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Biomedical subjects

M V Relling

Publications and source records attributed to M V Relling.

At least 127 records · Page 7Linked to original sources

Phenotypic debrisoquine 4-hydroxylase activity among extensive metabolizers is unrelated to genotype as determined by the Xba-I restriction fragment length polymorphism.

1. The major pathway for 4-hydroxylation of debrisoquine in man is polymorphic and under genetic control. More than 90% of subjects (extensive metabolizers, EMs) have active debrisoquine 4-hydroxylase (cytochrome P450IID6) while in the remainder (poor metabolizers, PMs), cytochrome P450IID6 activity is greatly impaired. 2. Within the EM group, cytochrome P450IID6-mediated metabolism of a range of substrates varies widely. Some of this intra-phenotype non-uniformity may be explained by the presence of two subsets of subjects with different genotypes (heterozygotes and homozygotes). 3. Cytochrome P450IID6 substrates have not differentiated between these two genotypes. However, a restriction fragment length polymorphism (RFLP) which identifies mutant alleles of cytochrome P450IID6 locus has been described and can definitively assign genotype in some heterozygous EM subjects. 4. In this study, we used RFLP analysis and encainide as a model substrate to determine if non-uniformity in cytochrome P450IID6 activity among EMs is related to genotype. We tested the hypothesis that heterozygotes exhibit intermediate metabolic activity and that homozygous dominants exhibit the highest activity. We proposed encainide as a useful substrate for this purpose since cytochrome P450IID6 catalyzes not only its biotransformation to O-desmethyl encainide (ODE) but also the subsequent metabolism of ODE to 3-methoxy-O-desmethyl encainide (MODE). 5. A single 50 mg oral dose of encainide was administered to 139 normal volunteers and 14 PMs were identified. Urinary ratios among encainide, ODE and MODE in the remaining 125 EM subjects revealed a wide range of cytochrome P450IID6 activity. However, Southern blotting of genomic DNA digested with XbaI identified obligate heterozygotes in both extremes of all ratio distributions.(ABSTRACT TRUNCATED AT 250 WORDS)

Autoradiography↗

Concordance of P450 2D6 (debrisoquine hydroxylase) phenotype and genotype: inability of dextromethorphan metabolic ratio to discriminate reliably heterozygous and homozygous extensive metabolizers.

Debrisoquine-hydroxylase (P450 2D6) not equal to phenotype was determined in 116 individuals using dextromethorphan as the substrate probe. Polymerase chain reaction and restriction fragment length polymorphism analyses were used to detect inactivating mutations in the CYP2D6 gene and assign genotype in all 116 individuals. Using a urinary metabolic ratio (DM/DT) of > or = 0.3 to define poor metabolizer (PM) phenotypes, 96 subjects were extensive metabolizers (EM) and 20 were PMs. The CYP2D6(B) mutation was the most common mutation, present in 18% of phenotypic EM alleles and 66% of the alleles in PM phenotypes. The CYP2D6(A) mutation (8% of PM alleles) and the CYP2D6 gene deletion (2.6% of PM alleles) were found less frequently. Seven different variants of the CYP2D6 gene were found. In subjects with two mutant alleles, genotype correctly predicted the PM phenotype in 100% (n = 13). Overall, genotype agreed with phenotype assignments in 109 of 116 (94%) subjects. Seven subjects with a wild-type allele at the CYP2D6(A) and CYP2D6(B) loci were phenotypic PMs, representing the only discrepant results. These discrepancies could be due to the imprecision of phenotype assignment or to as yet unknown mutations in CYP2D6. Although the median urinary metabolic ratio was significantly lower in homozygous EMs compared with heterozygous EMs, there was extensive overlap in metabolic ratios in these two groups, indicating that the DM/DT metabolic ratio cannot reliably discriminate homozygous EMs from heterozygous EMs.

Adolescent↗

Clinical and biological characteristics of acute lymphocytic leukemia in children with Down syndrome.

Twenty-eight children with Down syndrome (DS) and acute lymphocytic leukemia (ALL) were compared to non-DS control leukemics matched by age, white blood cell (WBC) count, and treatment protocol to evaluate presenting manifestations, toxicity, and outcome. The DS children with ALL did not have unique clinical or biologic characteristics to distinguish their disease from that of non-DS patients. Eleven of the DS patients had successfully banded cytogenetic studies of their leukemic cells with the distribution of model chromosome number of 46 (n = 1), 47 (2), 48 (5), and greater than 50 (3). The abnormal leukemic line involved an isochromosome of the long arm of chromosome 9[i(9q)] in 3 cases. Multiagent chemotherapies induced complete remissions in 25 patients (85%), yet overall 5 year event-free survival was only 23 +/- 8% when compared to 64 +/- 9% for control children receiving similar therapies (P less than 0.01). A significant cause of treatment failure was late marrow recurrence in the DS children. Host toxicity was striking in these children. Severe congenital heart disease present in one-third contributed to 2 deaths during antileukemia therapy. Hyperglycemia secondary to diabetogenic agents and repeated bronchitis were common toxicities. Intolerance to the antifolate methotrexate with severe gastrointestinal and skin toxicities was universal. We conclude that the poor prognosis for the child with DS and ALL stems in part from their increased risk of complications and toxicity from intensive modern leukemia therapies, specifically antifolates.

Antineoplastic Combined Chemotherapy Protocols↗

Xbal 16- plus 9-kilobase DNA restriction fragments identify a mutant allele for debrisoquin hydroxylase: report of a family study.

Previous studies have established that two Xbal polymorphic restriction fragments [11.5 and 44 kilobases (kb)] hydridizing to a full length debrisoquin hydroxylase cDNA are associated with two different mutant alleles for the debrisoquin hydroxylase gene (IID6). An independent allele, defined by Xbal 16- and 9-kb fragments, has previously been identified only in extensive metabolizers, precluding determination of whether this restriction fragment length polymorphism (RFLP) pattern identifies a functional or nonfunctional mutant allele of IID6. We phenotyped and performed RFLP studies in the family of a poor metabolizer (PM) propositus with the Xbal 16 + 9 allele. Three family members were of the PM phenotype, two of whom had the 16 + 9 allele, indicating that this RFLP pattern identified a nonfunctional IID6 allele in this family. Moreover, additional RFLP analyses indicated that the PM mother had two different IID6 mutant alleles that produce the Xbal 29-kb fragment, indistinguishable from the RFLP pattern produced by a functional IID6 allele. These data indicate that the Xbal 16 + 9 RFLP pattern can identify a mutant IID6 allele and that at least two different nonfunctional mutant alleles can produce the Xbal 29-kb fragment found in all extensive metabolizers.

Adult↗

Tolbutamide and mephenytoin hydroxylation by human cytochrome P450s in the CYP2C subfamily.

Previous biochemical studies have suggested that tolbutamide and mephenytoin are metabolized by the same cytochrome P450 enzyme. Conversely, clinical studies indicate the involvement of different P450 forms in tolbutamide and mephenytoin metabolism. Our objective was to elucidate further those P450 enzymes responsible for hydroxylation of these two drugs. We studied both tolbutamide and (S)-mephenytoin hydroxylation in microsomes from 38 different normal adult human livers, and found large variability in the rates of metabolism for both reactions (1.75-47.4 nmol/mg/hr for hydroxytolbutamide formation and 0.1-7.2 nmol/mg/hr for 4-hydroxymephenytoin formation). No significant correlation was found between the two activities. However, both reactions shared common inhibitors in vitro, including inhibition by antikidney-liver-microsome autoantibodies (Meier and Meyer, Biochemistry 26: 8466-8474, 1987) and by teniposide. Two human liver cDNAs for P450s of the CYP2C subfamily designated IIC8 and IIC9 (S. Kimura, J. Pastewka, H. V. Gelboin and F. J. Gonzalez, Nucl. Acids Res. 15: 10053-10054, 1987), were functionally expressed in human HepG2 and TK- cells using a vaccinia virus vector. Interestingly, tolbutamide was hydroxylated by both expressed P450s. Only IIC9 catalyzed the 4-hydroxylation of (R)-mephenytoin and neither enzyme metabolized (S)-mephenytoin. We conclude that tolbutamide and (R)-mephenytoin are both metabolized by the same P450 enzyme, IIC9, and that tolbutamide is hydroxylated by an additional highly related enzyme, IIC8, contributing to the lack of correlation of the two hydroxylase activities among human liver microsomes and indicating the absence of a monogenically controlled polymorphism for tolbutamide.

Cell Line↗

Anticancer drugs as inhibitors of two polymorphic cytochrome P450 enzymes, debrisoquin and mephenytoin hydroxylase, in human liver microsomes.

To identify potential substrates for the debrisoquin and mephenytoin hydroxylation polymorphisms, we performed in vitro inhibition studies with human liver microsomes and the respective prototype substrates in the absence and presence of several anticancer drugs. (+)-Bufuralol 1'-hydroxylation (as the prototype reaction for the debrisoquin polymorphism) was tested at 5 microM substrate concentration and in the presence of cyclophosphamide (0 to 200 microM), teniposide (0 to 100 microM), vinblastine (0 to 220 microM), etoposide (0 to 200 microM), flavone acetic acid (0 to 1000 microM), or ifosphamide (0 to 200 microM). (S)-Mephenytoin 4-hydroxylation was tested at 60 microM substrate concentration and in the presence of the same drugs as above; vincristine was also tested at 0 to 200 microM. Teniposide competitively inhibited the 4-hydroxylation of (S)-mephenytoin, with a Ki of 12 microM (Km of the reaction = 65 microM). Etoposide and flavone acetic acid were weaker inhibitors of this reaction. The only agent to inhibit bufuralol hydroxylation was vinblastine, which did so with a Ki of 90 microM (Km of the enzyme for the substrate = 12 microM). We conclude that teniposide and high concentrations of flavone acetic acid could spuriously alter mephenytoin phenotype determination in cancer patients, and that teniposide deserves further investigation as a possible substrate for the genetically regulated mephenytoin hydroxylase.

Antineoplastic Agents↗

Hepatic drug clearance in children: studies with indocyanine green as a model substrate.

For several drugs metabolized by the liver, higher dosages (mg/kg body weight) are required in children to attain serum concentrations comparable to those in adults. Indocyanine green (ICG), a commonly used model substrate for hepatic elimination of high intrinsic clearance drugs, has been extensively evaluated in adults but not in children. We evaluated the disposition of ICG in 115 children with leukemia and nine healthy adult volunteers. The mean (SD) ICG plasma clearance (CLp) for all 115 children (age 0.9-17.8 years) was significantly greater (p = 0.0006) than for adults [14.8 (7.8) versus 10.6 (2.4) mL/min/kg]. When clearances from only children less than 10 years of age (N = 85) were compared with those from adults, the difference was even greater [15.6 (7.3) versus 10.6 (2.4) mL/min/kg; p = 0.0001]. However, when ICG CLp was normalized to body surface area, values for children did not differ significantly from adults [378 (204) versus 422 (102) mL/min/m2]. These data provide insight as to why dosage (mg/kg) requirements of certain drugs are higher in children.

Adolescent↗

Lorazepam pharmacodynamics and pharmacokinetics in children.

We evaluated the effects of low doses of lorazepam on episodic versus long-term memory, attention, and somatic and affective symptoms, as well as its pharmacokinetics, in a group of 16 children aged 2.8 to 14.2 years. Psychologic assessments of each child were performed twice before intravenous administration of lorazepam (0.03 mg/kg), and 1 1/2 hours and 24 hours after lorazepam; there were no significant changes in long-term memory, attention, or somatic symptoms. There was a significant decrease in affective symptoms at 1 1/2 hours (p = 0.011), with a trend toward decreased anxiety at 1 1/2 and 24 hours after lorazepam (p = 0.026 and 0.028, respectively). There was also a selective anterograde amnestic effect in 5 of 16 children after lorazepam (p = 0.06). Mean (+/- SD) lorazepam systemic clearance was 1.3 +/- 0.4 ml/min/kg, with a terminal half-life of 10.5 +/- 2.9 hours and an unbound clearance of 15.9 +/- 5.2 ml/min/kg. A group of healthy adult volunteers who were given lorazepam had a mean systemic clearance of 1.0 +/- 0.4 ml/min/kg, somewhat less than that of the children (p = 0.069). There were no significant differences in any lorazepam pharmacokinetic parameter between those children who did versus those who did not have changes in affective symptoms or amnesia. These data should be helpful in establishing the dose of lorazepam in children, as the drug becomes more widely used as an antiemetic, premedicant, and anticonvulsant agent.

Adolescent↗

Clinical pharmacology of cancer chemotherapy in children.

The pharmacokinetics of most anticancer drugs are highly variable in children, and are commonly different when children are compared to adults. Several recent studies have demonstrated that variability in systemic exposure due to interpatient pharmacokinetic variability, may be related to the probability of oncolytic effects or toxicity for some anticancer drugs. This review has exemplified differences in the clinical pharmacology of several anticancer drugs, when children are compared to adults. Such age-related differences in the pharmacokinetics and pharmacodynamics of these drugs, together with biologic differences between pediatric and adult cancers, provide the rationale for systematically conducting pediatric phase I through IV studies of anticancer drugs and denote the risks of relying on adult trials to identify new therapeutic strategies for childhood cancers.

Adult↗

Dextromethorphan and caffeine as probes for simultaneous determination of debrisoquin-oxidation and N-acetylation phenotypes in children.

The feasibility and reliability of simultaneously determining debrisoquin oxidation and N-acetylation phenotypes was assessed in children with use of two innocuous substrate probes given by mouth, 30 mg dextromethorphan (Pertussin ES) and 25 to 46 mg caffeine (Coca-Cola beverage). Twenty-six children and adolescents (aged 3 to 21 years) were studied three times, once with each substrate given alone and once with the two substrates given together. Urine was collected for 4 hours, and the molar urinary metabolic ratios for dextromethorphan:dextrorphan and for two caffeine metabolites (AFMU:1X) were determined by HPLC ultraviolet assays. The urinary metabolic ratios for both substrates were not significantly different when the substrates were given alone compared with when they were given together. There also was no difference in either the oxidation or acetylation phenotype assignments when the two substrates were given alone and when they were given together. No adverse effects were observed. We conclude that dextromethorphan and caffeine can be given together to simultaneously determine oxidation and acetylation phenotypes and can thereby provide an innocuous, noninvasive method for the assessment of polymorphic drug metabolism in various pediatric populations.

Acetylation↗

Anticancer therapy as a pediatric pharmacodynamic paradigm.

A series of clinical pharmacokinetic and pharmacodynamic studies of anticancer drugs has been conducted in children with cancer. Since these drugs typically have narrow therapeutic indices, frequently producing toxicities at dosages required for therapeutic effects, they represent an exemplary class of drugs for pediatric pharmacodynamic studies. Reviewed herein are pediatric pharmacokinetic studies of teniposide and high-dose methotrexate, which demonstrate age-related differences in the disposition of these two highly active anticancer drugs, and pharmacodynamic studies which demonstrate a relation between the disposition of these drugs and their clinical effects (efficacy and toxicity) in children with acute lymphocytic leukemia.

Antineoplastic Agents↗

Polymorphic drug metabolism.

The three best-described genetic polymorphisms of drug metabolism--the debrisoquin/sparteine type of oxidative polymorphism (hereafter referred to as the debrisoquin polymorphism), the polymorphism of N-acetylation, and the mephenytoin type of oxidative polymorphism--are reviewed. For all three polymorphisms, the poor-metabolizer phenotype is inherited as an autosomal recessive trait. The debrisoquin and mephenytoin oxidative polymorphisms involve defects in two separate cytochrome P450 enzymes. The prevalence of the poor-metabolizer phenotype for debrisoquin ranges between 2% and 10% for groups of various ethnic origins. The poor-metabolizer phenotype for mephenytoin comprises about 5% of the Caucasian population and about 20% of the Japanese population. N-acetyltransferase is a cytosolic enzyme whose clinical polymorphism was discovered using isoniazid as the substrate probe. The prevalence of the slow-acetylator phenotype among American and European Caucasian and American black groups is about 50%; among the Japanese it is about 10%. More than 20 agents are substrates for debrisoquin hydroxylase, about 15 for N-acetyltransferase, and 3-5 for mephenytoin. In poor metabolizers, debrisoquin can cause hypotension, and sparteine can cause blurred vision, headache, and dizziness. Clinical consequences of the slow-acetylator phenotype include increased susceptibility to systemic lupus erythematosus induced by procainamide and hydralazine, peripheral neuropathy induced by isoniazid, hydralazine, and dapsone, and sulfasalazine-induced dose-related leukopenia, nausea, vomiting, headache, and vertigo. After administration of mephenytoin, poor metabolizers have increased somnolence and intellectual impairment. Awareness of genetic polymorphisms of drug metabolism should improve understanding of interindividual variability in drug disposition and response.

Humans↗

Removal of methotrexate, leucovorin, and their metabolites by combined hemodialysis and hemoperfusion.

This article documents the case of a patient with severe renal failure immediately after having been given high-dose methotrexate; the patient was effectively treated with repeated hemodialysis, charcoal hemoperfusion, leucovorin, and thymidine. The methotrexate plasma concentration was reduced from 390 mumol/L to 7 mumol/L as a result of 24.5 hours of hemodialysis along with 39.5 hours of hemoperfusion. Although a rebound in the plasma methotrexate concentration occurred the first three times that hemodialysis and/or hemoperfusion was stopped, reinstitution of the procedure was always effective in further lowering methotrexate concentrations. The patient was subsequently managed with leucovorin and thymidine rescue. Simultaneous measurements before and after the hemodialysis-hemoperfusion apparatus and before and after the hemoperfusion device alone revealed a percent decrease in the concentration of d-leucovorin of 36% and 79%; 1-leucovorin, 82% and 75%; 5-methyltetrahydrofolate, 52% and 64%; methotrexate, 73% and 37%; and 7-hydroxymethotrexate, 21% and 24%, respectively. Gastrointestinal and hematologic toxicities were completely prevented, and serum creatinine normalized within 24 days.

Adolescent↗

Pharmacokinetics and toxicity of methotrexate in children with Down syndrome and acute lymphocytic leukemia.

Children with Down syndrome and acute lymphocytic leukemia (ALL) have poor tolerance to antineoplastic drugs, including methotrexate (MTX). We evaluated MTX pharmacokinetics and toxicity in five patients with Down syndrome and ALL who had received multiple high doses of MTX (1 g/m2). Three control patients without Down syndrome were matched to each case according to sex, race, age, and initial leukocyte count. Median MTX plasma concentrations, measured 42 hours after infusion, were significantly higher in patients with Down syndrome versus control patients (average 0.47 vs 0.24 mumol/L, respectively, P = 0.03). When a 42-hour MTX concentration of 0.5 mumol/L was used to identify patients at risk for toxicity, more courses were considered at high risk for toxicity among patients with Down syndrome (31 of 62, 50%) than in control patients (13 of 214, 6.1%, P less than 0.0001). The average MTX clearance was 64.1 mL/min/m2 in Down syndrome vs an average control value of 80.6 mL/min/m2 (P = 0.13). Toxicity after each high-dose MTX course was graded according to standardized criteria. Grades 2 through 4 gastrointestinal toxicity and grades 3 and 4 hematologic toxicity occurred more frequently in the patients with Down syndrome (36% and 13.4% of courses, respectively) vs the control patients (3.6% and 0.9% respectively, P less than 0.0001 for both). This higher frequency of toxicity occurred despite higher doses and prolonged duration of leucovorin given to all patients with Down syndrome. We conclude that altered MTX pharmacokinetics may contribute to the higher incidence of MTX-induced toxicity seen in patients with Down syndrome.

Adolescent↗

Simultaneous administration of multiple model substrates to assess hepatic drug clearance.

We have evaluated a method to simultaneously assess three major processes involved in hepatic drug clearance using three model substrates administered simultaneously as a 5-minute intravenous injection. Lorazepam, indocyanine green, and antipyrine are used to assess conjugation, liver blood flow, and microsomal oxidative metabolism, respectively. These substrates were administered individually and as a mixture to 10 healthy adult male volunteers to determine if clearances of any of the compounds were affected by simultaneous administration. Mean clearances of the substrates were not different when administered alone (9.97, 0.78, and 0.53 ml/min/kg) vs. together (11.5, 0.89, and 0.52 ml/min/kg), using a paired t test. Since we were using this method to assess hepatic drug clearance in children with leukemia, the effect of short-term allopurinol was assessed. The three model substrates were administered to the volunteers after 0, 1, 8, and 22 days of treatment with allopurinol, 200 mg t.i.d. There was no change in mean clearance of any of the three compounds at any point during allopurinol treatment (repeated-measures ANOVA). We conclude that this technique is a simple and valid method to simultaneously assess three major processes involved in hepatic drug clearance and is not affected by up to 22 days of oral allopurinol treatment. This simple technique, requiring a single set of blood samples, has potential applications in the assessment of developmental changes in hepatic drug clearance, as well as the effects of environmental, therapeutic, and pathophysiologic factors on three major processes involved in hepatic drug clearance.

Administration, Oral↗

Hepatic drug clearance in children with leukemia: changes in clearance of model substrates during remission-induction therapy.

We administered a "cocktail" of three model substrates for hepatic processes: antipyrine for oxidation, lorazepam for glucuronidation, and indocyanine green for hepatic blood flow, to children with acute lymphocytic leukemia (ALL). The plasma clearance of these substrates was determined before and after remission-induction therapy in 14 children with ALL. We found an improvement in clearance of antipyrine (0.65 to 0.95 ml/min/kg; P less than 0.01) and lorazepam (0.93 to 1.20 ml/min/kg; P less than 0.05) in 12 of 14 patients, with a mean increase of 67% and 52%, respectively, from before to after remission. There was no significant difference in mean indocyanine green clearance from before to after induction (14.8 vs. 14.4 ml/min/kg). There were no significant differences in liver function test results (SGOT, prothrombin time, or serum bilirubin) from before to after induction. Plasma concentrations of albumin, alpha 1-acid glycoprotein, and apolipoprotein A changed by a mean of +11.1%, -38.2%, and +68.6%, respectively, from before to after remission. However, these changes did not account for the changes in total plasma clearance of lorazepam, because lorazepam free fraction did not change and lorazepam free clearance increased by a mean of 83%. Our hypothesis is that eradication of hepatic leukemic infiltration by ALL remission therapy resulted in an improvement in microsomal metabolism of antipyrine and lorazepam.

Adolescent↗