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H Raunio

Publications and source records attributed to H Raunio.

At least 37 records · Page 2Linked to original sources

Interethnic and interindividual variabilities of platelet sulfotransferases activity in Italians and Finns.

OBJECTIVE: The aim of this investigation was to see whether there was interethnic variability in the platelet activities of catechol- and phenol sulfotransferases in Italians and Finns. METHODS: The activities of catechol- and phenol sulfotransferases were measured in platelets obtained from 103 Italian and 74 Finnish individuals. Blood donors were obtained from healthy volunteers free from drugs and without apparent disease. The activities of catechol- and phenol sulfotransferases were measured with 60 microM dopamine and 4 microM 4-nitrophenol as substrates, respectively. RESULTS: The activity of catechol sulfotransferase was not gender dependent and the median estimates (pmol/min/mg) were 9.10 in Italians and 6.37 in Finns (P = 0.0018). The activity of phenol sulfotransferase activity was gender dependent in Finns but not in Italians. The median estimates (pmol/min/mg) were 3.81 in Finnish men and 1.18 in Finnish women (P = 0.0007). In Italian men and women, the median estimates (pmol/min/mg) of phenol sulfotransferase activity were 1.25 and 1.24, respectively (NS). CONCLUSION: This study shows that platelet catechol sulfotransferase activity is greater in Italians than Finns and that the activity of phenol sulfotransferase is gender regulated in Finns but not in Italians. Thus, interethnic differences exist in platelet sulfotransferases between Italians and Finns.

Adult↗

Expression of xenobiotic-metabolizing CYPs in human pulmonary tissue.

The pattern of expression of individual cytochrome P450 (CYP) forms participating in the metabolism of xenobiotics is being increasingly well characterised in the human pulmonary tissue. Recent studies using methods having increased sensitivity and specificity, such as the reverse transcriptase-polymerase chain reaction (RT-PCR) analysis, have revealed constitutive and inducible expression of several CYP forms in different cell types of the human lung. These studies have revealed the presence of mRNA of several procarcinogen-activating CYP forms in whole lung tissue and alveolar macrophages, including CYP1A1, CYP2B6/7, CYP2E1, and CYP3A5. The results of several studies on CYP2D6 expression have yielded contradictory results. Immunohistochemical analysis shows that CYP3A5 protein is present in all lung samples studied, and is localized in the ciliated and mucous cells of the bronchial wall, bronchial glands, bronchiolar ciliated and terminal cuboidal epithelium, type I and type II alveolar epithelium, vascular and capillary endothelium, and alveolar macrophages. Also CYP3A4 protein is found in some cell types in a minority (about 20%) of lung samples. Primary cultures of freshly isolated broncho-alveolar macrophages as well as a continuously growing bronchial carcinoma cell line (A-549) are being used for CYP induction studies in our laboratory. The results indicate that CYP1 family members are inducible in these cells by polycyclic aromatic hydrocarbon (PAH) inducers, and that CYP3A5, but not CYP3A4, is present constitutively. The results of these studies indicate that several different xenobiotic-metabolizing CYPs are present in the human lung and lung-derived cell lines, possibly contributing to in situ activation of pulmonary procarcinogens. Interindividual differences in the expression of these CYPs may contribute to the risk of developing lung cancer and possibly other pulmonary diseases initiated by agents that require metabolic activation.

Cells, Cultured↗

Modulation of murine phenobarbital-inducible CYP2A5, CYP2B10 and CYP1A enzymes by inhibitors of protein kinases and phosphatases.

Phenobarbital causes a multitude of effects in hepatocytes, including increased cell proliferation, inhibition of apoptosis and upregulation of xenobiotic and endobiotic metabolizing enzymes. In this study, the involvement of several protein kinase and phosphatase pathways on constitutive and phenobarbital-induced activities of CYP2A5, CYP2B10 and CYP1A1/2 in primary mouse hepatocytes was determined using well-defined chemical modulators of intracellular protein phosphorylation and desphosphorylation events. A 48-h treatment of the hepatocytes with 2-aminopurine, a nonspecific serine/threonine kinase inhibitor, elicited dose-dependent increases in both basal and phenobarbital-induced CYP2A5 catalytic activity (assayed as coumarin 7-hydroxylation), the maximal induction being 60-fold greater than the control value upon cotreatment with 1.5 mM phenobarbital and 10 mM 2-aminopurine. In contrast, phenobarbital induction of CYP2B10 (pentoxyresorufin O-deethylase) and CYP1A1/2 (ethoxyresorufin O-deethylase) activities were blocked by 2-aminopurine. Increases in CYP2A5 activity were also observed after exposure of the hepatocytes to other protein kinase inhibitors affecting the cell cycle, i.e. roscovitine, K-252a and rapamycin. Inhibitors of protein kinases A and C, as well as tyrosine kinases, did not appreciably affect CYP2A5 activity levels. The serine/threonine phosphatase inhibitors tautomycin, calyculin A and okadaic acid all reduced both basal and phenobarbital-induced CYP2A5, CYP2B10 and CYP1A1/2 activities. These results further strengthen the concept that hepatic CYP2A5 is regulated in a unique way compared with CYP2B10 and CYP1A.

Animals↗

Accelerated apoptosis and low bcl-2 expression associated with neuroendocrine differentiation predict shortened survival in operated large cell carcinoma of the lung.

In order to test the hypothesis that increased apoptotic activity is connected with neuroendocrine differentiation and low differentiation degree in large cell carcinoma (LCLC) and is regulated by bcl-2 family proteins, we analysed the extent of apoptosis and tumor necrosis and their relation to the expression of bcl-2, bax, bak and mcl-1 in 35 LCLCs, of which 20 were classified as large cell neuroendocrine lung carcinomas (LCNEC) and 15 as large cell non-neuroendocrine lung carcinomas (LCNNEC). The extent of apoptosis was determined by detecting and counting the relative and absolute numbers of apoptotic cells and bodies using in situ 3 -end labelling of the apoptotic DNA. The extent and intensity of expression of the bcl-2, bax, bak and mcl-1 proteins were studied by immunohistochemistry. Also the relative volume density of necrosis was evaluated and correlated with the other parameters. Finally, all the parameters were evaluated as prognostic markers and correlated with data on the survival of the patients. Relatively high apoptotic indices were seen in both tumor types (average for both 2.53%, range 0.09 27.01%). Significantly higher bcl-2 and bak indices were detected more often in LCNECs than in LCNNECs. Immunohistochemically detected bax, bcl-2 and bak expression was independent of apoptotic index in both tumor types, while there was a statistically significant positive association between mcl-1 expression and apoptotic index in LCNNEC but not in LCNEC. There was a statistically significant association between high apoptotic index and shortened survival in LCLC. However, no association was found between tumor stage and apoptosis. The patients with LCNEC and low bcl-2 protein expression had a significantly shorter survival time than those with high bcl-2 indices. There was also a clear association between shortened survival and necrotic LCNNEC. LCLCs show relatively high apoptotic activity, which is associated with shortened survival. The expression of bcl-2, bak and mcl- 1 is associated with neuroendocrine differentiation in LCLC. Finally, our results support some previous reports suggesting that bcl-2 expression in combination with some other markers involved in apoptosis and/or proliferation may be of prognostic value in cases of lung carcinoma with neuroendocrine differentiation.

Adult↗

Apoptosis during breast carcinoma progression.

The purpose of this study was to investigate apoptosis, proliferation, and the expression of apoptosis-influencing proteins bcl-2 and bax and estrogen and progesterone receptors during breast carcinoma progression. The material consisted of 53 paired breast carcinoma samples representing primary and recurrent tumors and 24 control samples. The recurrent sample was located either in the breast scar tissue or at a distant metastatic site. Apoptosis was detected both morphologically and by 3' end labeling of fragmented DNA. Cell proliferation was evaluated immunohistochemically by the MIB index. The expressions of bcl-2, bax, and estrogen and progesterone receptors were studied immunohistochemically. There was a significant increase in the extent of apoptosis and proliferation in recurrent tumors compared to the primary lesions (P = 0.015 and P = 0.038, respectively). In primary tumors with an apoptotic index of >0.50%, the survival of the patients was significantly shorter (P = 0.015). In cases with a significant increase in apoptosis or proliferation in the recurrent tumor, the survival of the patients was significantly shorter (P = 0.009 and P = 0.003, respectively). Of the variables analyzed, bcl-2 expression and a positive estrogen receptor status were significantly associated with a low extent of apoptosis (P = 0.010 and P = 0.042, respectively). Their changes were parallel to the changes in apoptosis during tumor progression, although the associations did not reach statistical significance. The results show that increased apoptosis is associated with a worse prognosis in breast carcinoma. A significant increase in apoptosis in recurrent breast carcinoma lesions predicts a worse clinical outcome.

Antigens, Nuclear↗

Xenobiotic-metabolizing enzymes and cancer risk: correspondence between genotype and phenotype.

Metabolic activation and/or inactivation of a carcinogen is usually studied in appropriate in vitro systems but ultimately needs confirmation from in vivo studies, i.e. phenotype studies. It determines what initially happens to a carcinogen to which an organism is exposed. Consequently, it is of major importance to investigate the correspondence between any particular genotype of a carcinogen-metabolizing enzyme and its phenotypic expression, if any. The need to elucidate the relationship between genotype and phenotype is particularly important now, when methods for uncovering changes in genomic DNA are rather easy, even routine. There are several examples where the correspondence between a variant allele and an altered phenotype, measured by a probe drug or by some other means, has been elucidated (e.g. several alleles of CYP2D6). However, there are also cases where this correspondence has either not been studied (sometimes because of a lack of suitable probe substances) or has remained unclear (e.g. CYP1A1 or CYP2E1), despite case-control studies demonstrating an association between a variant allele and cancer risk. In the end one has to address the basic question as to how the genotype determines the phenotype and whether there is any biologically plausible link between the genotypic differences and cancer susceptibility. A knowledge of the complete sequence of events, from the gene to the outcome, would be helpful in unravelling the implications and possible preventive and treatment strategies to be employed in cases where clear associations between carcinogen-metabolizing enzymes and cancer susceptibility have been uncovered.

Alleles↗

The CYP2A subfamily: function, expression and genetic polymorphism.

The CYP2A6 gene is one of the three members of the human CYP2A gene subfamily, the others being CYP2A7 and CYP2A13. The CYP2A6 enzyme catalyses the oxidation of several compounds that have clinical or toxicological interest, including pharmaceuticals, procarcinogens, and tobacco smoke constituents. CYP2A6 is expressed mainly in liver, and only trace amounts are found in extrahepatic tissues. Coumarin is a high-affinity substrate for CYP2A6, and a phenotyping test based on coumarin 7-hydroxylation has been developed. Two mutant alleles of the CYP2A6 gene have been found, i.e. CYP2A6*2 and CYP2A6*3. Homozygosity for both mutated alleles appears to confer a poor metabolizer (PM) phenotype, detectable by slow or non-existent 7-hydroxylation of coumarin. Very little is known about the inducibility and regulation of CYP2A6, but studies on the mouse orthologue, CYP2A5, have revealed novel pathways for induction. Since CYP2A6 polymorphism was found fairly recently, nothing is known presently about associations between variant CYP2A6 alleles and diseases or other adverse outcomes of exposure to toxins. Such studies, however, are clearly warranted, given the wide range of procarcinogens and other toxins metabolized by the CYP2A6 enzyme.

Animals↗

Genotyping of human cytochrome P450 2A6 (CYP2A6), a nicotine C-oxidase.

Cytochrome P450 2A6 (CYP2A6) is a polymorphic enzyme responsible for the oxidation of certain precarcinogens and drugs and is the major nicotine C-oxidase. The role of CYP2A6 for nicotine elimination was emphasised recently by the finding that smokers carrying defective CYP2A6 alleles consumed fewer cigarettes [Pianezza et al. (1998) Nature 393, 750]. The method used for CYP2A6 genotyping has, however, been found to give erroneous results with respect to the coumarin hydroxylase phenotype, a probe reaction for the CYP2A6 enzyme. The present study describes an allele-specific PCR genotyping method that identifies the major defective CYP2A6 allele and accurately predicts the phenotype. An allele frequency of 1-3% was observed in Finnish, Spanish, and Swedish populations, much lower than described previously.

Aryl Hydrocarbon Hydroxylases↗

Characterization of the human dihydropyrimidine dehydrogenase gene.

Dihydropyrimidine dehydrogenase (DPD) catabolizes endogenous pyrimidines and pyrimidine-based antimetabolite drugs. A deficiency in human DPD is associated with congenital thymine-uraciluria in pediatric patients and severe 5-fluorouracil toxicity in cancer patients. The dihydropyrimidine dehydrogenase gene (DPYD) was isolated, and its physical map and exon-intron organization were determined by analysis of P1, PAC, BAC, and YAC clones. The DPYD gene was found to contain 23 exons ranging in size from 69 bp (exon 15) to 961 bp (exon 23). A physical map derived from a YAC clone indicated that DPYD is at least 950 kb in length with 3 kb of coding sequence and an average intron size of about 43 kb. The previously reported 5' donor splice site mutation present in pediatric thymine-uraciluria and cancer patients can now be assigned to exon 14. All 23 exons were sequenced from a series of human DNA samples, and three point mutations were identified in three racial groups as G1601A (exon 13, Ser534Asn), A1627G (exon 13, Ile543Val), and G2194A (exon 18, Val732Ile). These studies, which have established that the DPYD gene is unusually large, lay a framework for uncovering new mutations that are responsible for thymine-uraciluria and toxicity to fluoropyrimidine drugs.

Alleles↗

Cytochrome P4502A6 (CYP2A6) expression in human hepatocellular carcinoma.

The hepatic cytochrome P4502A6 (CYP2A6) enzyme mediates the oxidative metabolism of several procarcinogens that have liver as their primary target. Mouse models indicate that liver tumors invariably overexpress CYP2A forms, and that inflammation and cirrhosis may regulate the CYP2A expression pattern. In this study, the distribution of the CYP2A6 protein was investigated in a series of 24 human hepatocellular carcinoma (HCC) samples by immunohistochemical analysis. A polyclonal antibody was raised in chicken against CYP2A5, the mouse orthologue of CYP2A6. The antibody was characterized and found to be specific for CYP2A members. In DBA/2 mouse liver, a strong increase of CYP2A5 protein amount, localized in the perivenous region, occurred in response to treatment with pyrazole. In human HCC samples, overexpression of CYP2A6 protein was associated with the presence of chronic inflammation and cirrhosis. CYP2A6 protein was observed in 9 of 16 (56%) of samples with non-neoplastic hepatocytes and in 10 of 24 (42%) HCC samples. The staining for CYP2A6 protein was very heterogeneous in tumor cells, suggesting that increased expression of CYP2A6 occurred in a distinct subpopulation of neoplastic cells. In Kaplan-Meyer survival analysis, there was a tendency toward a more favorable prognosis in patients with CYP2A6-positive tumors in comparison with patients with CYP2A6-negative tumors. These data suggest that, in human HCC, in contrast to mouse liver tumors, CYP2A6 overexpression is not an invariable phenotype.

Animals↗

Expression of xenobiotic-metabolizing cytochrome P450s in human pulmonary tissues.

The purpose of the study was to obtain a comprehensive picture of the expression of cytochrome P450s (CYP) in the human lung, broncho-alveolar macrophages (BAM), and peripheral blood lymphocytes. The methods used were reverse transcriptase-polymerase chain reaction (RT-PCR) with gene-specific primers and immunohistochemistry with specific anti-peptide antibodies. In RT-PCR, CYPs 1A1, 2B6/7, 2E1, 2F1, 3A5 and 4B1 were detected in cDNA prepared from whole lung tissue. BAMs expressed CYPs 1B1, 2B6/7, 2C, 2E1, 2F1, 3A5 and 4B1. These tissues lacked CYPs 1A2, 2A6, 2D6, and 3A7. In peripheral blood lymphocytes, only CYP1B1 and CYP2E1 mRNAs were consistently detected. In immunohistochemistry with anti-CYP3A antibodies, epithelial staining of CYP3A5 was observed in 100% of individuals, while only about 20% exhibited CYP3A4 staining. CYP3A5 protein was localized in the bronchial wall, bronchial glands, bronchiolar epithelium, alveolar epithelium, vascular endothelium and alveolar macrophages. The results indicate that several different xenobiotic-metabolizing CYPs are present in the human lung, possibly contributing to in situ activation of pulmonary procarcinogens.

Cytochrome P-450 Enzyme System↗

Induction of CYP2A5 by pyrazole and its derivatives in mouse primary hepatocytes.

Mouse liver CYP2A5 is induced by several structurally unrelated compounds. In intact mouse liver, pyrazole (PYR) and 4-hydroxypyrazole (4-OH) induce selectively the expression of CYP2A5 while expression of other CYPs is decreased. In this study we exposed mouse primary hepatocytes to PYR, 4-OH, 4-methylpyrazole (4Me; 0.1-20 mM) and 4-iodopyrazole (4-I; 0.1-5.0 mM). PYR and its derivatives increased coumarin 7-hydroxylase activity, with 4-1 and 4-OH being the strongest inducers, by 114-fold and 41-fold, respectively. However, only 4-1 treatment increased markedly the CYP2A5 protein content. CYP2B9/10-mediated pentoxyresorufin O-deethylase activity (PROD) was decreased by 80% by 4-Me and 4-1, and by 50% by 4-OH while PYR had no marked effect. PYR and 4-Me increased 2- to 3-fold the CYPA1/2-mediated ethoxyresorufin O-deethylase activity (EROD) while 4-OH and 4-1 had no marked effect on this enzyme. The time of exposure markedly affected the inducibility of 4-OH such that induction was 7-fold stronger when it was added to the incubation medium 24 h after the isolation of hepatocytes compared to exposure 3 h after their isolation. Cimetidine prevented the induction of coumarin 7-hydroxylase activity by PYR and 4-OH by 46 and 74%, respectively indicating that their effects on the expression of CYP2A5 are, at least partly, mediated via their metabolites. The data demonstrate that the regulation of CYP2A5 is different from other monooxygenases and that the effects of pyrazole and its derivatives are different in vivo and in vitro. Also, the timing of exposure markedly affects the inducibility of 4-OH in hepatocytes.

Animals↗

Xenobiotic-metabolizing cytochrome P450 enzymes in the human feto-placental unit: role in intrauterine toxicity.

Practically all lipid-soluble xenobiotics enter the conceptus through placental transfer. Many xenobiotics, including a number of clinically used drugs, are known to cause unwanted effects in the embryo or fetus, including in utero death, initiation of birth defects, and production of functional abnormalities. It is well established that numerous xenobiotics are not necessarily toxic as such, but are enzymatically transformed in the body to reactive and toxic intermediates. The cytochrome P450 (CYP) enzymes are known to catalyze oxidative metabolism of a vast number of compounds, including many proteratogens, procarcinogens, and promutagens. About 20 xenobiotic-metabolizing CYP forms are known to exist in humans. Most of these forms are most abundant in the liver, but examples of exclusively extrahepatic CYP forms also exist. Unlike rodents, the liver of the human fetus and even embryo possesses relatively well-developed metabolism of xenobiotics. There is experimental evidence for the presence of CYP1A1, CYP1B1, CYP2C8, CYP2D6, CYP2E1, CYP3A4, CYP3A5, and CYP3A7 in the fetal liver after the embryonic phase (after 8 to 9 weeks of gestation). Significant xenobiotic metabolism occurs also during organogenesis (before 8 weeks of gestation). Also, some fetal extrahepatic tissues, most notably the adrenal, contain substantial levels of CYP enzymes. The full-term human placenta is devoid of many CYP activities present in liver. Placental CYP1A1 is highly inducible by maternal cigarette smoking. Other forms present in full-term placenta include CYP4B1 and CYP19 (steroid aromatase), which also contribute to the oxidation of some xenobiotics. At earlier stages of pregnancy, the placenta may express a wider array of CYP genes, including CYP2C, CYP2D6, and CYP3A7. Due to the small size of the fetus and low abundance of CYPs in placenta, the contribution of feto-placental metabolism to overall gestational pharmacokinetics of drugs is probably minor. In contrast, several toxic outcomes have been ascribed to altered metabolic patterns in the feto-placental unit, including a putative association between reduced placental oxidative capacity and birth defects. Examples of human teratogens that are substrates for CYP enzymes include thalidomide, phenytoin, ethanol, and several hormonal agents. Recent studies have improved our understanding of the expression and regulation of individual CYP genes in the fetus and placenta, and the stage is set for applying this knowledge with more precision to the role of xenobiotic metabolism in abnormal intrauterine development in humans.

Cytochrome P-450 Enzyme System↗

Expression of cytochrome P450 genes encoding enzymes active in the metabolism of tamoxifen in human uterine endometrium.

Long-term tamoxifen therapy is associated with increased risk of uterine endometrial cancer and benign alterations. Tamoxifen is metabolized to reactive intermediates by endometrial tissue, and tamoxifen therapy-induced DNA adducts have been found in human endometrium. Since metabolic activation is often catalyzed by cytochrome P450 (CYP) enzymes, the expression profile of individual xenobiotic-metabolizing CYP genes was studied in human uterine endometrium by reverse transcriptase-polymerase chain reaction. The following CYP mRNAs were detected: CYP2B6, CYP2C, CYP2E1, CYP3A4, CYP3A5, CYP4B1, and CYP11A. Amplification of CYP1A1, CYP1A2, CYP2A6, CYP2D6, CYP2F1, CYP3A7, and CYP19 was not found. CYP3A5 and CYP4B1 transcripts were found only in samples from premenopausal women. These data suggest that the human endometrial epithelium has the potential of producing CYP enzymes known to generate genotoxic intermediates from tamoxifen and metabolites that affect oestrogen receptors.

Adult↗

Expression of CYP2E1 in human lung and kidney during development and in full-term placenta: a differential methylation of the gene is involved in the regulation process.

Methylation of dinucleotide CG residues located in the 5' end of the CYP2E1 gene has been demonstrated to play a role in the control of gene expression in the human developing liver. This study was undertaken to examine the CYP2E1 RNA content of human lung, kidney and full-term placenta and to determine whether the expression of CYP2E1 was controlled by its methylation status in these tissues. CYP2E1 was expressed at a very low level in the lung and kidney at whatever age, and at a variable level in full-term placentas. The restriction profile of genomic DNA was identical in lung and kidney and corresponded to a heavy methylation of HpaII/MspI sites located within the promoter, the first exon and first intron of the CYP2E1 gene. A different pattern of methylation was obtained in full-term placentas, indicating that CpG residues located in the 5' end of the gene were predominantly but not fully demethylated. However, the variable level of CYP2E1 RNA in full-term placentas suggests the involvement of other elements in the regulation process of CYP2E1 in this tissue.

Adult↗

High-grade malignant non-Hodgkin's lymphomas differ from low-grade lymphomas in the extent of apoptosis and their expression of bcl-2, mcl-1, bax and p53.

In this study, we investigated the extent of apoptosis in 82 non-Hodgkin's lymphoma and 4 reactive follicular hyperplasias and correlated the findings with the extent of apoptosis as determined by the 3'-end labelling method of the apoptotic DNA. To study the influence of apoptosis-regulating proteins bcl-2, bax, mcl-1 and p53 on the extent of apoptosis, we also immunostained the samples with antibodies to them. The results show that there is a significant difference in the extent of apoptosis between low- and high-grade non-Hodgkin's lymphomas, the latter on average showing considerably more apoptotic cells (0.38 +/- 0.30 and 1.44 +/- 1.35%, respectively; p = 0.001). In line with this difference, high-grade lymphomas had significantly more cases with a weak expression of bcl-2 and strong expression of bax (p = 0.00008 and p = 0.016, respectively). They also showed significantly more cases with a positive p53 immunoreactivity (p < 0.00001) and strong mcl-1 immunoreactivity (p = 0.018). The results suggest that apoptosis-affecting genes bcl-2, bax, mcl-1 and p53 all take part in the regulation of apoptosis in malignant non-Hodgkin's lymphomas and contribute to a different level of apoptosis between high- and low-grade non-Hodgkin's lymphomas.

Apoptosis↗

Microsomal metabolism of carbamazepine and oxcarbazepine in liver and placenta.

Metabolism of both carbamazepine (CBZ) and oxcarbazepine (OCBZ) were catalyzed by human liver microsomes and microsomes from livers of CBZ-induced or non-induced C57BL/6 mice. Human placental microsomes metabolized only OCBZ. Mouse liver microsomes metabolized CBZ to carbamazepine-10,11-epoxide (CBZ-E), 10-hydroxy-10,11-dihydro-carbamazepine (10-OH-CBZ), 3hydroxy-carbamazepine (3-OH-CBZ), 10,11-trans-dihydroxy-10,11-dihydro-carbamazepine (10,11-D) and to an unidentified metabolite. CBZ-pretreatment of mice increased both ethoxyresorufin O-deethylase activity in the liver and the amount of CBZ-E in microsomal incubations regardless of the age of mice. Human liver microsomes catalyzed the formation of CBZ to 9-hydroxymethyl-10-carbamoyl acridan (9-AC) in addition to CBZ-E, 3-OH-CBZ and 10-OH-CBZ. OCBZ was metabolized to its active metabolite in all incubations. An unknown metabolite was also present in some of the incubations. Human liver microsomes catalyzed only minute covalent binding of CBZ and OCBZ to DNA. Binding of OCBZ was, however, one order of magnitude greater than binding of CBZ. Human placental microsomes from the mothers on CBZ therapy did not catalyze CBZ metabolism. The same microsomes catalyzed OCBZ metabolism to 10-OH-CBZ and to an unknown metabolite. These results indicate autoinduction in CBZ metabolism in mouse liver. Due to the higher binding of OCBZ than CBZ to DNA in vitro, further studies on the potential mutagenicity of OCBZ may be warranted.

Animals↗