Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Cholestanol”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

A novel pathway for biosynthesis of cholestanol with 7 alpha-hydroxylated C27-steroids as intermediates, and its importance for the accumulation of cholestanol in cerebrotendinous xanthomatosis.

A mixture of 7 alpha-3H- and 4-14C-labeled cholesterol was administered intravenously to rats. Cholestanol with 20-30% lower ratio between 3H and 14C than in cholesterol could be isolated from different organs. In a healthy human control, cholestanol isolated from feces had a 3H/14C ratio which was 28% lower than in administered cholesterol. Cholesterol and coprostanol reisolated in these experiments had the same ratio between 3H and 14C as in the precursor. A previously unknown pathway for formation of cholestanol, involving 7 alpha-hydroxylated intermediates, may explain these results. Under normal conditions, this pathway is responsible for at most 30% of the cholestanol synthesized from cholesterol. Intravenous administration of the 7 alpha-3H- and 4-14C-labeled cholesterol to a patient with cerebrotendinous xanthomatosis (CTX) resulted in formation of cholestanol which had 70-75% lower 3H/14C ratio. It is concluded that the novel pathway involving 7 alpha-hydroxylated intermediates is accelerated in patients with CTX. This acceleration may contribute essentially to the accumulation of cholestanol, which is a predominant feature of this disease. 7 alpha-Hydroxycholesterol and 7 alpha-hydroxy-4-cholesten-3-one might be intermediates in the novel pathway to cholestanol. After intravenous administration of 7 beta-3H-labeled 7 alpha-hydroxycholesterol in a patient with CTX, significant amounts of 3H were incorporated into plasma and fecal cholestanol. Only small amounts of 7 alpha-hydroxycholesterol and 7 alpha-hydroxy-4-cholesten-3-one are excreted into the intestine, and we therefore conclude that the 7 alpha-dehydroxylation step mainly occurs in the liver. In CTX, the synthesis of cholestanol may be accelerated because the concentrations of 7 alpha-hydroxylated bile acid intermediates in the liver are increased. A possible mechanism for the conversion of a minor fraction of 7 alpha-hydroxycholesterol into cholestanol is suggested.

Adult↗

Inverse relationship between plasma cholestanol concentrations and bile acid synthesis in sitosterolemia.

We investigated the relationship between plasma cholestanol (5 alpha-dihydrocholesterol) concentrations and the activity and mRNA levels of cholesterol 7 alpha-hydroxylase, the rate-controlling enzyme for bile acid synthesis, in three female sitosterolemic homozygotes. In this lipid storage disease, large amounts of plant sterols and cholestanol accumulate because of hyperabsorption and endogenous synthesis, respectively. Plasma cholestanol concentrations were 14 times greater in the three sitosterolemic homozygotes than the mean for five control subjects. To investigate the cholestanol biosynthetic pathway, tracer doses of two putative precursors, [1,2-3H]4-cholesten-3-one and [4-14C]7 alpha-hydroxycholesterol were injected intravenously into a homozygote, and radioactivity was sought in cholestanol, bile acids, cholesterol, and sitosterol fractions isolated from plasma and bile. Tritium was concentrated only in cholestanol; neither cholesterol, sitosterol nor bile acids were derived from [1,2-3H]4-cholesten-3-one. In contrast, bile acids were labeled exclusively with 14C from [4-14C]7 alpha-hydroxycholesterol; no 14C radioactivity was detected in cholestanol. Mathematical analysis of specific activity versus time curves for [3H]cholestanol revealed very slow decay, large exchangeable pools, and enhanced synthesis in the sitosterolemic homozygote. Measurements of cholesterol 7 alpha-hydroxylase activity were 39% lower in whole liver microsomes from three sitosterolemic homozygotes that contained 19% plant sterols as compared to the mean value for six control microsomal specimens that contained 0.1% plant sterols. Removal of the excess plant sterols from the microsomes, in vitro, normalized microsomal cholesterol 7 alpha-hydroxylase activity in the homozygotes but did not affect enzyme activity in the controls. Equal amounts of cholesterol 7 alpha-hydroxylase mRNA were detected in the livers of both control and sitosterolemic subjects. Bile acid malabsorption after ileal bypass surgery stimulated cholesterol 7 alpha-hydroxylase activity 78% in sitosterolemic whole liver microsomes and reduced plasma cholesterol, sitosterol, and cholestanol levels 61%, 55% and 91%, respectively, producing a pronounced decrease in the cholestanol/cholesterol ratio without changing the sitosterol/cholesterol ratio. These results demonstrate that increased cholestanol is synthesized from 4-cholesten-3-one and not 7 alpha-hydroxycholesterol in sitosterolemia. Enhanced pools and plasma concentrations are related inversely to hepatic cholesterol 7 alpha-hydroxylase activity. Competitive inhibition of cholesterol 7 alpha-hydroxylase by the large microsomal plant sterol pool diverts cholesterol into cholestanol. Alternatively, stimulating cholesterol 7 alpha-hydroxylase activity after ileal bypass surgery markedly diminished plasma cholestanol levels.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Cholestanol induces apoptosis of cerebellar neuronal cells.

Cerebrotendinous xanthomatosis (CTX) is a hereditary lipid storage disease characterized by hyper-cholestanolemia, cerebellar ataxia, xanthoma, and cataract. We hypothesized that cholestanol in serum of CTX patients might induce neuronal cell death in the cerebellum and eventually lead to cerebellar ataxia. To gain support for this hypothesis we developed hyper-cholestanolemia rats by feeding cholestanol. Neuronal cells, especially Purkinje cells in the cerebellum were stained by Sudan black B only in the cholestanol-fed rats, indicating the deposit of cholestanol in cerebellum. To examine effects of cholestanol in vitro, cerebellar neuronal cells were cultured with cholestanol. The cholestanol concentration increased and the viability decreased in cells cultured with cholestanol. Apoptosis was evident in cells cultured with cholestanol more frequently than in control cells, determined using the terminal deoxynucleotidyl transferase (TdT) dUTP nick end-labeling (TUNEL) method. As activities of interleukin-1beta-converting enzyme (ICE) and CPP32 protease were increased in cells cultured with cholestanol, all these data taken together suggest that cholestanol induced apoptosis of cerebellar neuronal cells. Our observations may explain the mechanism of cerebellar ataxia of CTX patients.

Animals↗

The metabolism of cholestanol in primary biliary cirrhosis.

BACKGROUND/AIMS: The concentration of serum cholestanol, a 5 alpha-saturated derivative of cholesterol, is increased in primary biliary cirrhosis proportionally to impaired liver function for unknown reasons. The purpose of this study was to analyze serum cholestanol level and its biliary and fecal elimination, and relate the results to cholesterol absorption and metabolism. METHODS: Sixteen patients with primary biliary cirrhosis and 44 non-primary biliary cirrhosis controls were studied. Squalene and non-cholesterol sterols were analyzed by gas-liquid chromatography, cholesterol absorption by the peroral double-isotope continuous feeding method, and neutral and acidic sterols in bile and feces by gas-liquid chromatography. RESULTS: In primary biliary cirrhosis, the mean level of serum cholesterol was normal, but the cholestanol/cholesterol proportion was increased 4-fold, and the proportion was related to the serum bile acid and bilirubin levels. The mean biliary cholestanol proportion and the biliary secretion rate were increased 5- and 2-fold, respectively, suggesting that at low cholestanol absorption cholestanol synthesis was increased. Calculated clearance of serum cholestanol into bile was decreased. The fecal output was within the control limits, so that intestinal cholestanol production was lowered in primary biliary cirrhosis. In addition, serum and biliary plant sterol proportions were increased in primary biliary cirrhosis, but their biliary secretion was unchanged, while those of cholesterol, bile acids, phospholipids, and cholesterol precursor sterols were markedly reduced. CONCLUSIONS: We conclude that an enhanced cholestanol synthesis and a cholestasis-induced decrease in biliary clearance of serum cholestanol contribute to the excessively high serum cholestanol level in primary biliary cirrhosis. In addition, reduced bile acid synthesis may contribute to the increased serum cholestanol content.

Absorption↗

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↗

Plasma and biliary cholestanol related to steroid metabolism in familial hypercholesterolemia patients with and without ileal exclusion.

Plasma cholestanol is increased in cerebrotendinous xanthomatosis and in sitosterolemia with xanthomatosis. We measured plasma and biliary cholestanol in heterozygous familial hypercholesterolemia patients with (n = 10) and without (n = 12) ileal exclusion. In the unoperated patients plasma cholestanol concentration (12.9 mumol/l) and content (1.2 mmol/mol cholesterol) were slightly higher than in the nonhypercholesterolemic control subjects studied by us. Ileal exclusion had lowered plasma cholestanol concentration but only in proportion to the lowering of plasma cholesterol concentration, and plasma cholestanol content (mmol/mol cholesterol) was similar in the operated and unoperated subjects. Plasma and biliary cholestanol contents were positively associated. In the unoperated patients the fractional cholesterol absorption and plasma plant sterols, also reflecting sterol absorption, were positively correlated with plasma cholestanol content. Our study suggests, that plasma cholestanol is slightly elevated in familial hypercholesterolemia and that, in addition to plasma lipoprotein level, sterol absorption is important in the regulation of plasma cholestanol level. Ileal exclusion decreases plasma cholestanol in proportion to the decrement in the plasma cholesterol concentration.

Bile↗

Serum cholestanol and plant sterol levels in relation to cholesterol metabolism in middle-aged men.

Serum cholestanol was studied in relation to fecal cholestanol excretion and cholesterol metabolism in a random middle-aged population of 61 men. The serum concentrations of cholestanol ranged from 1.6 to 10.8 mumol/L and were positively correlated with those of serum total LDL and HDL cholesterol. In terms of millimole per mole of cholesterol, these correlations disappeared; inverse associations were found with VLDL cholesterol and triglyceride levels, the P/S ratio of dietary fat, and the amount of fecal plant sterols, but not with fecal cholestanol. The serum contents of cholestanol (1) were also closely positively associated with those of serum plant sterols (campesterol and sitosterol) and fractional cholesterol absorption, (2) were inversely related to the fecal excretion of neutral sterols and cholesterol synthesis which were measured either by the sterol balance technique or serum cholesterol precursor sterols (desmosterol and lathosterol), and (3) were unrelated to bile acid synthesis. Fecal cholestanol (mean = 12.5 mg/d) was (1) clearly higher than the dietary cholestanol intake (less than 2 mg/d), (2) unrelated to serum cholestanol, and (3) positively correlated with the intestinal cholesterol (dietary plus endogenous) flux as well as fecal plant sterols, neutral sterols, and bacterial products of cholesterol. The study emphasizes that, in normal men, high serum cholestanol levels reflect high efficiency of intestinal sterol absorption and low cholesterol synthesis. Thus, the changes in the serum contents of cholestanol are parallel with those of plant sterols and opposite to those of cholesterol precursor sterols.

Cholesterol↗

Effects of cholestanol feeding and cholestyramine treatment on the tissue sterols in the rabbit.

Rabbits were fed diets enriched with cholestanol or cholesterol (3.5 g/wk) for 4-12 weeks. During cholestanol feeding, the concentration of cholestanol in blood serum, liver, heart and aorta increased 15-30 times. In serum and liver, the concentration of cholesterol also increased. Cholestanol-fed rabbits developed inflammatory changes in the liver, with proliferation of small bile ducts. Liver tests were only slightly abnormal. Morphological atherosclerosis of the aorta was only occasionally seen in rabbits receiving cholestanol for eight weeks or less. During cholesterol feeding, the amounts of cholesterol in different tissues increased dramatically, most in the aorta. Morphological atherosclerosis in the aorta was found in all rabbits fed cholesterol-enriched diets for more than four weeks. Brain cholestanol was doubled in rabbits fed cholestanol for eight weeks, whereas brain sterols did not change significantly during cholesterol feeding. After an additional regression period with cholestyramine for eight weeks, the increased content of cholestanol in the brain was unchanged in cholestanol-fed rabbits. These observations are discussed in relation to the cholestanolosis of the brain that develops in the rare inherited human disease cerebrotendinous xanthomatosis.

Animals↗

Effect of cholestanol feeding on sterol concentrations in the serum, liver, and cerebellum of mice.

In order to elucidate the mechanism of xanthoma formation in cerebrotendinous xanthomatosis, mice were fed for 32 weeks with a diet rich in 5 alpha-cholestan-3 beta-ol (cholestanol) (1%, w/w). The concentrations of sterols in the serum, liver, and cerebellum were determined using high performance liquid chromatography. In the cholestanol-fed mice, the cholestanol concentrations in the serum and liver reached maxima in the first 2 to 4 weeks; the levels were about 30- to 100-fold higher than in the control diet mice. The cholestanol concentrations declined thereafter, finally to 50-60% of the maxima. Cholesterol concentrations were slightly lower in the cholestanol-fed mice throughout the experiments than in the control diet mice. On the other hand, the levels of cholestanol in the cerebellum increased almost linearly in parallel to the feeding time, and no decline was observed. These results suggest that the capacity of the liver to remove or degrade cholestanol was increased by long-term intake of this compound, whereas the cerebellum had no such feed-back regulation. Histological examinations using an electron microscope revealed the enlargement of lysosomal granules in the liver of the cholestanol-fed mice.

Animals↗

Gallstone formation in cholestanol-fed mice.

We examined the effect of cholestanol (5 alpha-dihydrocholesterol) on cholesterol and bile acid metabolism in BALB/c mice. After feeding 1% cholestanol in the diet for 14 months, gallstones composed of 55% cholesterol and 45% cholestanol developed in 20% of the mice and were associated with mucosal inflammation and serosal vessel thickening of the gallbladder. Cholestanol concentrations increased 42-fold in the serum (0.17 versus 0.004 mg/ml) and 18-fold in the liver (0.55 versus 0.03 mg/g) as compared with control mice, whereas cholesterol declined 20 and 26% in serum and liver, respectively. Hepatic microsomal HMG-CoA reductase activity, reflecting cholesterol synthesis, rose 51% (from 7.2 to 10.9 pmol/mg/min). In contrast, hepatic microsomal cholesterol 7 alpha-hydroxylase activity, the rate-determining enzyme for bile acid synthesis, was severely depressed as compared with control mice (0.9 versus 2.2 pmol/mg/min). Discontinuing cholestanol from the diet for 1 month reduced the elevated serum and liver cholestanol concentrations and restored hepatic HMG-CoA reductase and cholesterol 7 alpha-hydroxylase activities to normal. These results demonstrate that cholestanol is absorbed, replaces cholesterol in serum and liver, causes increased cholesterol synthesis, but inhibits bile acid synthesis. The combination of increased cholesterol synthesis with decreased bile acid formation promotes gallstone formation in cholestanol-fed mice.

Animals↗

The metabolism of cholestanol, cholesterol, and bile acids in cerebrotendinous xanthomatosis.

The metabolism of cholesterol and its 5-dihydro derivative, cholestanol, was investigated by means of sterol balance and isotope kinetic techniques in 3 subjects with cerebrotendinous xanthomatosis (CTX) and 11 other individuals. All subjects were hospitalized on a metabolic ward and were fed diets practically free of cholesterol and cholestanol. After the intravenous administration of [1,2-(3)H]cholestanol, the radioactive sterol was transported and esterified in plasma lipoproteins in an identical manner to cholesterol. In these short-term experiments, the specific activity-time curves of plasma cholestanol conformed to two-pool models in both the CTX and control groups. However, cholestanol plasma concentrations, total body miscible pools, and daily synthesis rates were two to five times greater in the CTX than control individuals. The short-term specific activity decay curves of plasma [4-(14)C]cholesterol also conformed to two-pool models in both groups. However, in the CTX subjects the decay was more rapid, and daily cholesterol synthesis was nearly double that of the control subjects. Plasma concentrations and the sizes of the rapidly turning over pool of exchangeable cholesterol were apparently small in the CTX subjects, and these measurements did not correlate with the large cholesterol deposits found in tendon and tuberous xanthomas. Despite active cholesterol synthesis, bile acid formation was subnormal in the CTX subjects. However, bile acid sequestration was accompanied by a rise in plasma cholestanol levels and greatly augmented fecal cholestanol outputs. In contrast, the administration of clofibrate lowered plasma cholesterol levels 50% and presumably reduced synthesis in the CTX subjects. Plasma cholesterol concentrations and fecal steroid excretion did not change significantly during this therapy. These findings indicate that the excessive tissue deposits of cholesterol and cholestanol that characterize CTX were associated with hyperactive neutral sterol synthesis. The demonstration of subnormal bile acid formation suggests that defective bile acid synthesis may predispose to the neutral sterol abnormalities.

Adult↗

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↗

Combined treatment with chenodeoxycholic acid and pravastatin improves plasma cholestanol levels associated with marked regression of tendon xanthomas in cerebrotendinous xanthomatosis.

We studied the effect of chenodeoxycholic acid (CDCA) and a competitive HMG-CoA reductase inhibitor, pravastatin, on clinical symptoms and sterol metabolism in a 36-year-old Japanese man with cerebrotendinous xanthomatosis (CTX). He had marked tendon xanthomas and mild dementia, with obvious electroencephalographic (EEG) abnormalities. He was treated for 2 years with CDCA alone (0.6 g/d) and then for a further year with the combination of pravastatin (10 mg/d) and CDCA (0.6 g/d). For the following year, he was given pravastatin alone, and then was returned to combined treatment again. The plasma cholestanol level before treatment was 3.12 mg/dL, which was 20 times above the control level. After CDCA alone, the plasma cholestanol was reduced to 1.96 mg/dL, and this was further reduced to 0.92 mg/dL by combination therapy with CDCA and pravastatin. However, after the discontinuation of CDCA, his cholestanol levels returned to the pretreatment levels despite the continuing of pravastatin treatment. When the combination therapy was restarted, his cholestanol level was once again markedly reduced. His clinical symptoms showed a close association with the plasma cholestanol level; the xanthomas regressed remarkably and the mental retardation improved in association with normalization of EEG findings during treatment with CDCA alone or in combination with pravastatin. However, during treatment with pravastatin alone, his tendon xanthomas enlarged again and slow waves reappeared on the EEG. Because inhibition of cholesterol synthesis by treatment with the HMG-CoA reductase inhibitor alone was not effective in causing a reduction of cholestanol, the increase in plasma cholestanol levels in CTX may not have been solely due to increased cholesterol synthesis.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Cholestanol induces apoptosis of corneal endothelial and lens epithelial cells.

PURPOSE: To determine whether cholestanol induces cornea endothelial and lens epithelial cell death in vitro. METHODS: Cornea endothelial and lens epithelial cells were cultured in minimum essential media with 10% fetal bovine serum containing 10 microg/ml cholesterol in ethanol, 10 microg/ml cholestanol in ethanol, or 1% ethanol. These cells, stained using the terminal deoxynucleotidyl transferase (TdT) dUTP nick-end labeling (TUNEL) method, were analyzed by laser cytometer. The activities of ICE and CPP32 proteases in cells were also measured. RESULTS: Both cornea endothelial and lens epithelial cells cultured with 10 microg/ml cholestanol showed a significant loss of viability. The nuclei of these cells cultured with 10 microg/ml cholestanol were more frequently stained than those exposed to 10 microg/ml cholesterol or 1% ethanol. Quantitative analysis of apoptotic DNA fragmentation confirmed that the cholestanol induced apoptosis of these cells in a time-dependent manner. The activities of interleukin-1beta-converting enzyme (ICE) and CPP32 proteases for cells cultured with 10 microg/ml cholestanol were significantly higher than those observed in control cells. CONCLUSIONS: In vitro, cholestanol was taken up by corneal endothelial cells and lens epithelial cells, an event that led to apoptosis of these cells.

Animals↗

Biosynthesis of cholestanol from bile acid intermediates in the rabbit and the rat.

Biliary 7 alpha-hydroxy-4-cholesten-3-one (an intermediate in bile acid biosynthesis) may be 7 alpha-dehydroxylated in the gut and further metabolized to cholestanol (Skrede, S., and Björkhem, I. (1982) J. Biol. Chem. 257, 8363-8367). We have now evaluated the quantitative importance of pathway(s) to cholestanol with 7 alpha-hydroxylated C27 steroids as intermediates. After feeding conventionally fed rabbits or rats or germ-free rats with [7 alpha-3H]cholesterol and [4-14C]cholesterol, tissue cholestanol could be isolated with about a 20% lower 3H/14C ratio than present in cholesterol. We conclude that there is a pathway to cholestanol involving 7 alpha-hydroxylated intermediates. Intestinal microorganisms are not essential for this pathway, which accounts for at most 20% of the cholestanol formed in these species. In bile fistula rats, there was also a significant conversion of intraperitoneally injected [7 beta-3H]7 alpha-hydroxycholesterol and [4-14C]7 alpha-hydroxy-4-cholesten-3-one into cholestanol. The enzymes involved in the 7 alpha-hydroxylation/dehydroxylation pathway for the biosynthesis of cholestanol are probably located in the liver. Both 7 alpha-hydroxycholesterol and 7 alpha-hydroxy-4-cholesten-3-one may be intermediates.

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↗

On the structural specificity in the regulation of the hydroxymethylglutaryl-CoA reductase and the cholesterol-7 alpha-hydroxylase in rats. Effects of cholestanol feeding.

The effect of feeding 2% cholestanol or cholesterol on cholesterol-7 alpha-hydroxylase activity and hydroxymethylglutaryl (HMG)-CoA reductase activity was studied in rats. The rate of 7 alpha-hydroxylation of a trace amount of labelled cholesterol increased by about 80% after the cholestanol feeding, whereas the 7 alpha-hydroxylation of endogenous microsomal cholesterol increased by about 40%. The latter conversion was measured with an accurate technique based on isotope dilution-mass spectrometry. After cholesterol feeding, the corresponding figures were about 50 and 60%, respectively. The cholestanol feeding had no significant effect on the HMG-CoA reductase activity, whereas the cholesterol feeding decreased the activity by about 80%. From the results obtained, it is concluded that the increased 7 alpha-hydroxylation observed after cholesterol feeding can not be explained only by a simple expansion of the substrate pool. The similar effect of both cholesterol and cholestanol on the cholesterol 7 alpha-hydroxylase activity and the diverging effect on the HMG-CoA reductase activity show that there is no coupling between cholesterol synthesis and degradation under the conditions employed. The lack of effect of cholestanol on the HMG-CoA reductase activity indicates a high structural specificity of the receptor involved in regulation of the enzyme. If a receptor mechanism is involved in the stimulation of the cholesterol-7 alpha-hydroxylase by cholesterol and cholestanol, these receptor(s) must be different from those involved in the regulation of the HMG-CoA reductase.

Animals↗

Effects of cholestanol feeding on corneal dystrophy in mice.

A cholestanol-enriched diet administered for 8 months to BALB/c mice produced in 20% two kinds of corneal opacities resembling calcific band keratopathy and Schnyder's crystalline dystrophy in humans. The concentrations of cholestanol in serum, liver and cornea of the corneal opacity bearing mice were 30-40-times higher than those of normal mice. On the other hand, brain cholestanol level increased only 7-times in the opacity group as compared with that of control group. There was no significant difference in the cholesterol concentrations of serum and several tissues among opacity, non-opacity and the control group. The crystal particles were observed between epithelial basement membrane and superficial stroma by the electron microscopy. Energy dispersive analysis of the particles revealed that the deposits were composed principally of calcium and phosphorus with other crystalline materials, which was presumed to be cholestanol. These results suggest that the cholestanol may deposit in the cornea from elevated serum levels. Deposition of cholestanol in cornea and related area may be a cause of corneal dystrophy in CTX.

Animals↗