retention were assessed by repeated external counting over the upper abdomen during the next seven days. Ursodeoxycholic acid was then given orally at a dose of 15 mg/kg/day for three weeks and the study was repeated during treatment. The fractional catabolic rate increased by 64% (mean (SD), 0.333 (0.159) v 0.203 (0.061)/day; p less than 0.05) and seven day retention decreased by 44% (15(10) v 27(10)%, p less than 0.001), indicating bile acid malabsorption. Total serum cholesterol fell from 5.79 (1.22) to 5.50 (1.18) mmol/l (p = 0.05), while serum ursodeoxycholic acid increased 22 fold (7.87 (2.67) v 0.34 (0.24) mumol/l, p less than 0.001). Five of the subjects continued taking 30 mg/kg/day of ursodeoxycholic acid for one week and showed an increase in fractional catabolic rate of 81% (0.300 (0.091) v 0.166 (0.037)/day; p less than 0.05) and a fall in seven day retention of 50% (16 (12) v 32 (8)%, p less than 0.01). There were significant reductions in total cholesterol (5.36 (1.71) v 6.08 (1.47) mmol/l; p less than 0.05) and low density lipoprotein cholesterol (3.70 (1.33) v 4.58 (1.16) mmol/l; p less than 0.05). The results support the concept tht ursodeoxycholic acid treatment interferes with the absorption of endogenous bile acids, and emphasise the beneficial effects of this treatment of lipoprotein concentrations in man.

Adult↗

Influence of age on the metabolism of plasma low density lipoproteins in healthy males.

The plasma concentration of the atherogenic low density lipoproteins (LDL) increases with age. To clarify the mechanism of this change, we studied the kinetics of autologous 125I-LDL apolipoprotein B (apo B) in 41 normolipidemic, nonobese healthy males. For comparison, they were divided into three age groups: young, 21-39 yr (n = 18), middle-aged, 40-59 yr (n = 11), and old, 60-80 yr (n = 12). The levels of plasma LDL cholesterol and LDL apo B increased from respectively 3.4 +/- 0.1 (SEM) mmol/liter and 86 +/- 2 mg/dl in the young to 4.1 +/- 0.1 mmol/liter and 95 +/- 3 mg/dl in the old (P less than 0.01), and this increase was linked to a progressively decreased (r = -0.38, P less than 0.02) fractional catabolic rate of LDL apo B (0.348 +/- 0.010 pools per day in the young vs. 0.296 +/- 0.009 pools per day in the old, P less than 0.01). The production rate of LDL apo B did not differ significantly between the groups. The reduced fractional catabolic rate of LDL apo B in the old was not associated with a decrease in binding affinity of the LDL particle to its receptor, as judged from its ability to compete for 125I-LDL fibroblast binding. When hepatic LDL receptor expression was stimulated by cholestyramine treatment in six old males, their LDL apo B fractional catabolic rate increased to the levels observed in the young subjects. We conclude that the increase in LDL which normally occurs with age is explained by a reduced capacity for its removal, and hypothesize that this is mediated via a reduced hepatic LDL receptor expression.

Adult↗

Regulation of hepatic cholesterol metabolism in man.

The liver is a key element in regulating the amount of low density lipoprotein (LDL) cholesterol in plasma. The interference of cholestyramine treatment in the enterohepatic circulation of bile acids stimulates the activity of the rate limiting enzymatic step in bile acid biosynthesis (cholesterol 7 alpha-hydroxylase). This increases demand for cholesterol which is met by enhanced cholesterol biosynthesis (through the enzyme 3-hydroxy-3-methylglutaryl coenzyme A [HMG CoA] reductase) and by an increased expression of LDL receptors. Inhibition of HMG CoA reductase activity by treatment with specific inhibitors such as pravastatin enhances LDL receptor binding activity. Combination of the two treatments results in a significant stimulation of LDL receptor expression and a drastic reduction in the concentration of plasma LDL cholesterol. Thus, selective interference with bile acid enterohepatic circulation and cholesterol biosynthesis may be utilised to regulate plasma lipoprotein metabolism.

Cholelithiasis↗

Interruption of the enterohepatic circulation of bile acids stimulates the esterification rate of cholesterol in human liver.

The activity of acyl CoA: cholesterol acyltransferase (ACAT), which catalyzes the esterification of cholesterol, was studied in liver microsomes obtained from cholestyramine-treated gallstone patients (n = 12) and patients with Crohn's disease who had undergone partial ileal resection (n = 11). Gallstone patients (n = 33) and gallstone-free subjects undergoing cholecystectomy because of polyps of the gallbladder (n = 8) served as controls. The mean levels of the ACAT activity were the same in the gallstone and the gallstone-free patient groups (6.0 +/- 0.4 and 6.1 +/- 1.1 pmol/min per mg protein, respectively). When exogenous cholesterol was added to the assay system the activities were increased four- to fivefold in both groups. The ACAT activity tended to be increased in the cholestyramine-treated patients (8.1 +/- 1.8 pmol/min per mg protein), and was significantly enhanced (P less than 0.005) in the ileal-resected patients (12.3 +/- 2.3 pmol/min per mg protein). When the enzyme activity was determined with added exogenous cholesterol, it was significantly higher compared to the controls in both the cholestyramine-treated patients and the patients with ileal resection (57.9 +/- 11.6 and 50.0 +/- 10.3 pmol/min per mg protein, respectively). The content of free and esterified cholesterol in liver homogenates and microsomes was not significantly different between the patient groups. We conclude that ACAT activity is increased in patients with interruption of the enterohepatic circulation of bile acids, and speculate that this reflects a stimulated uptake of lipoprotein cholesterol and may indicate that more cholesteryl esters are incorporated into very low density lipoproteins.

Adult↗

Effects of pravastatin and cholestyramine on products of the mevalonate pathway in familial hypercholesterolemia.

Patients with heterozygous familial hypercholesterolemia (n = 12) were treated either with pravastatin, a specific inhibitor of HMG-CoA reductase, or cholestyramine, followed by a period of combined treatment with both drugs. Initially, these patients had increased serum levels of low density lipoprotein (LDL) cholesterol (8.77 +/- 0.48 mmol/l; SEM), lathosterol (5.32 +/- 0.60 mg/l), and ubiquinone (0.76 +/- 0.09 mg/l), while the serum dolichol concentration was in the normal range. Cholestyramine treatment (n = 6) decreased the levels of LDL cholesterol (-32%) and increased lathosterol (+125%), but did not change dolichol or ubiquinone levels in a significant manner. Pravastatin treatment (n = 6) decreased LDL cholesterol (-27%), lathosterol (-46%), and ubiquinone (-29%). In this case, the amount of dolichol in serum also showed a small but statistically insignificant decrease (-16%) after 12 weeks of treatment. Combined treatment with cholestyramine and pravastatin (n = 6) resulted in changes that were similar to, but less pronounced than, those observed during pravastatin treatment alone. In no case was the ratio between ubiquinone and LDL cholesterol reduced. Possible effects on hepatic cholesterol, ubiquinone, and dolichol concentrations were studied in untreated (n = 2), cholestyramine-treated (n = 2), and pravastatin-treated (n = 4) gallstone patients and no consistent changes could be observed. The results indicate that treatment with pravastatin in familial hypercholesterolemia decreases serum ubiquinone levels in proportion to the reduction in LDL cholesterol.

Adult↗

Distribution of cholesterol between vesicles and micelles in human gallbladder bile: influence of treatment with chenodeoxycholic acid and ursodeoxycholic acid.

The present study aimed at determining the relative distribution of cholesterol between the vesicular and micellar phases in gallbladder bile of gallstone patients (n = 23) and gallstone-free subjects (n = 7). Nine of the gallstone patients were treated with chenodeoxycholic acid and seven were treated with ursodeoxycholic acid, 15 mg/kg/day, for 3 wk before cholecystectomy. The vesicular and micellar fractions in bile were separated by sucrose density gradient ultracentrifugation, and a clear separation between the two phases was obtained. The vesicles were further identified by quasielastic light scattering spectroscopy and appeared to be of a uniform size with a mean hydrodynamic radius of 760 A. The proportion of cholesterol in the vesicular fraction was significantly higher in the untreated gallstone group (40% +/- 4%) compared with the gallstone-free (28% +/- 3%), ursodeoxycholic acid (28% +/- 3%) and chenodeoxycholic acid (18% +/- 4%) groups. Despite a low cholesterol saturation of bile in the latter three groups (88% +/- 12%, 51% +/- 9% and 65% +/- 5%, respectively), a considerable part of the biliary cholesterol was carried in the vesicular fraction. The cholesterol/phospholipid ratio in the vesicular fraction averaged between 0.49 and 0.58 in the gallstone, gallstone-free and chenodeoxycholic acid groups, whereas the ursodeoxycholic acid group had a significantly lower ratio of 0.24. The nucleation time of bile from the gallstone group was short (2 +/- 1 days) compared with the gallstone-free, chenodeoxycholic acid and ursodeoxycholic acid groups (23 +/- 3, 24 +/- 6 and 14 +/- 3 days, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Bile acid sequestrants: mechanisms of action on bile acid and cholesterol metabolism.

Interruption of the enterohepatic circulation of bile acids by cholestyramine or colestipol influences the hepatic metabolism of cholesterol in many ways. The synthesis of bile acids is increased, as reflected by a several-fold increase in the activity of the cholesterol 7 alpha hydroxylase, the rate-determining enzyme in bile acid synthesis. The increased metabolism of cholesterol to bile acids causes an enhanced demand of cholesterol in the hepatocytes which respond with both new synthesis of cholesterol, as reflected in a several-fold increase of the HMG-CoA reductase activity, and increased expression of LDL receptors. As a consequence, the plasma level of LDL-cholesterol is lowered. The hepatic secretion rate of VLDL particles is increased. Cholestyramine therapy does not affect the output of biliary lipids or the cholesterol saturation of bile, indicating that treatment with bile acid sequestrants should not be associated with any increased risk of gallstone formation.

Bile↗