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Catechol oestradiol control of FSH-stimulated granulosa cell steroidogenesis.

Catechol oestrogens are formed in the ovary but it is not known if they have a local function. Working with primary granulosa cell cultures prepared from immature rat ovaries, we found that the presence of 2-hydroxyoestradiol in the culture medium (48 h incubation) dramatically enhanced the steroidogenic response (progesterone production) to human FSH (100 ng/ml). The effect of 2-hydroxyoestradiol was dose-dependent and maximal (approximately 40 times the response to FSH alone) at 3.0 microM. The stimulatory action of 1.0 microM 2-hydroxyoestradiol was greater than 10 times more than that of 1.0 microM oestradiol but only half that of 1.0 microM testosterone; other catechol oestrogens (2-hydroxyoestrone, 4-hydroxyoestradiol, 2-methoxyoestradiol and 2-methoxyoestrone) were not stimulatory. The stimulatory actions of 2-hydroxyoestradiol and testosterone were partially additive and each was antagonized in the same way by the presence of a specific antiandrogen (SCH16423). These observations suggest a role for intrafollicular catechol oestradiol in modulating FSH-stimulated granulosa cell steroidogenesis; its mechanism of action may be similar to that of testosterone.

Animals↗

A new technique for staining catecholic residues in biological samples.

This technique for localizing catecholic residues in biological samples is based on the condensation of Besthorn's hydrazone (3-methyl-2-benzothiazolinone hydrazone hydrochloride (MBTH) with quinone residues obtained by the oxidation of catechols in the presence of ammonia. The product is a dark pink MBTH-quinone compound. This method is very sensitive and positive to catechol even at the 0.05 microgram level and the final product is chemically stable.

Animals↗

Detection of reaction products of thiamin degradation by catechol derivatives.

To clarify the mechanism of thiamin degradation by catechol derivatives, thiamin and its analogues were incubated with caffeic acid or catechol in 1/15 M phosphate buffer pH 7.4 at 48 degrees C or 50 degrees C. Using thin-layer chromatography and high-performance liquid chromatography, several unknown intermediates of the reaction product, which may have both pyrimidine and catechol moieties, were detected.

Caffeic Acids↗

Chloroplast-type ferredoxin involved in reactivation of catechol 2,3-dioxygenase from Pseudomonas sp. S 47.

Pseudomonas sp. S-47 is capable of degrading catechol and 4-chlorocatechol via the meta-cleavage pathway. XylTE products catalyze the dioxygenation of the aromatics. The xylT of the strain S-47 is located just upstream of the xylE gene. XylT is a typical chloroplast-type ferredoxin, which is characterized by 4 cystein residues that are located at positions 41, 46, 49, and 81. The chloroplast-type ferredoxin of Pseudomonas sp. S-47 exhibited a 98% identity with that of P. putida mt-2 (TOL plasmid) in the amino acid sequence, but only about a 40 to 60% identity with the corresponding enzymes from other organisms. We constructed two recombinant plasmids (pRES1 containing xylTE and pRES101 containing xylE without xylT) in order to examine the function of XylT for the reactivation of the catechol 2,3-dioxygenase (XylE) that is oxidized with hydrogen peroxide. The pRES1 that was treated with hydrogen peroxide was recovered in the catechol 2,3-dioxygenase (C23O) activity about 4 minutes after incubation, but the pRES101 showed no recovery. That means that the typical chloroplast-type ferredoxin (XylT) of Pseudomonas sp. S-47 is involved in the reactivation of the oxidized C23O in the dioxygenolytic cleavage of aromatic compounds.

Amino Acid Sequence↗

New isoflavones, inhibiting catechol-O-methyltransferase, produced by Streptomyces.

In the screening of catechol-O-methyltransferase inhibitors in streptomyces culture filtrates, three new isoflavones were isolated. Their structures were shown to be 3',5,7-trihydroxy-4',6-dimethoxyisoflavone (I), 3',5,7-trihydroxy-4',8-dimethoxyisoflavone (II), 3',8-dihydroxy-4',6,7-trimethoxyisoflavone (III). I and II inhibited both catechol-O-methyltransferase and dopa decarboxylase, and showed hypotensive action. III was a specific inhibitor of catechol-O-methyltransferase, and showed no hypotensive action.

Animals↗

Induction of uterine adenocarcinoma in CD-1 mice by catechol estrogens.

Catechol estrogens may mediate estrogen-induced carcinogenesis because 4-hydroxyestradiol induces DNA damage and renal tumors in hamsters, and this metabolite is formed in the kidney and estrogen target tissues by a specific estrogen 4-hydroxylase. We examined the carcinogenic potential of catechol estrogen in an experimental model previously reported to result in a high incidence of uterine adenocarcinoma after neonatal exposure to diethylstilbestrol. Outbred female CD-1 mice were treated with 2- or 4-hydroxyestradiol, 17beta-estradiol, or 17alpha-ethinyl estradiol on days 1-5 of neonatal life (2 microg/pup/day) and sacrificed at 12 or 18 months of age. Mice treated with 17beta-estradiol or 17a-ethinyl estradiol had a total uterine tumor incidence of 7% or 43%, respectively. 2-Hydroxyestradiol induced tumors in 12% of the mice, but 4-hydroxyestradiol was the most carcinogenic estrogen, with a 66% incidence of uterine adenocarcinoma. Both 2- and 4-hydroxylated catechols were estrogenic and increased uterine wet weights in these neonates. These data demonstrate that both 2- and 4-hydroxyestradiol are carcinogenic metabolites. The high tumor incidence induced by 4-hydroxyestradiol supports the postulated role of this metabolite in hormone-associated cancers.

Adenocarcinoma↗

O-Methylation of tea polyphenols catalyzed by human placental cytosolic catechol-O-methyltransferase.

In the present study, we evaluated the metabolic O-methylation of several catechol-containing tea polyphenols by human placental catechol-O-methyltransferase (COMT). (-)-Epicatechin, (+)-epicatechin, and (-)-epigallocatechin were good substrates for metabolic O-methylation by placental cytosolic COMT (150-500 pmol/mg of protein/min), but (-)-epicatechin gallate and (-)-epigallocatechin gallate were O-methylated at much lower rates (<50 pmol/mg of protein/min). When (-)-epicatechin was used as substrate, its O-methylation by human placental COMT showed dependence on incubation time, cytosolic protein concentration, incubation pH, and concentration of S-adenosyl-L-methionine (the methyl donor). Analysis of cytosolic COMT from six human term placentas showed that the O-methylation of increasing concentrations of (-)-epicatechin or (-)-epigallocatechin follows typical Michaelis-Menten kinetics, with K(m) and V(max) values of 2.2 to 8.2 microM and 132 to 495 pmol/mg of protein/min for (-)-epicatechin and 3.9 to 6.7 microM and 152 to 310 pmol/mg of protein/min for (-)-epigallocatechin, respectively. Additional analysis revealed that COMT-catalyzed O-methylation of (-)-epicatechin and (-)-epigallocatechin was strongly inhibited in a concentration-dependent manner by S-adenosyl-L-homocysteine (IC(50) = 3.2-5.7 microM), a demethylated product of S-adenosyl-L-methionine. This inhibition by S-adenosyl-L-homocysteine follows a mixed (competitive plus noncompetitive) mechanism of enzyme inhibition. In summary, several catechol-containing tea polyphenols are rapidly O-methylated by human placental cytosolic COMT. This metabolic O-methylation is subject to strong inhibitory regulation by S-adenosyl-L-homocysteine, which is formed in large quantities during the O-methylation of tea polyphenols.

Catechin↗

Catechol-O-methyltransferase polymorphism is not associated with ovarian cancer risk.

A valine-108-methionine polymorphism in exon 4 of the catechol-O-methyltransferase (COMT) gene causes a 3- to 4-fold reduction in enzyme activity and has been associated with an increased risk of breast cancer. This increased risk may be attributable to a decreased ability of the protein encoded by the low-activity allele (COMT(L)) to methylate and inactivate catechol estrogens, which have been implicated in estrogen carcinogenesis. Because estrogens have also been implicated in the etiology of ovarian cancer, we analyzed 108 cases and 106 controls from a case-control study conducted in Mainz, Germany, to test the hypothesis that COMT(L) is associated with ovarian cancer risk. No significant association was found between the COMT genotype and ovarian cancer risk (for the intermediate-activity COMT genotype versus the high-activity COMT genotype, OR, 1.29; 95% CI, 0.63-2.64; for the low-activity COMT genotype versus the high-activity COMT genotype, OR, 1.17; 95% CI, 0.52-2.61). We also hypothesized that women who were both low-activity COMT genotype- and glutathione S-transferase (GST) M1- and/or T1 null would be at higher risk for ovarian cancer because the combination of these genotypes could theoretically lead to higher catechol estrogen exposure. However, the association between the COMT polymorphism and ovarian cancer risk was similar across GSTM1 and GSTT1 genotypes (Ptrend > 0.40, for all strata). Because of the small sample size of this study population, odds ratios of a small magnitude could not be completely ruled out; however, the results presented do not support a strong association between the COMT polymorphism and the risk of ovarian cancer.

Case-Control Studies↗

[Effects of Pro229-->Ser and Glu243-->Gly on the characters of thermostable catechol 2, 3-dioxygenase].

In order to investigate the effects of amino acid replacement on the characters of thermostable catechol 2, 3-dioxygenase, two mutants (Pro229Ser and Glu243Gly) of this enzyme were obtained by using the method of PCR random mutagenesis. The wild type thermostable catechol 2, 3-dioxygenase and these two mutants (Pro229Ser, Glu243Gly) were over expressed in E. coli TG1 and purified. The enzymatic characters and thermostability of the wild type enzyme and the two mutants (Pro229Ser, Glu243Gly) were analyzed. The results revealed that the optimum enzymatic temperature of the two mutants were the same as that of the wild type enzyme (60 degrees C) and the Kcat/Km value of Pro229Ser and Glu243Gly (4.89 +/- 0.01 x 10(6) mol-1 s-1 and 5.88 +/- 0.01 x 10(6) mol-1 s-1, respectively) were reduced compared with the wild type enzyme (6.97 +/- 0.01 x 10(6) mol-1 s-1). However, the thermostability of Pro229Ser extremely decreased 10.2 degrees C and the thermostability of Glu243Gly slightly increased 1.5 degrees C. It was proposed that Pro229 played an important role on the thermostability of thermostable catechol 2, 3-dioxygenase.

Amino Acid Sequence↗

Effects of catechol compound administration on nerve growth factor synthesis in the peripheral nervous system.

The effects of the intraperitoneal administration of catechol compounds on nerve growth factor (NGF) synthesis in the peripheral nervous system were examined in Wistar male rats. Five injections of 4-methylcatechol (4-MC) during a three-day period caused a threefold to fourfold increase in the NGF content of organs with sympathetic innervation (heart, submandibular gland) and the sciatic nerve. Next, we investigated time-dependent changes in the NGF content after a single injection of 2 micrograms of 4-MC. A transient increase in the NGF content was detected in the heart and submandibular gland at 16 hours after administration. In the sciatic nerve, a transient increase in the NGF content was noted at 20 hours in the nerve segments on the distal side, and at 24 hours in the segments on the proximal side. In the superior cervical ganglion and dorsal root ganglion, i.e., the locations of the sympathetic and sensory nerve cell bodies, an increase in the NGF content was detected between 32 and 40 hours. Therefore, catechol compounds stimulate NGF synthesis in the peripheral nervous system, and NGF induced by 4-MC is transported retrogradely in the axon to the soma in a physiological manner. Furthermore, in the dorsal root ganglion and superior cervical ganglion, the use of substance P and tyrosine hydroxylase activity as biochemical markers of sensory and sympathetic neurons has demonstrated the biological activity of newly-synthesized NGF induced by catechol compounds.

Animals↗

Hydroxylation of phenol to catechol by Candida tropicalis: involvement of cytochrome P450.

Microsomal preparations isolated from yeast Candida tropicalis (C. tropicalis) grown on three different media with or without phenol were isolated and characterized for the content of cytochrome P450 (CYP) (EC 1.14.15.1). While no CYP was detected in microsomes of C. tropicalis grown on glucose as the carbon source, evidence was obtained for the presence of the enzyme in the microsomes of C. tropicalis grown on media containing phenol. Furthermore, the activity of NADPH: CYP reductase, another enzyme of the microsomal CYP-dependent system, was markedly higher in cells grown on phenol. Microsomes of these cells oxidized phenol. The major metabolite formed from phenol by microsomes of C. tropicalis was characterized by UV/vis absorbance and mass spectroscopy as well as by the chromatographic properties on HPLC. The characteristics are identical to those of catechol. The formation of catechol was inhibited by CO, the inhibitor of CYP, and correlated with the content of cytochrome P450 in microsomes. These results, the first report showing the ring hydroxylation of phenol to catechol with the microsomal enzyme system of C. tropicalis, strongly suggest that CYP-catalyzed reactions are responsible for this hydroxylation. The data demonstrate the progress in resolving the enzymes responsible for the first step of phenol degradation by the C. tropicalis strain.

Biodegradation, Environmental↗

Lycopene and beta-carotene ameliorate catechol estrogen-mediated DNA damage.

The consumption of fruits and vegetables is associated with a reduced risk of various ailments, including cancer and cardiovascular diseases. Carotenoids, such as lycopene and beta-carotene, are natural constituents of edible plants and may protect against disease. In this study, the influence of lycopene and beta-carotene on DNA damage caused by catechol-estrogens in vitro is examined. One possible mechanism by which catechol estrogens such as 4-hydroxyestradiol (4-OHE2) and 2-hydroxyestradiol, which cause DNA damage in naked plasmid DNA as well as in cells, contributing to the process of carcinogenesis, is through the generation of reactive oxygen species. It was found that both carotenoids at concentrations ranging from 0.25 to 10 microM significantly inhibit strand breakage induced by 4-OHE2/copper sulphate by up to approximately 90% in plasmid DNA with beta-carotene being slightly more effective. No prooxidant or cytotoxic effects were observed at the concentrations tested. These carotenoids had a similar, though reduced effect on DNA damage as measured by the comet assay, in Chinese hamster lung fibroblasts. The results obtained show that both lycopene and beta-carotene, most probably and mainly through their potent antioxidant properties, are able to inhibit catechol-estrogen-mediated DNA damage.

Animals↗

[The preparation and properties of catechol-1,2-dioxygenase from Pseudomonas putida].

Catechol-1,2-dioxygenase (EC 1.13.11.1) catalyzes the degradation of catechol to cis, cis-muconic acid. The biochemical properties of catechol-1,2-dioxygenase from Pseudomonas putida 84103 were investigated. The optimum pH and temperature is 7.5-8.0 and 25-30 degrees C, respectively. Cu2+, Zn2+ inhibit the enzyme activity. The paper chromatograph and UV absorption spectrum of enzymatic reaction product are accordance with those of the standard muconic acid.

Catechol 1,2-Dioxygenase↗

[17O]Water and nitric oxide binding by protocatechuate 4,5-dioxygenase and catechol 2,3-dioxygenase. Evidence for binding of exogenous ligands to the active site Fe2+ of extradiol dioxygenases.

Pseudomonas testosteroni protocatechuate 4,5-dioxygenase and Pseudomonas putida catechol 2,3-dioxygenase (metapyrocatechase) catalyze extradiol-type oxygenolytic cleavage of the aromatic ring of their substrates. The essential active site Fe2+ of each enzyme binds nitric oxide (NO) to produce an EPR active complex with an electronic spin of S = 3/2. Hyperfine broadening of the EPR resonances of the nitrosyl complexes by 17O-enriched H2O shows that water is bound directly to the Fe2+ in the native enzymes, but is apparently displaced in substrate complexes. NO is not displaced by either substrates or inhibitors. The EPR spectra of several enzyme-inhibitor-NO complexes are different from those of enzyme-NO or enzyme-substrate-NO complexes and are found to be broadened by 17O-enriched water. The data show that at least 2 and perhaps 3 sites in the Fe ligation can be occupied by exogenous ligands. Furthermore, it is likely that substrates and inhibitors displace water by binding either at or near to the Fe in the nitrosyl complex. Nitric oxide binding is found to be substrate-dependent for each enzyme. Native catechol 2,3-dioxygenase exhibits KD values of 190 microM and 2.0 mM for NO binding in two types of independent sites. Only one type of site is observed in the catechol complex which exhibits a KD for NO of 3.4 microM. One type of NO binding site is observed for both the native and substrate complexed protocatechuate 4,5-dioxygenase with KD values of 360 and 3 microM, respectively. The presence of a specific site in the Fe coordination for NO which is modified in the substrate complex, suggests that O2 binding by the extradiol dioxygenases may also occur at the Fe.

Binding Sites↗

Absence of reactive intermediates in the formation of catechol estrogens by rat liver microsomes.

Release of 3H2O from regiospecifically labeled estradiol was measured during 2-hydroxylation of this estrogen by rat liver microsomes. The amount of tritium remaining in the isolated catechol estrogen was also determined. Virtually all the tritium was removed from C-2 during the reaction confirming the absence of an NIH shift. About 20% of the tritium at C-1 was also lost without any such change occurring at C-4 or C-6,7 of the steroid molecule. These findings provide evidence for the formation of an arene oxide or o-semiquinone intermediate during the conversion of estradiol to 2-hydroxyestradiol. No indication of adduct formation at either C-1 or C-4 during this biotransformation was obtained although the 2-hydroxylated product was able to react with a nucleophile such as glutathione. The different regiospecificity of tritium loss in the generation of catechol estrogens and in their subsequent reaction leads to the important conclusion that the reactive intermediates in the two processes must be different. The possible role of catechol estrogens in neoplastic transformation is discussed.

Animals↗

An electron spin resonance study of free radicals from catechol estrogens.

Electron spin resonance spectroscopy has been used to demonstrate production of semiquinone free radicals from the oxidation of the catechol estrogens 2- and 4-hydroxyestradiol and 2,6- and 4,6-dihydroxyestradiol. Radicals were generated by horseradish peroxidase/H2O2 or tyrosinase/O2, or by autoxidation, and were detected as their complexes with spin-stabilizing metal ions (Zn2+ and/or Mg2+). Radical production occurs via one- or two-electron oxidation of catechol estrogens, depending on the type of activating system. Autoxidation of catechol estrogens produces superoxide and H2O2 at physiological pH values. The present results also indicate a difference in the reactivity of quinones derived from 2- and 4-hydroxyestradiol. The toxicological significance of these reactions is discussed.

Animals↗

Catechol strongly enhances rat stomach carcinogenesis: a possible new environmental stomach carcinogen.

Catechol (CAS: 120-80-9) is present in the environment, being a major industrial chemical as well as a major phenolic component of cigarette smoke. Continuous oral treatment of rats with 0.8% catechol for 51 weeks after a single intragastric dose of 150 mg/kg of N-methyl-N'-nitro-N-nitrosoguanidine strongly enhanced both forestomach and glandular stomach carcinogenesis. In addition, and more importantly, catechol alone induced adenocarcinoma and adenomatous hyperplasia in the pyloric region of the glandular stomach. These results clearly indicate that this environmental contaminant merits classification as an enhancer of forestomach and glandular stomach carcinogenesis with complete carcinogenic potential for the glandular stomach. Its significance for gastric tumor development in man requires elucidation.

Adenocarcinoma↗

Photoaffinity labeling of catechol O-methyltransferase with 8-azido-S-adenosylmethionine.

An in vitro system using an enzyme extract containing ATP:L-methionine S-adenosyltransferase from Escherichia coli MRE 600 cells was used to synthesize 8-azido-S-adenosyl-L-methionine from methionine and 8-azidoadenosine 5'-triphosphate. In the absence of ultraviolet light and analog can serve as a methyl donor for porcine catechol O-methyltransferase. Photolysis of 8-azido-S-adenosyl[35S]methionine in the presence of catechol O-methyltransferase results in covalent incorporation. Addition of either authentic S-adenosylmethionine or S-adenosylhomocysteine, but not adenosine 5'-monophosphate, to the photolysis reaction mixture eliminates the photoincorporation. These results indicate that the incorporation is occurring at the S-adenosylmethionine binding site in the catechol O-methyltransferase.

Affinity Labels↗