Disposition of the neuroleptics perphenazine, zuclopenthixol, and haloperidol cosegregates with polymorphic debrisoquine hydroxylation.
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Biomedical subjects
Publications and source records attributed to L Bertilsson.
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We have investigated the prevalence of poor metabolisers (PM) of S-mephenytoin in 373 unrelated, healthy Spanish Caucasian subjects, based on the enantiomeric S/R mephenytoin ratio in urine collected 0-8 h and 24-32 h after intake of the racemic drug. Five of the subjects were PM (1.34%, 95% confidence interval 0.18-2.59%), a prevalence lower than in 6 other Caucasian populations, but only significantly lower than in studies in France and Switzerland (P < 0.01). We suggest that this difference might be due to the use of different phenotyping procedures.
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Pronounced differences in the CYP2D6 gene between Chinese and Caucasians have previously been described. There was a low frequency of detrimental mutations in the Chinese CYP2D6 gene causing the poor metabolizer (PM) phenotype. In contrast to Caucasians where the Xba I 44 kb allele is almost always associated with the PM phenotype, Chinese with the 44/44 kb RFLP pattern are extensive metabolizers (EM). In order to evaluate whether the debrisoquine hydroxylation seen in subjects with this haplotype is catalysed by a functionally similar enzyme to CYP2D6 or is catalysed by another type of P450 isozyme, product selectivity of the 4-hydroxylation was studied in 27 Chinese. The inhibition of CYP2D6 by quinidine was also investigated. In the 26 Chinese EM the S(+)-4-hydroxy enantiomer was found to be the major urinary metabolite of debrisoquine with an enantiomeric excess of 96.8-100%, which is similar to that in Caucasians. A correlation between the amount of S(+)-4-hydroxy and the minor 7-hydroxy metabolites excreted in urine (r = 0.72; p < 0.001) was seen. The amount of these two metabolites excreted was less in Chinese EM of debrisoquine with the 44/44 kb RFLP pattern, than in those with the wild type 29/29 kb pattern (p < 0.01). The stereoselectivity was very high in both groups. All Chinese homozygous for the 44 kb fragment (n = 5) were transformed to apparent PM after a single 100 mg dose of quinidine similarly to five Caucasian EM. Both the S(+)-4- and 7-hydroxylations of debrisoquine were inhibited by quinidine in both populations. This study shows that the cytochrome P450 catalysing the 4- and 7-hydroxylations of debrisoquine in Chinese EM has the same properties (product stereoselectivity and inhibition by quinidine) as the CYP2D6 in Caucasian EM.
We administered the Karolinska Scales of Personality to 225 healthy subjects in Spain selected from a group of 925 individuals previously phenotyped with regard to their capacity to hydroxylate debrisoquine. A significant relationship was found between the scores in as many as 4 of the 15 subscales (psychic anxiety, psychasthenia, inhibition of aggression and socialization) and the debrisoquine hydroxylation capacity. Poor metabolizers were more anxiety-prone and less successfully socialized than extensive metabolizers of debrisoquine. This and a previous study among subjects in Sweden suggest that there may be a relationship between personality and the activity of the enzyme hydroxylating debrisoquine (cytochrome P4502D6). This polymorphic enzyme may have an endogenous neuroactive substrate or product, such as a biogenic neurotransmitter amine.
Debrisoquine and S-mephenytoin hydroxylation polymorphisms were studied in 156 unrelated native Estonians. The hydroxylation phenotypes were assessed by coadministration of mephenytoin with debrisoquine or dextromethorphan. The frequency of the poor metaboliser phenotype of debrisoquine/dextromethorphan was 4.5% (95% confidence interval 1.2-7.8%), and that of mephenytoin was 3.9% (95% confidence interval 0.9-6.9%) among Estonians, which is very similar to what has been reported in other Caucasian populations.
Mephenytoin and debrisoquine hydroxylation phenotypes were determined twice in 15 Spanish healthy volunteers with an interval of about one year. The phenotype assignment did not change in any subject for either debrisoquine or mephenytoin. Among extensive metabolisers of mephenytoin, there was a slight increase (P = 0.04) of the mephenytoin-S/R enantiomeric ratio over the study period. The family members of a poor metaboliser of mephenytoin were phenotyped, and the heterozygous extensive metabolisers were found to have higher mephenytoin-S/R ratios than other extensive metabolisers suggesting a correlation between the genotype and the S/R ratio.
There is pronounced individual variation in the human metabolism (eg, acetylation and hydroxylation) of drugs, in many cases due to genetic factors. The genetic basis of cytochrome P4502D6 gene defects has recently been elucidated, for instance. The cytochrome P4502D6 is absent from 7 percent of the Caucasian population, usually owing to the presence of either of two different mutations in the corresponding gene. PCR amplification of genomic DNA with allele-specific primers enables rapid prediction of the patient's drug metabolism capacity and the individualization of drug treatment with respect to dosage.
The frequency of poor metabolizers of debrisoquin was low and similar in four different native Chinese nationalities. In a total sample of 695 Chinese subjects, only seven (1.01%) had a urinary ratio between debrisoquin and 4-hydroxydebrisoquin greater than 12.6, which is the antimode between poor metabolizers and extensive metabolizers in white populations. This is significantly lower than the 6.82% found in 1011 white Swedish healthy subjects (p less than 0.0001). Admixture analysis indicated the occurrence of two distributions within extensive metabolizers among both Chinese and white subjects. The mean of the distribution of metabolic ratios among Chinese extensive metabolizers was shifted toward higher values compared with Swedish extensive metabolizers (p less than 0.01). The frequency of poor metabolizers of S-mephenytoin was higher in 137 Chinese (14.6%) than in 488 Swedish (3.3%) subjects (p less than 0.0001). Our findings imply that drugs metabolized by these two polymorphic hydroxylases should be prescribed in different dosages to Chinese and white subjects.
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To investigate the importance of genetic factors for the regulation of haloperidol metabolism, we studied the disposition of a single oral dose of this drug in a panel of six extensive (EM) and six poor (PM) metabolizers of debrisoquine. PM eliminated haloperidol significantly slower than EM, the plasma half-life being longer (mean 29.4 +/- S.D. 4.2 and 16.3 +/- 6.4 h; p less than 0.01) and the clearance lower (1.16 +/- 0.36 and 2.49 +/- 1.31 L/h/kg; p less than 0.05). A 4-mg dose of haloperidol was given to the first three PM, but all three developed side effects, and a 2-mg dose had to be given to the next three PM subjects. All EM received 4 mg haloperidol. The disposition of haloperidol is thus associated with the genetically determined capacity to hydroxylate debrisoquine. PM of debrisoquine (7% of Caucasian populations) might, therefore, on common doses of haloperidol, achieve high plasma concentrations and thereby have an increased risk of side effects. At the other extreme, very rapid metabolizers may need increased doses of haloperidol.
We have previously shown that the disposition of haloperidol is decreased in poor (PM) compared to extensive (EM) metabolizers of debrisoquine. We now report that the plasma levels of the reduced metabolite of haloperidol, after a single 2- or 4-mg oral dose of the parent drug, are significantly higher in PM than in EM of debrisoquine. As PM have higher concentrations of haloperidol than EM, more of the reduced metabolite should be formed, since the formation of reduced haloperidol from haloperidol seems to be independent of the debrisoquine hydroxylase (cytochrome P4502D6) activity. Another reason to explain the increased metabolite levels in PM may be a decreased reoxidation of the reduced metabolite to haloperidol, as this reaction is catalyzed by cytochrome P4502D6. A third reason might be that reduced haloperidol is transformed to other metabolites by this enzyme.
Twelve Caucasian healthy men and women, of whom six were poor metabolizers (PMs) and six were extensive metabolizers (EMs) of S-mephenytoin, together with 13 Chinese healthy men and women (five PMs and eight EMs), received a single oral 20 mg dose of omeprazole. Plasma levels of omeprazole and its two main metabolites, omeprazole sulphone and hydroxyomeprazole, were determined by HPLC. The mean (+/- SD) area under the plasma concentration-time curve (AUC) for omeprazole was 11.1 +/- 2.6 and 0.9 +/- 0.4 microM h in the Caucasian PMs and EMs, respectively. Corresponding values for elimination half-life were 2.3 +/- 0.4 and 0.7 +/- 0.4 h. In the Chinese PMs and EMs the AUC of omeprazole as 13.3 +/- 5.6 and 2.6 +/- 1.8 microM h. The AUCs of omeprazole were significantly higher in the Chinese EMs than in the Caucasian EMs possibly due to the higher proportion of heterozygotes in the former than in the latter group. The elimination half-life in the Chinese PMs and EMs was 2.4 +/- 0.2 and 0.8 +/- 0.2 h--similar to the observations in the Caucasian subjects. The maximum plasma concentration of hydroxyomeprazole was five-fold and four-fold higher in EMs compared to PMs among Caucasians and Chinese, respectively. The elimination half-life of the hydroxy metabolite was also longer in PMs than in EMs in both populations. The ratio between AUC for omeprazole and AUC for hydroxyomeprazole was 11.9 +/- 2.1 and 0.6 +/- 0.1 in Caucasian PMs and EMs, respectively. Corresponding values in the Chinese were 13.1 +/- 2.9 and 1.6 +/- 0.5.(ABSTRACT TRUNCATED AT 250 WORDS)
After a single oral dose of racemic mephenytoin the S/R ratio in urine can be used to phenotype extensive (EM) and poor metabolizers (PM) of S-mephenytoin. We confirmed the increased S/R ratio by storage time in EM because of the hydrolysis of a conjugate of S-mephenytoin excreted in EM, but not in PM. The S/R ratio in the 0-8 h urine increased 8- to 127-fold (from 0.22 +/- 0.16 to 9.9 +/- 11.3) after acid treatment of urine from 30 EM, but there was no effect of acid in that of 12 PM. We suggest that the phenotype of mephenytoin in combination with debrisoquine can be determined in the 0-8 h urine by estimating the mephenytoin S/R ratio before and after acid treatment.
The cytochromes P450 participate in the metabolic activation of precarcinogens. Recent results reveal that many P450 genes are polymorphically distributed. Different investigators have tried to link polymorphic variants of the CYP1A1, CYP2D6 and CYP2E1 genes to the incidence of cancer, particularly lung cancer, in Asian and Caucasian populations. In the current overview we briefly summarize this research. It appears that interesting functionally linked interindividual differences in the CYP1A1 gene have been found and could be of importance in understanding differences in susceptibility to lung cancer. On the other hand, the data presented regarding CYP2D6 and CYP2E1 are less promising. We also describe interethnic differences in the P450 gene structures as a major obstacle for extrapolation of results between different ethnic groups.
The Far Eastern and Caucasian populations are strikingly different with respect to the debrisoquine/sparteine hydroxylation polymorphism. The number of poor metabolizers, as defined for Caucasians, is very low among Chinese and Japanese. We investigated the molecular basis for this difference by analysis of the CYP2D6 gene in 115 Chinese subjects, combined with phenotypic classification of codeine and debrisoquine metabolism. A correlation between the rates of metabolism of these two drugs and genotype, as analyzed by RFLP using XbaI, was observed among the Chinese. A high frequency (37%) of alleles indicative of gene insertions (reflected by XbaI 44kb fragments) was recorded in the Chinese, but was not associated with the poor metabolizer phenotype, as it is in Caucasians. PCR amplification of part of the CYP2D6 gene with mutation specific primers for CYP2D6A (29A) and CYP2D6B (29B) allelic variants revealed that the XbaI 44kb fragment in Chinese apparently contains a functional CYP2D6 gene, in contrast to the situation among Caucasians. The results provide a molecular explanation of the interethnic difference in the metabolism of drugs affected by the debrisoquine hydroxylation polymorphism.