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Biomedical subjects

S Shefer

Publications and source records attributed to S Shefer.

At least 127 records · Page 7Linked to original sources

Competitive inhibition of bile acid synthesis by endogenous cholestanol and sitosterol in sitosterolemia with xanthomatosis. Effect on cholesterol 7 alpha-hydroxylase.

The 7 alpha-hydroxylation of two cholesterol analogues, sitosterol and cholestanol, and their effect on the 7 alpha-hydroxylation of cholesterol were measured in rat and human hepatic microsomes. In untreated rat liver microsomes, the 7 alpha-hydroxylation of cholesterol was higher than that of cholestanol (1.4-fold) and sitosterol (30-fold). After removal of endogenous sterols from the microsomes by acetone treatment, the 7 alpha-hydroxylation of cholesterol was similar to that of cholestanol and only fourfold higher than that of sitosterol. Cholestanol and sitosterol competitively inhibited cholesterol 7 alpha-hydroxylase in both rat and human liver microsomes, with cholestanol the more potent inhibitor. Patients with sitosterolemia with xanthomatosis, who have elevated microsomal cholestanol and sitosterol, showed reduced cholesterol 7 alpha-hydroxylase activity relative to the activity in control subjects (13.9 and 14.7 vs. 20.3 +/- 0.9 pmol/nmol P-450 per min, P less than 0.01). Enzyme activity in these patients was 40% higher when measured in microsomes from which competing sterols had been removed. Ileal bypass surgery in one sitosterolemic patient decreased plasma cholestanol and sitosterol concentrations and resulted in a 30% increase in hepatic microsomal cholesterol 7 alpha-hydroxylase activity. Cholesterol 7 alpha-hydroxylase appears to have a specific apolar binding site for the side chain of cholesterol and is affected by the presence of cholestanol and sitosterol in the microsomal substrate pool. Reduced bile acid synthesis in sitosterolemia with xanthomatosis may be related to the inhibition of cholesterol 7 alpha-hydroxylase activity by endogenous cholesterol analogues.

Adolescent↗

Increased concentrations of cholestanol and apolipoprotein B in the cerebrospinal fluid of patients with cerebrotendinous xanthomatosis. Effect of chenodeoxycholic acid.

We investigated the effect of chenodeoxycholic acid on cerebrospinal fluid sterol and protein composition in six patients with cerebrotendinous xanthomatosis, a progressive neurologic disease, and in 11 control subjects. In the cerebrospinal fluid from the controls, the mean (+/- SD) levels of cholesterol and cholestanol were 400 +/- 300 and 4 +/- 7 micrograms per deciliter, respectively. The levels were almost 1.5 and 20 times higher in cerebrospinal fluid from untreated patients with cerebrotendinous xanthomatosis. Cholestanol levels were also markedly elevated in the plasma of untreated patients, but their plasma cholesterol levels (215 +/- 61 mg per deciliter) were not different from control values. Treatment with chenodeoxycholic acid reduced cerebrospinal fluid cholesterol by 34 percent and cholestanol threefold. Plasma cholestanol levels also decreased sharply. Normal cerebrospinal fluid contained small quantities of albumin, apolipoproteins, and lecithin:cholesterol acyltransferase. In cerebrospinal fluid from untreated patients with cerebrotendinous xanthomatosis, immunoreactive apolipoprotein B or apolipoprotein B fragment was increased about 100-fold and albumin about 3.5-fold; apolipoprotein AI, apolipoprotein D, and lecithin:cholesterol acyltransferase were 1.5 to 3 times more concentrated. Apolipoprotein AIV and apolipoprotein E concentrations were comparable to those in controls, and apolipoprotein AII was considerably decreased. During treatment, the concentrations of albumin and apolipoproteins AI and B declined. These results suggest that increased cerebrospinal fluid sterols are derived from plasma lipoproteins by means of a defective blood-brain barrier in patients with cerebrotendinous xanthomatosis. Therapy with chenodeoxycholic acid reestablished selective permeability of the blood-brain barrier and normalized the concentrations of sterol and apolipoprotein in the cerebrospinal fluid.

Albumins↗

Increased plasma bile alcohol glucuronides in patients with cerebrotendinous xanthomatosis: effect of chenodeoxycholic acid.

Large quantities of C27 bile alcohols hydroxylated at C-25 are excreted in the bile and urine of patients with cerebrotendinous xanthomatosis, a lipid storage disease that results from defective bile acid synthesis. The presence of both biliary and urinary bile alcohols reflects impaired bile acid synthesis. After treatment of samples with beta-glucuronidase, plasma bile alcohols were quantitated by gas-liquid chromatography-mass spectrometry. 5 beta-Cholestane-3 alpha,7 alpha,12 alpha,25-tetrol (334 micrograms/dl) was found to be the major bile alcohol, followed by 5 beta-cholestane-3 alpha,7 alpha,12 alpha,23R,25-pentol (65 micrograms/dl), and 5 beta-cholestane-3 alpha,7 alpha,12 alpha,24(R and S),25-pentols (62.5 micrograms/dl and 64.5 micrograms/dl, respectively) in the plasma of these patients. When compared to biliary and urinary bile alcohol excretions, the plasma pattern resembled bile where 5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrol glucuronide predominated. In contrast, urinary bile alcohols were composed chiefly of 5 beta-cholestanepentol glucuronides with only small amounts of 5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrol glucuronide. Treatment with chenodeoxycholic acid, which suppresses abnormal bile acid synthesis in these patients, reduced plasma bile alcohol concentrations dramatically. These results show that large quantities of bile alcohol glucuronides, particularly 5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrolglucuronide, circulate in plasma of patients with cerebrotendinous xanthomatosis. The plasma bile alcohols closely resemble biliary bile alcohols which indicates their hepatic origin. The large quantities of polyhydroxylated bile alcohols in the urine may suggest their formation, at least in part, from 5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrol by renal hydroxylating mechanisms.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

[Intrahepatic cholestasis: modulation by immunological factors?].

The mechanism of intrahepatic cholestasis in active liver disease has not yet been elucidated. Recent investigations in type II drug-induced hepatitis have suggested that lymphocytes produce a cholestatic factor. The authors' studies on lymphocyte cultures of patients with alcoholic hepatitis and acute viral hepatitis suggest that cellular immune phenomena may be of general significance in the pathogenesis of intrahepatic cholestasis. Supernatants of cultured lymphocytes of patients with alcoholic and acute viral hepatitis reduced bile flow and bile acid excretion in a rat model, provided that the lymphocytes had been previously stimulated by the appropriate antigen. An identical cholestatic effect was seen using sera of these patients. The pathogenetic mechanism of this lymphocytic factor is still unknown.

Animals↗

Effect of ursodeoxycholic acid and chenodeoxycholic acid on cholesterol and bile acid metabolism.

Orally administered UDCA dramatically reduces the secretion of cholesterol into the bile. During UDCA therapy cholesterol balance is maintained by a reduction in both the relative and absolute absorption of cholesterol and, perhaps, by a combined moderate enhancement of bile acid synthesis and a suppression of cholesterol production. The percentage of UDCA in the bile is limited by the inability of UDCA to suppress bile acid synthesis from cholesterol and by the conversion of UDCA to CDCA by the intestinal bacteria.

Animals↗

Ursodeoxycholic acid, 7-ketolithocholic acid, and chenodeoxycholic acid are primary bile acids of the nutria (Myocastor coypus).

Because ursodeoxycholic and chenodeoxycholic acids are interconverted in humans via 7-ketolithocholic acid, bile acid metabolism was studied in the nutria (Myocastor coypus), the bile of which is known to contain these three bile acids. Relative concentrations of ursodeoxycholic (37% +/- 20%), 7-ketolithocholic (33% +/- 17%), and chenodeoxycholic (17% +/- 9%) acids in gallbladder bile were unchanged by 5-20 h of complete biliary diversion (n = 7). Injection of either [14C]cholesterol, [14C]ursodeoxycholic, [14C]7-ketolithocholic acid, or a mixture of [7 beta-3H]chenodeoxycholic acid and [14C]chenodeoxycholic acid into bile fistula nutria demonstrated that all three bile acids can be synthesized hepatically from cholesterol, that they are interconverted sparingly (2%-5%) by the liver, but that 7-ketolithocholic acid is an intermediate in the hepatic transformation of chenodeoxycholic acid to ursodeoxycholic acid. An animal that had been fed antibiotics showed an unusually elevated concentration of ursodeoxycholic acid in gallbladder and hepatic bile, suggesting that bacterial transformation of ursodeoxycholic acid in the intestine may be a source of some biliary chenodeoxycholic acid and 7-ketolithocholic acid.

Animals↗

Ursodeoxycholic acid treatment of bile reflux gastritis.

Intractable epigastric pain associated with nausea and bilious vomiting often follows gastric surgery and has been attributed to reflux of bile and the irritating effects of endogenous bile acids on the gastric remnant. To test the effect of changing bile acid composition of the refluxed material on the symptoms and gastric mucosal histology, 12 patients with symptomatic alkaline reflux gastritis were treated for 1 mo with placebo and for 1 mo with ursodeoxycholic acid, 1000 mg/day. Before treatment, all patients were symptomatic and manifested epigastric pain, nausea, and bilious vomiting. The gastric mucosa was erythematous, friable, and bile stained, and the histology revealed chronic inflammation. No significant change in symptoms was noted during administration of placebo. In contrast, ursodeoxycholic acid treatment resulted in a profound decrease in the intensity and frequency of pain and almost abolished nausea and vomiting. During bile acid therapy the proportion of ursodeoxycholic acid in gastric bile rose to 50% of total bile acids, whereas cholic and deoxycholic acids decreased and chenodeoxycholic acid remained unchanged. The macroscopic and microscopic appearance of the gastric mucosa, however, did not change after 1 mo of ursodeoxycholic acid treatment. These results suggest that increasing the proportion of ursodeoxycholic acid in refluxed gastric bile reduces the pain and frequency of symptoms associated with bile reflux.

Adult↗

Biosynthesis of bile acids in cerebrotendinous xanthomatosis. Relationship of bile acid pool sizes and synthesis rates to hydroxylations at C-12, C-25, and C-26.

To examine the defect in side-chain oxidation during the formation of bile acids in cerebrotendinous xanthomatosis, we measured in vitro hepatic microsomal hydroxylations at C-12 and C-25 and mitochondrial hydroxylation at C-26 and related them to the pool size and synthesis rates of cholic acid and chenodeoxycholic acid as determined by the isotope dilution technique. Hepatic microsomes and mitochondria were prepared from seven subjects with cerebrotendinous xanthomatosis and five controls. Primary bile acid synthesis was markedly reduced in cerebrotendinous xanthomatosis as follows: cholic acid, 133 +/- 30 vs. 260 +/- 60 mg/d in controls; and chenodeoxycholic acid, 22 +/- 10 vs. 150 +/- 30 mg/d in controls. As postulated for chenodeoxycholic acid synthesis, mitochondrial 26-hydroxylation of 5 beta-cholestane-3 alpha, 7 alpha-diol was present in all specimens and was 30-fold more active than the corresponding microsomal 25-hydroxylation. However, mean mitochondrial 26-hydroxylation of 5 beta-cholestane-3 alpha,7 alpha-diol was less active in cerebrotendinous xanthomatosis than in controls: 59 +/- 17 compared with 126 +/- 21 pmol/mg protein per min. As for cholic acid synthesis, microsomal 25-hydroxylation of 5 beta-cholestane-3 alpha,7 alpha,12 alpha-triol was substantially higher in cerebrotendinous xanthomatosis and control preparations (620 +/- 103 and 515 +/- 64 pmol/mg protein per min, respectively) than the corresponding control mitochondrial 26-hydroxylation of the same substrate (165 +/- 25 pmol/mg protein per min). Moreover in cerebrotendinous xanthomatosis, mitochondrial 5 beta-cholestane-3 alpha,7 alpha,12 alpha-triol-26-hydroxylase activity was one-seventh as great as in controls. Hepatic microsomal 12 alpha-hydroxylation, which may be rate-controlling for the cholic acid pathway, was three times more active in cerebrotendinous xanthomatosis than in controls: 1,600 vs. 500 pmol/mg protein per min. These results demonstrate severely depressed primary bile acid synthesis in cerebrotendinous xanthomatosis with a reduction in chenodeoxycholic acid formation and pool size disproportionately greater than that for cholic acid. The deficiency of chenodeoxycholic acid can be accounted for by hyperactive microsomal 12 alpha-hydroxylation that diverts precursors into the cholic acid pathway combined with decreased side-chain oxidation (mitochondrial 26-hydroxylation). However, side-chain oxidation in cholic acid biosynthesis may be initiated via microsomal 25-hydroxylation of 5beta-cholestane-3alpha,7alpha,12alpha-triol was substantially lower in control and cerebrotendinous xanthomatosis liver. Thus, separate mechanisms may exist for the cleavage of the cholesterol side chain in cholic acid and chenodeoxycholic acid biosynthesis.

Adult↗

Synthesis and structure of 26 (or 27)-nor-5 beta-cholestane-3 alpha,7 alpha,12 alpha,24S,25 xi-pentol isolated from the urine and feces of a patient with sitosterolemia and xanthomatosis.

The urine and feces of a patient with the rare inherited lipid storage disease, sitosterolemia and xanthomatosis, were analyzed. Substantial quantities of C26-bile alcohol, 26 (or 27)-nor-5 beta-cholestane-3 alpha,7 alpha,12 alpha,24S,25 xi-pentol along with 5 beta-cholestane-3 alpha,7 alpha,12 alpha,24-tetrol, 5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrol, 5 beta-cholestane-3 alpha,7 alpha,12 alpha,24R,25-pentol, and 5 beta-cholestane-3 alpha,7 alpha,12 alpha,25,26-pentol were found. The structure of the C26-bile alcohol was confirmed by direct comparison (gas-liquid chromatography-mass spectrometry and thin-layer chromatography) with a standard sample synthesized from cholic acid. The configurational assignment at C-24 was determined by lanthanide-induced circular dichroism Cotton effect measurements. The increased excretion of these C26- and C27-bile alcohols suggests an abnormality of bile acid biosynthesis in this disease.

Adolescent↗

Increased plasma cholestanol and 5 alpha-saturated plant sterol derivatives in subjects with sitosterolemia and xanthomatosis.

We have measured plasma sterol composition in 14 subjects with sitosterolemia and xanthomatosis. In addition to elevated plasma phytosterol (campesterol 16 +/- 7 mg/dl and sitosterol 35 +/- 16 mg/dl) and normal to moderately high cholesterol levels (258 +/- 96 mg/dl), concentrations of 5 alpha-saturated stanols, cholestanol, 5 alpha-campestanol, and 5 alpha-sitostanol were at least 10 times greater than controls. Diets contained plentiful quantities of cholesterol and plant sterols, but only trace amounts of cholestanol (less than 2 mg/day) and no detectable 5 alpha-campestanol and 5 alpha-sitostanol, which indicated that the 5 alpha-saturated stanols were formed endogenously. Treatment with cholestyramine reduced plasma cholesterol and phytosterol levels by 45% and 5 alpha-saturated stanols by 55%. These results indicate that abnormally high plasma concentrations of cholestanol, 5 alpha-campestanol, and 5 alpha-sitostanol are found in subjects with sitosterolemia and xanthomatosis, and that treatment with cholestyramine effectively reduced elevated plasma sterol levels.

Adolescent↗

Effect of chenodeoxycholic acid on biliary and urinary bile acids and bile alcohols in cerebrotendinous xanthomatosis; monitoring by high performance liquid chromatography.

Biliary and urinary bile alcohol and bile acid composition has been determined by high performance liquid chromatography in patients with cerebrotendinous xanthomatosis before and after treatment with chenodeoxycholic acid. Most of the bile acids and bile alcohols in the bile and urine were separated in less than 30 min using a radial pack C18 muBondapak 5 micron particle size column with a mobile phase of acetonitrile-water-methanol-acetic acid 70:70:20:1 (v/v/v/v) at a flow rate of 2 ml/min, and a refractive index detector. Before treatment, cholic acid (49%) and 5 beta-cholestane-3 alpha, 7 alpha, 12 alpha, 25-tetrol (27%) were the major biliary bile acid and bile alcohol, respectively, but were not detected in the urine of five patients. 5 beta-Cholestane-pentols were, instead, the major urinary bile alcohols with 5 beta-cholestane-3 alpha, 7 alpha, 12 alpha, 23 xi, 25-pentol (56%) predominating. Whereas 5 beta-cholestane-3 alpha, 7 alpha, 12 alpha, 24S,25-pentol was not detected in the bile, it was isolated in the urine of all patients (27%). The only urinary bile acid isolated by high performance liquid chromatography was nor-cholic acid. After 1 month of treatment with chenodeoxycholic acid, 0.75 g/day, chenodeoxycholic acid became the major bile acid in the bile of all patients (71%) along with its metabolite, ursodeoxycholic acid (21%). Cholic acid and 5 beta-cholestane-3 alpha, 7 alpha, 12 alpha, 25-tetrol were drastically reduced and were only 3% each. The excretion of 5 beta-cholestane-pentols in the urine was also drastically reduced from 130 mg/day to 15 mg/day.

Bile↗

Lethal atherosclerosis associated with abnormal plasma and tissue sterol composition in sitosterolemia with xanthomatosis.

Tissue sterol composition was determined in an 18-year-old male with sitosterolemia with xanthomatosis who died suddenly and whose coronary and aortic vessels showed extensive atherosclerosis and, for comparison, in an 18-year-old male with minimal atherosclerosis who died accidently. Sterols in the control tissues (plasma, erythrocytes, cardiac muscle, lung, liver, aorta, and brain) contained cholesterol with only trace amounts of cholestanol. In contrast, sterols in corresponding tissues of the sitosterolemic subject (except brain) were composed of cholesterol, increased amounts of plant sterols, campesterol and sitosterol, and 5 alpha-saturated stanols, cholestanol, 5 alpha-campestanol, and 5 alpha-sitostanol, that were deposited in approximately the same ratio as present in plasma. However, sitosterolemic brain sterol composition resembled that of the control brain with cholesterol and only trace amounts (less than 1%) of cholestanol and phytosterols. The sitosterolemic aorta was extensively atherosclerotic and contained more than twice the quantity of sterols as the control aorta (5.6 mg/g versus 2.6 mg/g) with increased amounts of cholesterol, plant sterols, and 5 alpha-saturated stanols. These results indicate that cholesterol, plant sterols, and 5 alpha-stanols are deposited prematurely and are associated with accelerated atherosclerosis in subjects with sitosterolemia with xanthomatosis.

Adolescent↗

Long-term treatment of cerebrotendinous xanthomatosis with chenodeoxycholic acid.

We studied the effect of chenodeoxycholic acid in 17 patients with cerebrotendinous xanthomatosis. Before treatment, all subjects were symptomatic, with Achilles tendon xanthomas (in 15 of 17), cataracts (in 12 of 17), dementia (in 13 of 17), pyramidal-tract signs (in all 17), cerebellar dysfunction (in 13 of 17), mild peripheral neuropathy (in 7 of 17), electroencephalographic abnormalities (in 10 of 13), and abnormal cerebral computerized axial tomographic scans (in 10 of 12). After at least one year of chenodeoxycholic acid treatment (750 mg per day), dementia cleared in 10 subjects, and pyramidal and cerebellar signs disappeared in 5 and improved in another 8. Peripheral neuropathy was no longer detected in six. The electroencephalogram became normal in five and showed fewer abnormalities in another three subjects. Cerebral computerized axial tomographic scans improved in seven patients; the changes included the disappearance of a cerebellar xanthoma in one case. Concomitantly, mean plasma cholestanol levels declined threefold, and abnormal bile acid synthesis was suppressed. We conclude that long-term therapy with chenodeoxycholic acid may correct the biochemical abnormalities and arrest and possibly reverse the progression of cerebrotendinous xanthomatosis.

Adolescent↗

Substrate specificity of cholylglycine hydrolase for the hydrolysis of bile acid conjugates.

The substrate specificity of cholylglycine hydrolase has been investigated using bile acid conjugates with modifications in the steroid ring system, the side chain, or the amino acid moiety. Epimerization at C-3 and C-7 did not affect the activity of the enzyme while oxidation of the three nuclear hydroxyl groups reduced the affinity of the enzyme toward the substrate. Elongation of the side chain by one or three carbons inhibited enzyme activity. Conjugates prepared from C24 bile acids and analogs of taurine and glycine with one or two methylene groups were effectively hydrolyzed, whereas conjugates with a tertiary amide group completely resisted hydrolysis. Increasing the length of the bile acid side chain or using a bile acid conjugate with a tertiary amide group may produce compounds that will resist intestinal bacterial destruction.

Amidohydrolases↗

Studies of the influence of immunological and serological factors from patients with cholestasis due to alcoholic or viral hepatitis on biliary function in the rat.

Studies were undertaken to determine if cholestasis in alcoholic or viral hepatitis is related to immunologic hyperreactivity as suggested for cholestasis due to type-II drug-induced hepatitis, and evaluate possible mechanisms involved in lymphokine-induced cholestasis. Results indicate that a cholestatic factor exists in alcoholic and acute viral hepatitis. Supernatants of lymphocytes from patients with alcoholic hepatitis stimulated by an extract of alcoholic hyalin evoked a 28% +/- 7.3 SEM reduction in rat bile flow (P less than 0.03). Supernatants of lymphocytes from patients with acute viral hepatitis activated by liver-specific protein caused a reduction in rat bile flow of 24% +/- 5.9 SEM (P less than 0.03). A decrease in bile flow also occurred following injections of sera from patients with alcoholic or acute viral hepatitis. In contrast, injection of supernatants of non-stimulated lymphocytes or those from chronic active hepatitis or healthy subjects did not produce a significant change in bile flow. Supernatants of stimulated lymphocytes from tuberculin-sensitized guinea pigs caused a similar decrease in rat bile flow and reduced excretion of human secretory immunoglobulin A (IgA). Despite reductions in rat bile flow there were no alterations in liver morphology, liver plasma membrane Na-K-ATPase activity, microsomal cholesterol-7 alpha-hydroxylase activity or low-dose indocyanine green clearance during the period of observation.

Adult↗

Comparative effects of cholestanol and cholesterol on hepatic sterol and bile acid metabolism in the rat.

Large amounts of cholestanol, the 5 alpha-dihydro derivative of cholesterol are found in tissues of patients with the rare inherited sterol storage disease cerebrotendinous xanthomatosis. Although small amounts of cholestanol are present in virtually every tissue of normal man, little is known about its metabolism and effect on cholesterol and bile acid formation. The purpose of this study is to investigate the absorption and metabolism of cholestanol and its early effects on hepatic morphology and on the rate-limiting enzymes of cholesterol and bile acid biosynthesis. After 2 wk on a diet supplemented with 2% cholestanol, total liver sterol content increased by 48% (3.26 vs. 2.20 mg/g), and resulted in a significant rise in hepatic cholestanol concentration to 1.4 mg/g. However, cholestanol was less efficiently absorbed from the intestine than cholesterol and interfered with cholesterol absorption. Furthermore, hepatic hydroxymethylglutaryl-coenzyme A (HMG-CoA) reductase activity rose 2.6-fold (from 150.3 to 397.0 pmol/mg per min) during cholestanol feeding, and was associated with a marked proliferation of the smooth endoplasmic reticulum of the centrilobular areas. In addition, significant amounts of allocholic acid (16%) and allochenodeoxycholic acid (5%) were formed from cholestanol and excreted in the bile. These results show that cholestanol is absorbed from the intestine, interferes with cholesterol absorption, and is deposited in the liver. However, in contrast to cholesterol, cholestanol feeding was associated with a marked elevation of HMG-CoA reductase activity. Thus, despite structural similarity between cholesterol and its 5 alpha-saturated derivative, cholestanol does not exert feedback inhibition on hepatic cholesterol biosynthesis.

Animals↗

Synthesis of the putative metabolites of plant sterols: (24R)- and (24S)-24-methyl-5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrols and 24-ethyl-5 beta-cholestane-3 alpha,7 alpha,12 alpha,24 xi-tetrol.

This report describes the synthesis of (24R)- and (24S)-24-methyl-5 beta-cholestane-3 alpha,7 alpha,12 alpha,25-tetrols and 24-ethyl-5 beta-cholestane-3 alpha,7 alpha,12 alpha,24 xi-tetrol starting from cholic acid. The bile alcohols epimeric at C-24 were resolved by analytical and preparative thin-layer chromatography and characterized by gas-liquid chromatography and mass spectrometry. These epimeric bile alcohols may be useful for studying the transformation of beta-sitosterol to cholic acid.

Animals↗

Transformation of 4-cholesten-3-one and 7 alpha-hydroxy-4-cholesten-3-one into cholestanol and bile acids in cerebrotendinous xanthomatosis.

In order to determine whether cholestanol and bile acids are derived from the same precursor, key intermediates of both biosynthetic pathways beyond cholesterol were administered intravenously to a patient with cerebrotendinous xanthomatosis and to a control subject. After pulse-labeling with [4-14C]4-cholesten-3-one and [G-3H]7 alpha-hydroxy-4-cholesten-3-one, cholestanol, cholesterol, and the two primary bile acids, cholic acid and chenodeoxycholic acid were isolated from specimens of bile. Each compound was purified by thin-layer chromatography and conclusively identified by gas-liquid chromatography-mass spectrometry. In other studies, the in vitro formation of 4-cholesten-3-one from cholesterol was measured in hepatic microsomal fractions prepared from a subject with cerebrotendinous xanthomatosis and from 3 control individuals. In all subjects, cholic acid and chenodeoxycholic acid were labeled with tritium, but neither cholesterol nor cholestanol contained this isotope. In contrast, 14C was detected in the cholestanol fraction with trace amounts in chenodeoxycholic acid, cholic acid, and cholesterol. Hepatic microsomes prepared from liver biopsy specimens obtained from a subject with cerebrotendinous xanthomatosis produced three times more 4-cholesten-3-one than the controls. The results indicate that 4-cholesten-3-one was converted primarily into cholestanol and 7 alpha-hydroxy-4-cholesten-3-one into cholic acid and chenodeoxycholic acid. Neither ketonic steroid was transformed into cholesterol. The increased production of cholestanol in cerebrotendinous xanthomatosis may be accounted for by enhanced hepatic formation of 4-cholesten-3-one. 7 alpha-Hydroxy-4-cholesten-3-one is a precursor of bile acids, but not of cholestanol.

Adult↗