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Stimulation of 16-dehydroprogesterone and progesterone reductases of Eubacterium sp. strain 144 by hemin and hydrogen or pyruvate.

Suspensions of Eubacterium sp. strain 144, prepared from cells grown with 16-dehydroprogesterone, catalyzed the reduction of this steroid to 17-isoprogesterone at a very low rate. Modifications of the assay to optimize the pH (5.5) and increase the steroid solubility (10% [vol/vol] methanol) did not significantly enhance the reaction. However, growth of strain 144 in the presence of hemin was found to stimulate 16-dehydroprogesterone reductase during the initial 30 min of incubation, giving a biphasic time course. These biphasic kinetics could be eliminated by providing the cells with an exogenous electron donor. Strain 144 used either H2 or pyruvate for this purpose, and 17-isoprogesterone formation was nearly complete after 20 to 30 min of incubation. However, under these conditions, strain 144 further converted 17-isoprogesterone to products which lacked UV absorbance (254 nm). When progesterone was used as a substrate, it was found that strain 144 could reduce the C4-C5 double bond of this steroid by a progesterone reductase to give mostly 5 beta-pregnadione and some 5 alpha-pregnadione. Furthermore, the 3-keto group of 5 beta-pregnadione steroid was also reduced to a hydroxy function. The maximum activities of both 16-dehydroprogesterone and progesterone reductases in cell suspensions required the growth of strain 144 with hemin and 16-dehydroprogesterone and the presence of H2 or pyruvate.

3-Hydroxysteroid Dehydrogenases↗

Role of lipoproteins and 3-hydroxy-3-methylglutaryl coenzyme A reductase in progesterone production by cultured bovine granulosa cells.

The relative contributions of lipoproteins and 3-hydroxy-3-methylglutaryl coenzyme A (HMG CoA) reductase to progesterone production by bovine granulosa cells exposed to plasma or liquor folliculi (LF) were studied. LF did not contain and very low density lipoprotein (VLDL), intermediate density lipoprotein (IDL), or low density lipoprotein (LDL). These lipoproteins were present in the plasma at concentrations of 92 micrograms protein/ml for VLDL and IDL together and 139 micrograms protein/ml for LDL. In contrast, high density lipoprotein (HDL) was present in LF at a concentration (763 micrograms protein/ml) that was 59% of that in plasma (1293 micrograms protein/ml). Bovine granulosa cells exposed to human plasma produce progesterone in response to dibutyryl cAmP. Sixty-three percent of the progesterone released by the cells was dependent on LDL but not HDL derived from human plasma. When cells were exposed to bovine plasma, 75% of the progesterone release was dependent on the presence of lipoproteins in the medium. Both LDL and HDL of bovine origin were able to support progesterone production, although LDL was effective at concentrations (on a molar basis) 20-fold lower than HDL. The LF was able to support progesterone production 45% as well as bovine plasma. The differences between the greater ability of the whole fractions and the lesser ability of their respective lipoprotein-deficient derivatives to support progesterone synthesis were 4-fold for bovine plasma, 2.7-fold for human plasma, and 1.7-fold for LF. The relative abilities of equivalent concentrations of LDL to restore the rate of progesterone synthesis seen in the lipoprotein-deficient fraction toward that seen in the whole fraction were greatest in the LF, intermediate in human plasma, and least in bovine plasma. These observations taken together suggest that the low level of support of progesterone synthesis that is offered by LF is due to its deficiency in LDL. HMG CoA reductase, the regulated and rate-limiting enzyme of cholesterol synthesis, was induced (2- to 3-fold) by dibutyryl cAMP and was suppressed by both human and bovine LDL and to a lesser extent by bovine HDL. Compactin, a competitive inhibitor of HMG CoA reductase, inhibited progesterone production relatively little when cells were exposed to complete plasma or LF. However, when cells were exposed to a lipoprotein-deficient bovine plasma or LF, compactin was very efficient in reducing (by 76%) progesterone release. Bovine granulosa cells exposed to plasma primarily use cholesterol derived from LDL in order to produce progesterone. Their ability to produce progesterone when exposed to LF was limited, and the cells were probably more dependent on de novo cholesterol synthesis than cells exposed to plasma.

Animals↗

Partial characterization of the microsomal and solubilized hypothalamic progesterone 5 alpha-reductase.

Microsomal progesterone 5 alpha-reductase activity from female rat hypothalamus has been solubilized and partially characterized in terms of kinetic and physical properties. The solubilization of progesterone 5 alpha-reductase has been accomplished through the use of a digitonin/KCL-extraction. Both the microsomal and solubilized enzyme activities exhibit similar kinetic and physical characteristics. These include their apparent Km for progesterone (Microsomal Km = 113 +/- 11 nM; solubilized Km = 144 +/- 20 nM) and their affinity (approximately 7 nM) for the 5 alpha-dihydroprogesterone analog, 4-aza-4-methyl-5 alpha-pregnane-3,20-dione, which is a potent inhibitor of progesterone 5 alpha-reduction. Both activities are inhibited by divalent cations (Zn2+ and Cu2+) and the sulfhydryl-blocking agent p-chloromercuribenzoic acid. Studies aimed at optimizing isolation and assay conditions for the hypothalamic progesterone 5 alpha-reductase indicate that the microsomal activity is enhanced in the presence of monovalent cations (particularly K+ and Li+) and the metal chelator EDTA, but is unaffected by the sulfhydryl reducing agent dithiothreitol. The activity of the solubilized enzyme is also enhanced by EDTA but slightly stimulated by dithiothreitol. Analysis of hypothalamic progesterone 5 alpha-reduction for possible flavin involvement (as a hydride carrier between NADPH and the steroid) indicates that the enzyme activity is decreased by high levels of flavins, flavin analogs and riboflavin deficiency.

3-Hydroxysteroid Dehydrogenases↗

Some properties of progesterone 5 alpha-reductase solubilized from rat liver microsomes.

The experiments described in this paper were undertaken to examine the requirements of NADPH-cytochrome c reductase and phosphatidylcholine for hepatic steroid 5 alpha-reduction, previously proposed by Golf and Graef (Golf, S. W. and Graef, V. (1978) J. Steroid Biochem. 9, 369-371). To determine how NADPH-cytochrome c reductase participates in hepatic 5 alpha-reductase activity, antibodies against the purified NADPH-cytochrome c reductase were added to 5 alpha-reductase preparation solubilized from rat liver microsomes. Whereas both NADPH-cytochrome c reductase and progesterone 16 alpha-hydroxylase in the preparation were inhibited by the antiserum, the inhibitory effect on 5 alpha-reductase activity was not observed. In addition, chromatography of the polyethylene glycol fraction active in 5 alpha-reduction on DEAE-cellulose resulted in the complete separation of 5 alpha-reductase activity from NADPH-cytochrome c reductase activity. Unlike NADPH-cytochrome c reductase, phosphatidylcholine increased the activity of the partially purified 5 alpha-reductase about 2.5 fold. Phosphatidylserine also enhanced the activity to an extent identical for phosphatidylcholine. Phosphatidic acid and lysophosphatidylcholine were stimulatory to lesser extents.

Animals↗

The effect of progesterone analogues, naturally occurring steroids, and contraceptive progestins on hypothalamic and anterior pituitary delta4-steroid (progesterone) 5alpha-reductase.

The effects of a number of steroids on the conversion of progesterone to 5alpha-dihydroprogesterone by hypothalamic and pituitary progesterone 5alpha-reductase have been investigated. Using enzyme preparations from female rats and 3H-progesterone as substrate, 5alpha-reduced products (5alpha-dihydroprogesterone and 3alpha-hydroxy-5alpha-pregnan-20-one) were analyzed by reverse isotopic dilution analysis. The amount of total 5alpha-reduced products formed was compared in the presence and absence of the test steroid. Derivatives lacking the delta4 and/or the 3-keto moiety were without effect. Corticosterone had no effect. 16beta-Methylprogesterone inhibited progesterone 5alpha-reduction in both tissues by at least 65%, while the 2alpha-, 6alpha-, and 7alpha-methylated derivatives had lesser effects. 3-Oxo-4-pregnene-20beta-carboxaldehyde and 21-fluoroprogesterone were potent inhibitors. 17-Hydroxyprogesterone was a competitive inhibitor (substrate) with Ki's of 0.27 micrometer (pituitary) and 0.29 micrometer (hypothalamus). Medroxyprogesterone exerted little inhibitory effect. Of the 19-nor-steroids examined, only norethindrone appreciably inhibited the 5alpha-reduction. These results suggest that some natural delta4-3-ketosteroids can modify enzymatic activity. Also, inhibitory analogues may be useful for studies on the role of this 5alpha-reduction of progesterone.

3-Hydroxysteroid Dehydrogenases↗

Properties and subcellular distribution of delta4-steroid (progesterone) 5alpha-reductase in rat anterior pituitary.

The properties and subcellular distribution of anterior pituitary delta4-steroid (progesterone) 5alpha-reductase, which stimulates the conversion of progesterone to 5alpha-pregnane-3,20-dione, have been investigated utilizing 3H-substrate and a reverse isotopic dilution assay system. The enzymic activity was stimulated by NADPH but not NADH and exhibited a Km of 2.7+/-0.9 times 10(-7) M for progesterone. The substrate specificity of the enzyme for other delta4-3-ketosteroids and the effect of estradiol-17beta were also studied. 20alpha-hydroxy-4-pregnen-3-one was more reactive than progesterone, while testosterone was less reactive. Estradiol-17beta in vitro had an inhibitory effect on the 5alpha-reduction of progesterone. Studies on the subcellular distribution of the 5alpha-reductase activity indicate that the bulk of the activity was widely distributed amongst particulates sedimenting at 1,000, 15,000 and 100,000xg; with the 15,000xg pellet containing the most enzymic activity. The 100,000xg supernatant possessed only a small fraction of the total activity. After further fractionation of the 1,000xg pellet, the activity was distributed equally between the purified nuclear and cell debris-membranes fractions.

Animals↗

Regulation of 11beta-hydroxysteroid dehydrogenase type 2 by progesterone, estrogen, and the cyclic adenosine 5'-monophosphate pathway in cultured human placental and chorionic trophoblasts.

Human placenta and fetal membranes contain two types of 11beta-hydroxysteroid dehydrogenase (11beta-HSD). 11Beta-HSD1 interconverts cortisol and cortisone and is the predominant isoform found in the fetal membranes. 11Beta-HSD2, which predominates in the placenta syncytiotrophoblast, converts cortisol to cortisone. It has been proposed that placental 11beta-HSD protects the fetus from high levels of maternal glucocorticoids. In this study, cultured term human placental and chorionic trophoblasts were used to examine the regulation of 11beta-HSD1 and 11beta-HSD2 activities and mRNA expression by progesterone, estrogen, and activators of adenylate cyclase (forskolin) and protein kinase C (phorbol 12-myristate 13-acetate, PMA). Placental trophoblast displayed mainly type 2 oxidase activities. 11Beta-HSD in the chorionic trophoblast was exclusively an 11beta-HSD1 reductase. Progesterone (0.001-1 microM) inhibited 11beta-HSD2 activity in a dose-dependent fashion. Inhibition of endogenous progesterone production with trilostane enhanced 11beta-HSD2 activity. The inhibitory effect of progesterone on 11beta-HSD2 activity was not reversed by the progesterone receptor antagonists RU-486 or onapristone. Progesterone (1 microM) also reduced levels of 11beta-HSD2 mRNA, an effect that was attenuated by both RU-486 and onapristone. Estradiol (1 microM) inhibited type 2 oxidase activity as well. Activation of adenylate cyclase by forskolin (100 microM) up-regulated both 11beta-HSD2 activity and mRNA expression; there was no effect of PMA (1 microM) on 11beta-HSD2. 11Beta-HSD1 reductase activity was unaffected by progesterone, estrogen, forskolin, or PMA in either the placental or chorionic trophoblasts. We conclude that both progesterone and estrogen are inhibitors of 11beta-HSD2 activity in term human placenta in vitro. Levels of 11beta-HSD2 activity and mRNA are increased by activation of the cAMP pathway. Progesterone also suppresses levels of 11beta-HSD2 mRNA.

11-beta-Hydroxysteroid Dehydrogenases↗

Resolution and reconstitution of the NADPH-cytochrome c (P-450) reductase induced by progesterone in Rhizopus nigricans.

The NADPH-cytochrome c (P-450) reductase induced in the filamentous fungus Rhizopus nigricans as a component of 11 alpha-hydroxylase of progesterone was resolved by DEAE-cellulose chromatography into two components. One of the components is an iron-sulfur protein (rhizoporedoxin), whereas the other component is a protein with reductase activity dependent on NADPH (rhizoporedoxin reductase). As shown in the reconstitution assay, the NADPH-cytochrome c (P-450) reductase activity was restored upon combination of these two proteins.

Buffers↗

Effects of cadmium and zinc on steroid metabolism and steroid level in the sea star Asterias rubens L.

Steroid metabolism was studied in gonads and pyloric caeca of male and female sea stars which had been exposed to cadmium or zinc for 3 weeks. Steroid metabolism had increased in animals exposed to heavy metals. Significant increase of the enzyme activity was observed for 17 alpha-hydroxylase in the pyloric caeca of female animals exposed to zinc (pregnenolone----17 alpha-hydroxypregnenolone) or cadmium (progesterone----17 alpha-hydroxyprogesterone), for 17 beta-hydroxysteroiddehydrogenase in the gonads of female animals (dehydroepiandrosterone----androstenediol) and in pyloric caeca of male animals (androstenedione----testosterone) after exposure to cadmium, and for 5 alpha-reductase (progesterone----5 alpha-pregnane-3,20-dione) in ovaries of cadmium exposed sea star. There is some evidence that pregnenolone metabolism in male and female animals is affected by zinc in a different way. The effect of cadmium on the esterification of androstenedione differed highly significantly among male and female animals. It was concluded that the main way of entrance of cadmium into sea stars is via the surrounding medium and not via the food consumed. Testosterone and progesterone levels in, respectively, gonads of female and pyloric caeca of male sea stars which had been exposed to cadmium were significantly higher than the corresponding values in control animals. The effect of zinc exposure on testosterone level in pyloric caeca is significantly different for both sexes. Cadmium interacts directly with the esterification of testosterone, strongly stimulating this process. Cadmium stimulates the production of testosterone by action at the level of the biosynthesis of 17 beta-hydroxysteroiddehydrogenase.

17-Hydroxysteroid Dehydrogenases↗

4-pregnene-3-one-20 beta-carboxaldehyde: a potent inhibitor of 17 alpha-hydroxylase/C17,20-lyase and of 5 alpha-reductase.

The pregnene derivative, 4-pregnene-3-one-20 beta-carboxaldehyde (22-A) was evaluated as an inhibitor of 17 alpha-hydroxylase/C17,20-lyase in rat testicular microsomes and of 5 alpha-reductase in human prostatic homogenates. The effect of the compound in vivo was studied in adult male rats. The 22-A demonstrated potent and competitive inhibition of 17 alpha-hydroxylase and C17,20-lyase with Ki values 8.48 and 0.41 microM, respectively, significantly below the Km values for these two enzymes (33.75 and 4.55 microM). This compound also showed potent inhibition of 5 alpha-reductase with a Ki value of 15.6 nM (Km for this enzyme is 50 nM). By comparison, ketoconazole, a currently studied 17 alpha-hydroxylase/C17,20-lyase inhibitor for the treatment of prostatic cancer, showed less potent inhibition of 17 alpha-hydroxylase (Ki 39.5 microM) and C17,20-lyase (Ki 3.6 microM) and did not inhibit 5 alpha-reductase. Progesterone which has been reported to inhibit the 17 alpha-hydroxylase/C17,20-lyase, did not significantly reduce the production of testosterone by rat testes in vitro in comparison to controls, while the same concentration of 22-A demonstrated a 42% reduction of testosterone biosynthesis. When the adult male rats were injected s.c. with 22-A at 50 mg/day/kg for a 2 week period, the testosterone concentrations in the rat sera were significantly lower than control values (P less than 0.05), whereas serum corticosterone levels did not change. These results suggest that 22-A is a selective potent inhibitor for 17 alpha-hydroxylase and C17,20-lyase, but is more potent for the C17,20-lyase. The compound also inhibits 5 alpha-reductase, and therefore may reduce biosynthesis of testosterone and dihydrotestosterone effectively. Thus, 22-A may be useful in the treatment of problems associated with the androgen excess and prostatic cancer.

5-alpha Reductase Inhibitors↗

The primate adrenal zona reticularis is defined by expression of cytochrome b5, 17alpha-hydroxylase/17,20-lyase cytochrome P450 (P450c17) and NADPH-cytochrome P450 reductase (reductase) but not 3beta-hydroxysteroid dehydrogenase/delta5-4 isomerase (3beta-HSD).

Biochemical studies suggest that 17,20-lyase activity, and thus efficient synthesis of androgens by human P450c17, requires both reductase and the accessory protein cytochrome b5. Since the human and primate zona reticularis (ZR) secrete androgens, the expression of these proteins, and of 3beta-HSD, was investigated by immunocytochemistry in the adrenal cortex of the mature rhesus macaque. Cytochrome b5 expression was restricted to the cells of the ZR which appeared deficient in 3beta-HSD. However, both P450c17 and reductase were evident throughout the zona fasciculata. These data provide essential evidence in support of a functional role for cytochrome b5 in the regional control of 17alpha-hydroxylase and 17,20-lyase activities of P450c17 and thereby adrenal C19 steroid secretion by the primate adrenal gland.

Animals↗

Pituitary progesterone 5 alpha-reductase: solubilization and partial characterization.

The microsomal progesterone 5 alpha-reductase activity from female rat anterior pituitary has been solubilized and partially characterized with regard to some of its kinetic and physical properties. The solubilization of progesterone 5 alpha-reductase has been achieved through the use of either an n-octyl glucoside (OG)-KCl- or a digitonin-KCl-extraction. The total yield and specific activity of solubilized enzyme activity is greater using the OG-KCl method. Kinetic analyses of microsomal and OG-KCl-solubilized progesterone 5 alpha-reductase have indicated that both of these preparations exhibit a similar apparent Km for progesterone (microsomal Km = 117 +/- 12 nM; solubilized Km = 123 +/- 11 nM), suggesting that the solubilization procedure does not appreciably alter the kinetic behavior of this enzyme activity. The OG-KCl-extracted progesterone 5 alpha-reductase activity also appears quite stable, since essentially no enzyme activity is lost following dialysis at 4 degrees C for 22 h. In addition, the activity of the solubilized-dialyzed enzyme preparation can be slightly stimulated via the addition of phospholipids. Studies on the properties of the microsomal enzyme activity have indicated that this preparation is unaffected by metal chelators (EDTA or EGTA) but can be completely inhibited by the powerful sulfhydryl blocking agent p-chloromercuribenzoic acid. An evaluation of the possible role of flavins (as a hydride carrier between NADPH and the steroid) has shown that progesterone 5 alpha-reduction is inhibited by high levels of flavins and flavin analogs.

Animals↗

Purification, characterization and partial peptide microsequencing of progesterone 5 beta-reductase from shoot cultures of Digitalis purpurea.

Progesterone 5 beta-reductase, which catalyzes the reduction of progesterone to 5 beta-pregnane-3,20-dione, was purified 770-fold to homogeneity from the cytosolic fraction of shoot cultures of Digitalis purpurea. This purification involved DEAE-Sephacel, affinity chromatography (Blue-Sepharose CL-6B and adenosine 2',5'-bisphosphate-Sepharose 4B) and elution from a gel matrix after non-dissociating PAGE. The molecular mass determined by SDS/PAGE was 43 kDa and the molecular mass determined by gel-filtration chromatography on calibrated Sephadex G-200 was 280 kDa, thus indicating that the native protein is a polymer consisting of several subunits. The purified enzyme had a Km value of 6 microM for NADPH and 34 microM for progesterone. The enzyme had a strong substrate specificity for progesterone. The relative rates for other steroids such as testosterone, cortisone and cortisol were much lower. The trypsin digestion of the purified progesterone 5 beta-reductase resulted in 100 peptide fragments. The largest fragment after trypsin digestion and sequence analysis consisted of 13 amino acids.

Amino Acid Sequence↗

Characterization and localization of progesterone 5 alpha-reductase from cell cultures of foxglove (Digitalis lanata EHRH).

Progesterone 5 alpha-reductase, which catalyses the reduction of progesterone to 5 alpha-pregnane-3,20-dione, was isolated and characterized from cell cultures of Digitalis lanata (foxglove). Optimum enzyme activity was observed at pH 7.0, and the enzyme had an apparent Km value of 30 microM for its substrate progesterone. The enzyme needs NADPH as reductant, which could not be replaced by NADH. For NADPH, the apparent Km value is 130 microM. The optimum temperature was 40 degrees C; at temperatures below 45 degrees C, the product 5 alpha-pregnane-3,20-dione was reduced by a second reaction to 5 alpha-pregnan-3 beta-ol-20-one. Progesterone 5 alpha-reductase activity was not dependent on bivalent cations. In the presence of EDTA, 0.1 mM-Mn2+ had no influence on enzyme activity, whereas 0.1 mM-Ca2+, -Co2+ and -Zn2+ decreased progesterone 5 alpha-reductase activity. Only 0.1 mM-Mg2+ was slightly stimulatory. EDTA and thiol reagents such as dithiothreitol stimulate progesterone 5 alpha-reductase activity. By means of linear sucrose gradient fractionation of the cellular membranes, progesterone 5 alpha-reductase was found to be located in the endoplasmic reticulum.

Cations↗

Phospholipid requirement of progesterone 5 alpha-reductase from gastric mucosa microsomes of guinea pig.

Progesterone 5 alpha-reductase partially purified from gastric mucosa microsomes was stimulated by short-chain synthetic phosphatidylcholines (PC), such as dilauroyl PC, but not by various PC from biological sources. Phosphatidylserine (PS) activated the gastric 5 alpha-reductase to a limited extent compared to the liver 5 alpha-reductase described previously [Ichihara, K., and Tanaka, C. (1987) Biochem. Biophys. Res. Commun. 149, 482-487]. In search of more effective phospholipid activators, we tested the effects of various lysophospholipids on 5 alpha-reductase activity. Strongly stimulatory effects were observed when lysophosphatidylcholine (lysoPC) and lysophosphatidylethanolamine (lysoPE) were used instead of PC and phosphatidylethanolamine. Examination of synthetic lysoPC and lysoPE differing in acyl chain lengths showed that fatty chains of 12 to 16 carbons were effective in stimulating the 5 alpha-reductase. By contrast, other lysophospholipids such as lysophosphatidic acid, lysophosphatidylglycerol or lysophosphatidylserine (lysoPS) greatly inhibited 5 alpha-reductase activity. These findings suggest that gastric 5 alpha-reductase may be under dual regulation; lysoPC and lysoPE may play important roles as positive effectors, whereas lysophosphatidic acid, lysophosphatidylglycerol and lysoPS act as negative effectors in progesterone 5 alpha-reductase regulation.

Animals↗

The kinetic mechanism of the hypothalamic progesterone 5 alpha-reductase.

The kinetic mechanism of the hypothalamic NADPH-linked progesterone 5 alpha-reductase from female rats was determined to be equilibrium ordered sequential by initial velocity, product inhibition and dead-end inhibition studies. Analysis of the initial velocity data resulted in intersecting double reciprocal plots indicating a sequential mechanism (apparent Km (progesterone) = 95.4 +/- 4.5 nM; apparent Kia(NADPH) = 9.9 +/- 0.7 microM). The plot of 1/v vs 1/progesterone intersected on the ordinate which is consistent with an equilibrium ordered mechanism. Ordered addition of the substrates was also supported by product inhibition studies with NADP versus NADPH and NADP versus progesterone. NADP is a competitive inhibitor versus NADPH (apparent Kis = 4.3 +/- 1.3 microM) and a noncompetitive inhibitor versus progesterone (apparent Kis = 31.9 +/- 1.4 microM and apparent Kii = 145.4 +/- 15.5 microM). These inhibition patterns show that NADPH binds prior to progesterone. Taken together, these analyses indicate that the cofactor, NADPH, binds to the enzyme in rapid equilibrium and preferentially precedes the binding of progesterone.

3-Hydroxysteroid Dehydrogenases↗