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Bile acid synthesis in man. II. Determination of 7 alpha-hydroxycholesterol, (22R)-22-hydroxycholesterol, and 26-hydroxycholesterol in human meconium.

7 alpha-Hydroxycholesterol, (22R)-22-hydroxycholesterol and 26-hydroxycholesterol have been quantitated in human meconium. The method used tetrahydrofuran for extraction and solvolysis of the sulfate esters, liquid partition chromatography for the separation of the hydroxysterols, gas-liquid chromatography for quantitation, gas-liquid chromatography-mass spectrometry for identification, and tritiated and 14C-labeled tracers for overall recovery standards. (22R)-22-Hydroxycholesterol and 26-hydroxycholesterol were present almost entirely, ( greater than 93%) in the sulfate fraction at concentrations of 3.8-6.4 and 0.4-0.8 mg per 100 g meconium, respectively. Since free tritiated (22R)-22-hydroxycholesterol was used as the tracer to assess recovery of this hydroxysterol, the concentrations found for this compound may be minimal. Tritiated 26-hydroxycholesterol 3,26-disulfate was used as tracer to determine the levels of this compound, and the solvolysis procedure was optimized for recovery of 26-hydroxycholesterol and least decomposition of 7 alpha-hydroxycholesterol. No significant amounts of 7 alpha-hydroxycholesterol were found based on the tracer-free hydroxysterol as recovery standard.

Cholesterol

Bile acid synthesis in man: metabolism of 7 -hydroxycholesterol- 14 C and 26-hydroxycholesterol- 3 H.

The pathways of bile acid synthesis in man were evaluated by studying the metabolism of 7alpha-hydroxycholesterol-4-(14)C and 26-hydroxycholesterol-16, 22-(3)H administered parenterally to individuals requiring external biliary drainage. Techniques for the identification of metabolites were thin-layer chromatography, column chromatography, gas-liquid chromatography with stream splitting, and crystallization to constant specific activity. It was found that both compounds were rapidly metabolized to bile acids and excreted in bile. Of the total radioactivity recovered in bile as bile acids, 87% of the 26-hydroxycholesterol-(3)H and 90% of the 7alpha-hydroxycholesterol-(14)C was found to be metabolized to both chenodeoxycholate and cholate. Compared to 7alpha-hydroxycholesterol, a greater proportion of 26-hydroxycholesterol was found to be metabolized to chenodeoxycholate. These findings indicate that both 7alpha-hydroxycholesterol and 26-hydroxycholesterol can be intermediates in the metabolism of cholesterol to bile acids in man. The observation that conversion to cholate takes place less readily after C-26 hydroxylation is consistent with previous findings in other species.

Autoradiography

Sterol synthesis in variant Chinese hamster lung cells selected for resistance to 25-hydroxycholesterol. Cross-resistance to 7-ketocholesterol, 20alpha-hydroxycholesterol, and serum.

Two lines of Chinese hamster lung (Dede) cells which are resistant to the killing effect of 25-hydroxycholesterol, and which grow to confluence in its presence, have been isolated. One of the resistant lines exhibited a high to normal growth rate and normal levels of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase (mevalonate:NADP+ oxidoreductase (CoA-acylating), EC 1.1.1.34) activity and sterol synthesis in the presence of concentrations of 25-hydroxycholesterol that caused nearly complete suppression of these functions in wild type cells. The other variant line showed partial resistance to the inhibitory effects of the diol upon cell growth, sterol synthesis, and HMG-CoA reductase activity. The resistant phenotypes remained stable when the cells were maintained in the absence of the selecting agent. The Km (HMG-CoA), thermal stability, and susceptibility to inhibition by Mg2+ and ATP of HMG-CoA reductase were unaltered in both of the resistant lines. The two lines selected for growth in the presence of 25-hydroxycholesterol were also resistant to the inhibitory effects of 7-ketocholesterol, 20alpha-hydroxycholesterol, and serum upon HMG-CoA reductase and sterol synthesis, suggesting that suppression of cholesterol synthesis by these inhibitors involves a common step.

Biological Transport

Mass spectrometric study of the enzymatic conversion of cholesterol to (22R)-22-hydroxycholesterol, (20R,22R)-20,22-dihydroxycholesterol, and pregnenolone, and of (22R)-22-hydroxycholesterol to the lgycol and pregnenolone in bovine adrenocortical preparations. Mode of oxygen incorporation.

Incubation of cholesterol with a bovine adrenocortical mitochondrial acetone-dried powder preparation yielded (22R)-22-hydroxycholesterol (I), (20R,22R)-20,22-dihydroxycholesterol(II), and pregnenolone (III) which were conclusively identified by combined gas chromatography-mass spectrometry. Incubations with [4-14C]cholesterol yielded I, II, and III with specific activities (determined from partial mass-spectral scans) not significantly different from those of the used substrate or the cholesterol reisolated after the incubation, demonstrating that the isolated compounds arose mostly, if not entirely, from the substrate cholesterol. Incubations in an 18O-enriched atmosphere yielded I, II, and III with 18O at position C-22, C-20 and C-22, and C-20, respectively, providing evidence that the hydroxyl groups of the side chain of I and II and the C-20 oxygen atom of III originated from molecular oxygen. The distribution of the oxygen atoms in II after incubation with 18O2 and 16O2 (devoid of 16O18O) proved that the hydroxyl groups of the side chain of II were introduced from two different molecules of oxygen, consistent with a sequential hydroxylation of cholesterol. No (20S)-20-hydroxycholesterol was found. Incubation of I in an 18O-enriched atmosphere afforded II and III with 18O at C-20.

Adrenal Cortex

Hydroxycholesterols in serum from hypercholesterolaemic patients with and without bile acid sequestrant therapy.

To assess the effect of bile acid sequestrant therapy on bile acid precursors in plasma, we determined hydroxycholesterols in serum from patients with primary hypercholesterolaemia. Compared with a group of 5 male and 12 female patients without any lipid-lowering drug therapy, which has normal to slightly elevated 7 alpha-hydroxycholesterol, normal 7 beta-hydroxycholesterol and high normal to elevated 26-hydroxycholesterol levels, a group of 5 male and 9 female patients, using colestipol had higher 7 alpha-hydroxycholesterol without overlap, and higher 7 beta-hydroxycholesterol levels, but similar levels of 26-hydroxycholesterol. In the latter group, the ratio between 7 alpha-hydroxycholesterol and total cholesterol in serum was also higher without overlap. Both groups did not differ for age, body weight, body mass index and serum lipid levels. In the group of patients without lipid-lowering drug therapy, 7 alpha-hydroxycholesterol correlated positively with total and low-densitylipoprotein cholesterol, 7 beta-hydroxycholesterol negatively with body weight and body mass index, and 26-hydroxycholesterol positively with body weight. In both groups, 7 alpha-hydroxycholesterol correlated positively with 7 beta-hydroxycholesterol. These results suggest that (1) bile acid sequestrants enhance bile acid synthesis via the 7 alpha-hydroxylation but not via the 26-hydroxylation pathway, (2) serum 7 alpha-hydroxycholesterol level and the ratio between this hydroxycholesterol and total cholesterol in serum might be suitable parameters to check intake of bile acid sequestrants irrespective of dose, and (3) 7 beta-hydroxycholesterol is unlikely to be the result of cholesterol auto-oxidation in vitro.

Adult

Characteristics of cholesterol 7 alpha-hydroxylase and 7 alpha-hydroxycholesterol hydroxylase activities of rodent liver.

A second cholesterol-derived metabolite in addition to 7 alpha-hydroxycholesterol was observed to be produced from endogenous microsomal cholesterol in the presence of hamster liver microsomal fractions and NADPH, when analyzed by HPLC using the method of Ogishima and Okuda (Anal Biochem 158: 228-232, 1986). However, only 7 alpha-hydroxycholesterol was produced in the presence of rat hepatic microsomal protein fractions and NADPH. The second metabolite was facilely produced when endogenous 7 alpha-hydroxycholesterol was incubated with hamster liver microsomes and NADPH, but not with rat liver microsomes. The second metabolite derived from either endogenous cholesterol or exogenous 7 alpha-hydroxycholesterol contained three hydroxyl groups as shown by mass spectrometric analysis. After oxidation of the 3 beta-ol group by cholesterol oxidase, the metabolite comigrated with 7 beta-hydroxycholest-3-one on normal phase HPLC, but was resolved from both 7 alpha- and 7 beta-hydroxycholest-3-one on reverse phase HPLC. The data indicate that the second metabolite is a hydroxylated product of 7 alpha-hydroxycholesterol, possibly cholest-5-ene-3 beta,7 alpha, 12 alpha-triol. Cholestyramine feeding increased production of both 7 alpha-hydroxycholesterol and its metabolite from endogenous cholesterol by 3-fold in hamster liver microsomes in vitro. However, the direct conversion of 7 alpha-hydroxycholesterol to the metabolite by hamster liver microsomes was not increased appreciably after cholestyramine feeding (20-30%). The hydroxylation of 7 alpha-hydroxycholesterol was similar in characteristics to cholesterol 7 alpha-hydroxylase activity in that it was dependent on NADPH, was inhibited by several known P450 inhibitors, and was affected by an inhibitory autobody elicited against rat hepatic NADPH: cytochrome P450 oxidoreductase. 5,6- and 7,8-Benzoflavone were poor inhibitors (IC50 approximately 1 mM) of cholesterol 7 alpha-hydroxylase activity in liver microsomes from cholestyramine-fed rats, but caused a striking enhancement of the 7 alpha-hydroxylase activity of liver microsomes from untreated rats in vitro. In contrast, 7,8-benzoflavone inhibited cholesterol 7 alpha-hydroxylase and 7 alpha-hydroxycholesterol hydroxylase activities of microsomes from normal and cholestyramine-fed hamsters. However, 5,6-benzoflavone stimulated cholesterol 7 alpha-hydroxylase activity in liver microsomes from normal and cholestyramine-fed hamsters, but inhibited 7 alpha-hydroxycholesterol hydroxylase activity by approximately 50%. These results suggest that hepatic cholesterol 7 alpha-hydroxylase and 7 alpha-hydroxycholesterol hydroxylase activities apparently involve multiple forms of cytochrome P450 in untreated and cholestyramine-treated hamsters.

Animals

Esterified and total 7 alpha-hydroxycholesterol in human serum as an indicator for hepatic bile acid synthesis.

Serum levels of 7 alpha-hydroxycholesterol and activities of hepatic microsomal cholesterol 7 alpha-hydroxylase in surgical patients were analyzed by capillary gas-liquid chromatography-selected ion monitoring technique using a new internal standard, 5 alpha-cholestane-3 beta, 7 beta-diol. We found that concentrations of 7 alpha-hydroxycholesterol obtained after alkaline hydrolysis were higher than those without alkaline hydrolysis, indicating that a considerable amount of 7 alpha-hydroxycholesterol in human serum is present in esterified form. Esterified 7 alpha-hydroxycholesterol could also be quantitatively hydrolyzed with cholesterol esterase, suggesting that fatty acid is bound at the 3 beta-position of the cholestenediol. The serum levels of esterified and free 7 alpha-hydroxycholesterol in patients with cholelithiasis were 198.0 +/- 90.3 and 48.3 +/- 19.8 pmol/ml (mean +/- SD), respectively, and were similar to those in patients without hepatobiliary diseases. After treatment with chenodeoxycholic acid (300 mg per day) for 7 to 10 days, esterified and free 7 alpha-hydroxycholesterol levels decreased to 64.9 +/- 33.6 and 20.5 +/- 11.1 pmol/ml, respectively. Activity of cholesterol 7 alpha-hydroxylase was also inhibited. Treatment with ursodeoxycholic acid (600 mg per day) for 7 to 10 days had no inhibitory effect on serum 7 alpha-hydroxycholesterol levels and the enzyme activity. In all groups, high correlations were found between the activity of cholesterol 7 alpha-hydroxylase and serum levels of 7 alpha-hydroxycholesterol: free (r = 0.71, n = 38, P less than 0.001); esterified (r = 0.87, n = 38, P less than 0.001); total (r = 0.87, n = 38, P less than 0.001). Esterified and total 7 alpha-hydroxycholesterol was more highly correlated with the enzyme activity than the free form. We conclude that a significant amount of 3 beta-acyl esters of 7 alpha-hydroxycholesterol is present in human serum and that serum levels of esterified and/or total 7 alpha-hydroxycholesterol are likely to reflect the activity of hepatic cholesterol 7 alpha-hydroxylase and thus the amount of primary bile acids synthesized in the liver.

Adult

Regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase activity in avian myeloblasts. Mode of action of 25-hydroxycholesterol.

25-Hydroxycholesterol inhibits cholesterol biosynthesis by inhibiting the activity of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase. Addition of 25-hydroxycholesterol to chicken myeloblasts caused a rapid inhibition of HMG-CoA reductase activity, producing approximately an 80% decrease in enzyme activity after 60 min. The mode of action of 25-hydroxycholesterol was determined by immunoprecipitating radiolabeled enzyme from 25-hydroxycholesterol-treated myeloblasts. The decline in enzyme activity due to addition of 25-hydroxycholesterol was not associated with increased levels of [32P]PO4 incorporation into the immunoprecipitated reductase polypeptide (Mr = 94,000). Hence, 25-hydroxycholesterol did not appear to regulate reductase activity by enzyme phosphorylation, as observed for other modulators of HMG-CoA reductase. However, 25-hydroxycholesterol was shown to inhibit reductase activity by causing a 350% increase in the relative rate of reductase degradation and a 72% decrease in the relative rate of reductase synthesis. These alterations in the rates of degradation and synthesis occurred rapidly (within 10-30 min after addition of 25-hydroxycholesterol) and can account completely for the 25-hydroxycholesterol-induced inhibition of enzyme activity. The rapid decline in the rate of synthesis of HMG-CoA reductase in 25-hydroxycholesterol-treated cells was not associated with concomitant changes in the levels of reductase mRNA; therefore, suggesting that 25-hydroxycholesterol must inhibit the rate of reductase synthesis by translational regulation. We also present evidence that mRNA purified from chicken myeloblasts codes for two reductase polypeptides of Mr = 94,000 and 102,000.

Animals

Activation of the silent endogenous cholesterol-7-alpha-hydroxylase gene in rat hepatoma cells: a new complementation group having resistance to 25-hydroxycholesterol.

The oxysterol 25-hydroxycholesterol acts both as a regulatory sterol determining the expression of genes governed by sterol regulatory elements and as a substrate for 7-alpha-hydroxylase, the first and rate-limiting enzyme in the bile acid synthetic pathway. Most wild-type nonhepatic cells are killed by the cytotoxic action of 25-hydroxycholesterol. In contrast, liver cells, which express 7-alpha-hydroxylase activity, are resistant to killing by 25-hydroxycholesterol. We examined the possibility that selection for resistance to 25-hydroxycholesterol might lead to the derivation of a cell line expressing 7-alpha-hydroxylase. A rat hepatoma cell line (7-alpha-hydroxylase minus) was transfected with human DNA and screened for resistance to 25-hydroxycholesterol. Although parental hepatoma cells were all killed within a week, a 25-hydroxycholesterol-resistant cell line (L35 cells) which showed stable expression of 7-alpha-hydroxylase activity and mRNA was obtained. These cells exhibited normal inhibition of cholesterol biosynthesis by 25-hydroxycholesterol. Blocking 7-alpha-hydroxylase activity with ketoconazole also blocked the resistance of L35 cells to 25-hydroxycholesterol. Isolation of microsomes from these cells showed levels of 7-alpha-hydroxylase activity (22.9 pmol/min/mg of protein) that were comparable to the activity (33.2 pmol/min/mg) of microsomes isolated from the livers of rats killed during the high point of the diurnal cycle. Parental cells had no detectable activity. These data show a new complementation group for 25-hydroxycholesterol resistance: expression of 7-alpha-hydroxylase. Dexamethasone increased both the activity and the cellular content of mRNA coding for 7-alpha-hydroxylase. Since dactinomycin blocked the ability of dexamethasone to induce mRNA, active transcription is required. Southern analysis of genomic DNA showed that L35 cells contain the rat (endogenous) gene but not the human gene. Furthermore, the RNA expressed by L35 cells is similar in size to rat RNA and is distinct from the human form of 7-alpha-hydroxylase. The combined data indicate that L35 cells are resistant to 25-hydroxycholesterol because they express 7-alpha-hydroxylase. The mechanism responsible involves activation of the endogenous (silent) gene of the parental rat hepatoma cell.

Animals

Cholesterol side-chain cleavage by mitochondria from the human placenta. Studies using hydroxycholesterols as substrates.

The side-chain cleavage of cholesterol by cytochrome P-450scc in mitochondria from the human placenta was studied using hydroxycholesterol substrates and intermediates of the reaction. 25-Hydroxycholesterol inhibited 3 beta-hydroxy-5-pregnen-20-one (pregnenolone) production by placental mitochondria. It was converted to pregnenolone at a maximum velocity of only 19% of that for cholesterol. Addition of 20 alpha-hydroxycholesterol or 22R-hydroxycholesterol to placental mitochondria caused a lag in pregnenolone synthesis which was concentration dependent. Measurement of the concentration of 20 alpha,22R-dihydroxycholesterol during incubation of placental mitochondria with 22R-hydroxycholesterol revealed that the lag in pregnenolone production was caused by accumulation of 20 alpha,22R-dihydroxycholesterol. This intermediate of the reaction dissociated from the active site of cytochrome P-450scc. Only after its concentration had increased, presumably to a level where it could compete with 22R-hydroxycholesterol for binding to cytochrome P-450scc, was it converted to pregnenolone. These results indicate a lack of kinetic stabilization of the cytochrome P-450scc-20 alpha,22R-dihydroxycholesterol complex with dissociation occurring more rapidly than the final hydroxylation. Similar measurements of side-chain cleavage of 22R-hydroxycholesterol by mitochondria from the bovine adrenal cortex showed that kinetic stabilization of the cytochrome P-450scc-20 alpha,22R-dihydroxycholesterol complex does not occur in that tissue either. The relative hydroxylation rates of 20 alpha-hydroxycholesterol, 22R-hydroxycholesterol and 20 alpha,22R-dihydroxycholesterol indicate that all three hydroxylations catalysed by human cytochrome P-450scc occur at approximately the same rate.

Animals

26-hydroxycholesterol-stimulated DNA synthesis in smooth muscle cells and induction of endothelial injury using a coculture technique.

We investigated the effects of 0.5, 2.5, and 10 micrograms/ml of cholesterol or 26-hydroxycholesterol on bovine aortic ECs and SMCs. Suppression of viable cell density and cytotoxic changes in both cells were induced by 2.5 and 10 micrograms/ml 26-hydroxycholesterol. ECs were more severely damaged than SMCs in the presence of 26-hydroxycholesterol. Levels of up to 10 micrograms/ml cholesterol had no effect on ECs or SMCs growth or cytotoxicity. Confluent ECs exposed to 2.5 or 10 micrograms/ml of 26-hydroxycholesterol secreted significant amounts of 6-ketoprostaglandin F1 alpha after a 24-hr incubation. An equivalent concentration of cholesterol had no such effect. SMCs cocultured with ECs exposed to 10 micrograms/ml 26-hydroxycholesterol, when compared with an equivalent level of cholesterol, synthesized DNA in significantly greater amounts during a 24-hr incubation. The cocultured ECs incubated in the presence of 2.5 and 10 micrograms/ml 26-hydroxycholesterol were partially detached due to cell death. However, no difference was observed in the DNA content of SMCs cultured without ECs in the presence of cholesterol or 26-hydroxycholesterol. The results suggest that 26-hydroxycholesterol produced not only cytotoxicity to ECs and SMCs but also stimulated DNA synthesis in SMCs through endothelial injury.

Animals

Regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase synthesis in Syrian hamster C100 cells by mevinolin, 25-hydroxycholesterol, and mevalonate: the role of posttranscriptional control.

C100 is a baby hamster kidney cell line that expresses high levels of HMG-CoA reductase relative to its parental cell line SV28. In this study the effects of the oxysterol 25-hydroxycholesterol and mevalonate on the mRNA level and rate of synthesis for HMG-CoA reductase were evaluated in C100 cells treated with mevinolin, a competitive inhibitor of HMG-CoA reductase. The addition of 25-hydroxycholesterol to the cell culture medium resulted in a fourfold decrease in both the rate of synthesis and mRNA level for HMG-CoA reductase. Mevalonate at a concentration of 0.4 mM, when added to mevinolin-treated C100 cells, produced no apparent reduction in HMG-CoA reductase mRNA levels and only a small (25%) decline in HMG-CoA synthesis. Mevalonate (0.4 mM) added to 25-hydroxycholesterol-treated cells resulted in no further reduction in the HMG-CoA reductase mRNA level when compared to cells treated with 25-hydroxycholesterol alone, but produced an additional 30-fold decrease in the rate of HMG-CoA reductase synthesis. Degradation of HMG-CoA reductase was rapid in the presence (t1/2 = 1.34 h) or absence (t1/2 = 1.17 h) of mevinolin and was not changed significantly by adding either 25-hydroxycholesterol, alone (t1/2 = 1.30 h) or both 25-hydroxycholesterol and mevalonate (t1/2 = 1.30 h) to mevinolin-treated cells. This study demonstrates that mevalonate and 25-hydroxycholesterol act synergistically in the presence of mevinolin to achieve a greater degree of suppression in the rate of HMG-CoA reductase synthesis than can be accounted for by their individual effects on HMG-CoA reductase mRNA. In addition, the data suggest that mevalonate affects the synthesis of HMG-CoA reductase at a yet unidentified posttranscriptional control site.

Amino Acid Sequence

Determination of some hydroxycholesterols in human serum samples.

The simultaneous determination of some hydroxycholesterols in human serum samples is described. The procedure is based on hydrolysis and extraction of these compounds in serum samples, followed by removal of especially cholesterol (making use of reversed-phase high-performance liquid chromatography) and derivatization of the purified compounds to their trimethylsilyl ethers and subsequent gas chromatography using flame ionization detection. Serum levels of 7 alpha-hydroxycholesterol, 7 beta-hydroxycholesterol and 26-hydroxycholesterol were determined in several groups of patients: normals, untreated patients suffering from cerebrotendinous xanthomatosis, patients suffering from cerebrotendinous xanthomatosis and treated with either chenodeoxycholic acid or cholic acid in an effective dose, patients suffering from cerebro-hepato-renal syndrome, patients suffering from hypercholesterolemia and treated with cholestyramine for prolonged periods and one patient presumed to be suffering from an inborn error of metabolism in bile acid synthesis. It can be concluded that the 7 alpha-hydroxycholesterol concentration in serum is a good parameter for establishing disorders involving the metabolic conversion of 7 alpha-hydroxycholesterol towards bile acids. In addition, 26-hydroxycholesterol levels in patients suffering from cerebrotendinous xanthomatosis are beyond detectable limits, even during treatment with bile acids in an effective dose, whereas in all other conditions this compound is substantially present.

Chromatography, Gas

Cholesterol and bile acid synthesis in Hep G2 cells. Metabolic effects of 26- and 7 alpha-hydroxycholesterol.

1. Using a human hepatoma (Hep G2) cell line that continually synthesizes 3 beta-hydroxy-5-cholenoic acid, lithocholic acid, chenodeoxycholic acid and cholic acid we have determined the metabolism and biological effects of 26-hydroxycholesterol and 7 alpha-hydroxycholesterol. 2. Addition of 26-hydroxycholesterol to the medium (6 microM) downregulated cholesterol and chenodeoxycholic acid synthesis. 3. The predominant metabolite of 26-hydroxycholesterol was 3 beta-hydroxy-5-cholenoic acid. 4. Cholesterol synthesis was not affected by the addition of 7 alpha-hydroxycholesterol (6 and 12 microM). The predominant metabolite of 7 alpha-hydroxycholesterol was chenodeoxycholic acid. 5. In Hep G2 cells 7 alpha-hydroxylation of 26-hydroxycholesterol is not well expressed.

Bile Acids and Salts

Effect of 22R-hydroxycholesterol on the action of sphingomyelinase from Bacillus cereus toward bovine erythrocytes.

The incorporation of 22R-hydroxycholesterol [(22R)-5-cholestene-3 beta,22-diol] into the bovine erythrocyte membranes remarkably enhanced the degradation of sphingomyelin in erythrocyte membranes by the action of sphingomyelinase from Bacillus cereus, causing much faster hemolysis of erythrocytes. The stimulative effect of 22R-hydroxycholesterol on the breakdown of sphingomyelin was maximal in the presence of Mg2+. On the other hand, in spite of the presence of 22R-hydroxycholesterol, the breakdown of sphingomyelin was inhibited by increasing concentrations of Ca2+. Also, the incorporation of 22R-hydroxycholesterol into the erythrocyte membranes facilitated the specific adsorption of the enzyme onto the surface of the erythrocyte membranes. The specific adsorption of sphingomyelinase amounted to 20-40% of the total activity in the presence of Mg2+ and the absence of divalent metal ions. In the presence of Ca2+, the incorporation of 22R-hydroxycholesterol enhanced the enzyme adsorption, exceeding more than 90% of the total activity. Therefore, the incorporation of 22R-hydroxycholesterol into bovine erythrocyte membranes remarkably accelerates the breakdown of sphingomyelin in the presence of Mg2+, and the specific adsorption of sphingomyelinase onto erythrocytes in the presence of Ca2+.

Adsorption

25-Hydroxycholesterol-supported and 8-bromo-adenosine 3',5'-monophosphate-stimulated testosterone production by primary cultures of two populations of rat Leydig cells.

Previous studies from this laboratory have demonstrated the presence of two populations of rat Leydig cells (I and II), which differ in their capacity for hCG- or cAMP-stimulated testosterone production. In the present study, we examined the metabolism of 25-hydroxycholesterol in primary cultures of both populations of Leydig cells. 25-Hydroxycholesterol bypasses the cAMP-dependent transport mechanism to the mitochondrial cytochrome P-450 side-chain cleavage enzyme (P-450scc) required by cholesterol and thus provides an index of the relative activity of P-450scc. Incubation of Leydig cells with increasing concentrations of 25-hydroxycholesterol resulted in a concentration-dependent increase in the amount of testosterone produced, with maximal amounts in both populations being reached at 25-hydroxycholesterol concentrations of 5 microM or greater. Population II produced more than twice as much testosterone as population I Leydig cells, whether incubated with 25-hydroxycholesterol or with 8-bromo-cAMP. Each population of Leydig cells produced 2.5-fold greater amounts of testosterone when incubated with 25-hydroxycholesterol than when incubated with 8-bromo-cAMP. In both populations of Leydig cells, cAMP-stimulated testosterone production was not different in cells cultured for 24 h from that in freshly isolated Leydig cells. These data suggest that cholesterol transport to P-450scc limits maximal testosterone production, and that the difference in hCG- or cAMP-stimulated testosterone production between the two populations of Leydig cells is primarily due to differences in P-450scc activity between the two populations and is not a result of population I consisting mostly of damaged Leydig cells.

8-Bromo Cyclic Adenosine Monophosphate