PubMed Health⌕ Search

Biomedical subjects

C E Pippenger

Publications and source records attributed to C E Pippenger.

At least 19 recordsLinked to original sources

Pharmacology of neural tube defects.

The pharmacology of neural tube defects (NTDs) is a complex issue. Several theories regarding the etiology of NTDs emphasize the importance of interactions between genetic, environmental, and biochemical factors at a key point in time. One such factor is chronic drug therapy, a potential consequence of which is the formation of toxic drug metabolites, including free radicals (FRs), which have been implicated in the etiology of NTDs. Under normal physiological conditions, FRs are quickly destroyed by antioxidant defense systems. However, FR-mediated cellular damage can occur if these defense systems fail or are overburdened, such as in patients who are genetically deficient in FR scavenging enzyme activity (FRSEA) or who are receiving chronic drug therapy. Congenital defects, including NTDs, resulting from FR-induced damage have been reported in both experimental animals and humans. For example, the use of antiepileptic drugs (AEDs) during pregnancy that have the propensity to form FRs during their metabolism are associated with an increased risk of the development of congenital malformations, including NTDs. This article reviews the biochemistry of FRs, the factors regulating FR scavenging capacity, and the theories regarding the etiology of NTDs; presents a hypothesis of a unified mechanism for AED-induced NTDs and other congenital defects; and briefly discusses the roles of folate and selenium in the prevention of NTDs.

Anticonvulsants↗

Lemon-flavored cod liver oil and a multivitamin-mineral supplement for the secondary prevention of otitis media in young children: pilot research.

We measured blood levels of fatty acids, vitamin A, and trace metals in children undergoing ambulatory surgery for placement of tympanostomy tubes and a comparison group having other ambulatory surgical procedures. We then performed a small, outpatient, secondary prevention study using nutritional supplements chosen on the basis of those blood levels. The study subjects had lower levels of red blood cell eicosapentaenoic acid (EPA) than did adult controls. Consistent with previous reports, the levels of vitamin A were < or = 40 microg/dL for 69% of our subjects, and the plasma selenium levels for children were lower than published values for adults. We then studied one otitis media (OM) season; 8 children (0.8 to 4.4 years of age) received 1 teaspoon of lemon-flavored cod liver oil (containing both EPA and vitamin A) and 1 half-tablet of a selenium-containing children's chewable multivitamin-mineral tablet per day. During this OM season, study subjects received antibiotics for OM for 12.3% +/- 13.4% (SD; p < .05) fewer days during supplementation than before supplementation. Larger, controlled trials are warranted to assess the utility of cod liver oil (of acceptable purity and taste) and a children's multivitamin-mineral preparation containing selenium, both for the prevention of OM and for the acceptance of delayed prescription of antibiotics for this disorder.

Acute Disease↗

Controversies in blood-level monitoring: reexamining its role in the treatment of epilepsy.

This article reexamines the role of blood-level monitoring (therapeutic drug monitoring, TDM) of antiepileptic drugs (AEDs) in the current treatment of epilepsy and identifies situations in which TDM can be useful. Basic pharmacokinetic and pharmacodynamic principles are reviewed, with specific emphasis on kinetics of absorption/distribution/metabolism, elimination half-life, time to steady state, and plasma drug concentrations. The relationship between AED intensity of effect (pharmacodynamics) and plasma concentration (pharmacokinetics) is expressed mathematically, examined in the context of the major old and new AEDs, and integrated with a historical look at the role of TDM. Situations in which TDM can be useful in the modern treatment of epilepsy are presented and discussed. For both older and newer AEDs, TDM is useful in six clinical situations: establishing "baseline" effective concentrations, evaluating potential causes for lack of efficacy, evaluating potential causes for toxicity, evaluating potential causes for loss of efficacy, judging "room to move" or when to change AEDs, and minimizing predictable problems. TDM remains a valuable tool in the modern treatment of epilepsy. It can be selectively and appropriately utilized to help maximize seizure control and minimize side effects if levels are obtained in response to a patient-specific pharmacokinetic or pharmacodynamic issue or problem.

Anticonvulsants↗

Racial differences in free radical scavenging enzyme activity in children.

Oxygen-derived free radicals play an important role in multiple pediatric neurologic diseases. Five intracellular free radical scavenging enzymes and three trace elements provide a significant portion of the body's defenses against free radical-mediated injury. Although the effects of age, sex, and ethnicity on the body's antioxidant defenses have been described, no study has examined whether racial differences exist. This pilot study sought to determine the effect of racial differences on the activity of five free radical scavenging enzymes and the concentrations of three associated trace elements in normal, healthy American children. The erythrocyte and plasma activities of five major free radical scavenging enzymes (glutathione peroxidase, glutathione reductase, glutathione-S-transferase, catalase, and superoxide dismutase) and plasma concentrations of three associated trace elements (selenium, copper, and zinc) were determined for 83 healthy American children, aged 1 to 18 years. One- and two-way interactions of race, age, and sex with each dependent variable were analyzed. African-Americans had higher erythrocyte glutathione peroxidase activity, erythrocyte superoxide dismutase activity, and selenium and copper concentrations than Caucasians. Racial inequalities do exist in free radical scavenging enzyme activity and trace element concentration in healthy children. African-American children had higher activity in the two most important free radical scavenging enzymes used by the brain compared to age- and sex-matched Caucasian children. Future clinical research in free radical-mediated pediatric neurologic diseases needs to consider race along with age and sex in both study design and data analysis.

Adolescent↗

Altered antioxidant enzyme activities in children with a serious adverse experience related to valproic acid therapy.

Specific oxidative metabolites of valproic acid (VPA) have been associated with the clinically defined toxicity of the drug. To investigate the role of enzymatic detoxification in clinical toxicity, we compared activities of five antioxidant enzymes in 15 patients with a serious adverse experience (SAE) related to VPA therapy, to enzyme activities measured in 35 patients with good clinical tolerance of VPA, and 50 healthy, age-matched subjects. These enzymes included glutathione peroxidase (GSH-Px), glutathione reductase (GSSG-R), glutathione transferase, superoxide dismutase, and catalase in erythrocytes; and GSH-Px in plasma. We also determined levels of Se, Cu, and Zn, trace elemental cofactors for these enzymes, in plasma from each individual. In patients with a VPA-associated SAE, GSH-Px was significantly depressed and GSSG-R was significantly elevated relative to values for the other groups. Selenium and zinc concentrations were lower in SAE patients than in controls. These findings may indicate a role for selenium dependent antioxidant activity in individual susceptibility to an SAE related to VPA therapy.

Analysis of Variance↗

Relationships between carbamazepine-diol, carbamazepine-epoxide, and carbamazepine total and free steady-state concentrations in epileptic patients: the influence of age, sex, and comedication.

Steady-state plasma carbamazepine (CBZ), carbamazepine-epoxide (CBZE), and carbamazepine-diol (CBZD) concentrations were quantified by high-performance liquid chromatography in 435 specimens divided into two groups: CBZ monotherapy (n = 78) and CBZ polytherapy (n = 357). Distributions of concentrations of CBZ and its metabolites were derived, their protein binding investigated, and the differences of concentration/dose (mumol/L/mg/kg/day or 1/clearance) ratios were calculated as a measure for the influence of sex, age, and comedication on CBZ metabolism. Concentrations of CBZ ranged from 2.5 to 82.9 mumol/L (mean +/- SD, 22.3 +/- 10.9 mumol/L), 73% being within the therapeutic range (17-51 mumol/L), 24% being less than the therapeutic range, and 3% greater than the therapeutic range. Concentrations of CBZE ranged from 0.85 to 16.6 mumol/L (mean +/- SD, 5.17 +/- 2.56 mumol/L), and those of CBZD were between 0.77 and 36.4 mumol/L (mean +/- SD, 11.3 +/- 5.4 mumol/L). A multiplicative regression best fitted the concentration/dose plots of CBZ and CBZE and an exponential regression for CBZD. Dose correlated best with the second biotransformation product, CBZD. Free fractions were 0.22 +/- 0.03 for CBZ, 0.40 +/- 0.06 for CBZE, and 0.68 +/- 0.11 for CBZD. Sex was found to be of minor importance for CBZ disposition. A gradual, high-amplitude age increase of CBZ dose ratio was observed in the monotherapy group, with global difference of approximately 3.6 times, while CBZE dose ratio increased approximately 2-fold, and CBZD dose ratio increased to the smallest extent of 1.5 times. In the polytherapy group, a smaller global age increase for CBZ dose ratio of 3.4 times was found, but the respective increase for dose ratios of metabolites was greater compared with the monotherapy patients: 2.3 times for CBZE and 1.8 times for CBZD. Comedication of other antiepileptic drugs induced significant decrease of CBZ dose ratio only, but no changes of dose ratios of the metabolites were registered. The influence of valproic acid was represented in a particular pattern. We conclude that these findings could provide valuable information for CBZ metabolism and disposition in epileptic patients with respect to the efforts to ensure the best possible individualization of CBZ therapy.

Adolescent↗

Comparison of erythrocyte antioxidant enzyme activities and embryologic level of neural tube defects.

Increased exposure to oxidant-derived free radicals or inadequate systems for antioxidant defense could alter cellular response at critical points in development. We measured 5 antioxidant enzymes, glutathione peroxidase (GSH-Px), glutathione reductase, glutathione-S-transferase, catalase and superoxide dismutase in erythrocytes and their plasma cofactor trace elements (Se, Zn, Cu) in 37 children with myelomeningocele and in 37 age-matched controls. We placed the patients into 3 groups according to motor level of the lesion at birth. We found significantly lower GSH-Px activities (p = 0.007) in children with myelomeningocele. For paired comparisons among the 3 patient groups and controls, there were significant differences (p < 0.05) between controls and both high (thoracic) and raid (lumbar) level embryologic lesions. The finding of antioxidant enzyme variations in our patients with myelomeningocele may indicate a role for abnormal oxidative metabolism in the development of this defect. The contribution of oxidative stress to human birth defects warrants investigation. We discuss potential relationships between oxidative stress and energy metabolism during primary neurulation.

Adolescent↗

Free radical scavenging enzyme activity and related trace metals in clozapine-induced agranulocytosis: a pilot study.

We hypothesized that patients who had experienced clozapine-induced agranulocytosis would have abnormalities in their free radical scavenging enzyme activity (FRESA) and levels of related trace metals. We therefore measured FRESA profiles and related trace metals in four groups: post-clozapine agranulocytosis (POST CLOZ AGRAN) (N = 9); clozapine no agranulocytosis (CLOZ NO AGRAN) (N = 12); West Coast controls (WC CONTROLS) (N = 14); and Long Island Jewish Medical Center controls (LIJ CONTROLS) (N = 12). Glutathione peroxidase (GSH-Px, P1) levels in plasma were slowest in the POST CLOZ AGRAN group (34.3 +/- 6.9 IU/dl [standard deviation; SD]; p < 0.002); red blood cell glutathione peroxidase (GSH-Px, RBC) was highest in the WC CONTROLS (38.7 +/- 4.7 IU/g hemoglobin [Hgb]; p < 0.008); and selenium (SE) levels in plasma were lower in both the POST CLOZ AGRAN group (111.6 +/- 14.7 ng/ml) and the CLOZ NO AGRAN group(115.0 +/- 17.8) than in the WC CONTROLS (142.5 +/- 18.3; p < 0.0006). SE was also lower in the POST CLOZ AGRAN group than in the LIJ CONTROLS (129.1 +/- 21.6; p < 0.04). The presence of at least one of the following: (1) GSH-Px, P1 < 37.6 IU/dl; (2) GSH-Px, RBC < 31.0 IU/g Hgb; or (3) SE < 112.4 ng/ml, distinguished POST CLOZ AGRAN subjects from the WC CONTROLS, but not from the LIJ CONTROLS. Data from this cross-sectional pilot study suggest that abnormalities in the body's antioxidant defense system may be involved in the pathogenesis of clozapine-associated agranulocytosis. If confirmed in large-scale, prospective studies, these preliminary findings have potential clinical application in the screening and prophylaxis of clozapine agranulocytosis.

Adult↗

Erythrocyte antioxidant enzyme activities in children with myelomeningocele.

Erythrocyte free radical scavenging enzyme activities and their cofactor trace elements in plasma were assessed in 26 selected patients with myelomeningocele, both parents from 10 selected families, and 14 healthy adult controls. All index children except one were deficient in erythrocyte glutathione peroxidase (GSH-Px). Nine of 10 parent pairs had at least one parent with deficient GSH-Px activity. Children with myelomeningocele had significantly lower GSH-Px activities than their parents; the group of 10 parent pairs had significantly lower GSH-Px activities than the control group; and glutathione reductase activities were significantly lower in parents and children with myelomeningocele compared with controls. A deficiency in one or more antioxidant enzymes may increase the risk for neural tube defects.

Adolescent↗

Valproic acid-carbamazepine interaction: is valproic acid a selective inhibitor of epoxide hydrolase?

Steady state plasma carbamazepine (CBZ), carbamazepine epoxide (CBZE), and carbamazepine diol (CBZD) concentrations were quantified by HPLC in 121 specimens obtained from two groups of epileptic patients: 78 receiving CBZ monotherapy (I), and 43 receiving CBZ and valproic acid (VPA) (II). The differences of drug/metabolite ratios and concentration/dose (mumol/L/mg/kg/day or 1/clearance) ratios were calculated as a measure for the influence of VPA on CBZ metabolism. Results as means +/- SD were CBZ/CBZE 5.85 +/- 3.91 (I) vs. 4.22 +/- 1.57 (II), p < 0.02; CBZ/CBZD 2.94 +/- 1.94 (I) vs. 2.82 +/- 1.15 (II); CBZE/CBZD 0.53 +/- 0.24 (I) vs. 0.71 +/- 0.32 (II), p < 0.001. Concentration/dose ratios: CBZ 2.32 +/- 1.58 (I) vs. 3.04 +/- 1.41 (II), p < 0.05; CBZE 0.41 +/- 0.20 (I) vs. 0.73 +/- 0.28 (II), p < 0.001; CBZD 0.82 +/- 0.35 (I) vs. 1.22 +/- 0.70 (II), p < 0.001. Drug/metabolite relationship data seem to support the concept for VPA as a selective inhibitor of epoxide hydrolase, but concentration/dose ratios indicate a reduced clearance for the parent drug, and especially for its two metabolites. This latter finding is in a controversy with the former concept. In addition, a considerable age-dependency of the influence of VPA on CBZ metabolism was found: compared to monotherapy, drug/metabolite and concentration/dose ratios were most changed in children. We assume that VPA is probably not a selective inhibitor of epoxide hydrolase, and affects nonspecifically all steps of the epoxide-diol pathway of CBZ metabolism.

Adolescent↗

Pharmacodynamic interactions between phenytoin and valproate: individual and combined antiepileptic and neurotoxic actions in mice.

Although the current trend is to use monotherapy in the treatment of epilepsy, combination therapy is still employed in patients who have failed to respond to monotherapy. There is little clinical or experimental documentation of evidence against or in favor of anticonvulsant combination therapy. In this context, anticonvulsant and neurotoxic pharmacodynamic interactions between phenytoin (PHT) and valproate (VPA) were assessed in an experimental model in mice. All results were expressed in terms of brain drug concentrations for eliminating any pharmacokinetic interaction from the analysis. Both the median neurotoxic and the median anticonvulsant brain concentrations were determined for each drug used alone and for the combination. The interaction for the combination of PHT and VPA was shown to be supraadditive for the anticonvulsant activity, indicating an antiepileptic potentiation, whereas neurotoxicity was simply additive. These results suggest a potential benefit in terms of overall efficacy versus toxicity for the combination of PHT and VPA, as compared with PHT or VPA used alone.

Animals↗

Ranitidine pharmacokinetics and adverse central nervous system reactions.

BACKGROUND: Treatment with histamine2-receptor antagonists has been associated with adverse central nervous system reactions (CNS-ADRs). Previous studies of cimetidine have shown an association between CNS-ADRs and high cimetidine drug levels. While case reports of ranitidine CNS-ADRs have appeared, we wanted to study a series of patients, some of whom were critically ill, for the presence of CNS-ADRs and to correlate these with ranitidine pharmacokinetics. METHODS: A prospective, observational, open study included 163 consecutive patients, of whom 41 met entry criteria. A nonlinear least-squares regression analysis was used to establish a ranitidine pharmacokinetic dosing model. Ranitidine levels were determined by a high-performance liquid chromatographic assay. Individual ranitidine pharmacokinetics were determined by means of a bayesian model. Observations on 13 possible CNS-ADRs were recorded. The CNS-ADRs were evaluated by the Naranjo rating system. RESULTS: Ranitidine-associated CNS-ADRs, particularly lethargy, confusion, somnolence, and disorientation, occurred more frequently in patients with renal function impairment, and these were associated with higher peak concentrations, average plasma concentrations, and area under the curve. CONCLUSIONS: Ranitidine, when given in conventional doses, can cause CNS-ADRs, particularly in older patients who have substantial renal function impairment. These CNS-ADRs occur as a consequence of altered ranitidine disposition. Ranitidine doses should be reduced when renal function impairment is present, and patients should be carefully observed for CNS-ADRs.

Aged↗

Glutathione peroxidase deficiency and childhood seizures.

4 children with intractable seizures, repeated infections, and intolerance to anticonvulsants had evidence of glutathione peroxidase deficiency. 2 had low intracellular enzyme activity but normal blood selenium and high plasma glutathione peroxidase concentrations. The other 2 had low intracellular glutathione peroxidase activity with low circulating glutathione peroxidase and selenium concentrations. The clinical state of the children improved after discontinuation of anticonvulsant medication and selenium substitution.

Anticonvulsants↗

A simple, rapid method for the simultaneous determination of morphine and its principal metabolites in plasma using high-performance liquid chromatography and fluorometric detection.

This article describes a high-performance liquid chromatography (HPLC) method for the simultaneous determination of morphine (M) and its principal metabolites morphine-3-glucuronide (M3G), morphine-6-glucuronide (M6G), and normorphine (NM) in plasma. All four compounds are extracted from plasma using a C8 solid-phase extraction column, separated by reverse-phase HPLC on a C18 analytical column, and detected by spectrofluorometry at 210 nm excitation wavelength. The method takes advantage of the compounds' native fluorescence, so that derivitization is not required. Samples have been quantified over a concentration range of 25-100 ng/ml M and NM, 50-200 ng/ml M3G, and 100-300 ng/ml M6G, using nalorphine (500 ng/ml) as internal standard. Within-run and between-run errors were less than 10% for morphine and less than 13% for all the metabolites. The lower limit of quantitation for morphine is 10 ng/ml. The accuracy of the method was confirmed by including quality controls fitted to the standard curves of each compound. The assay described in this article represents a simplification of previous versions of the method, which included cumbersome extraction procedures and multiple detectors. For the first time, an internal standard has been employed. The assay is reliable and easy to use and can be performed in any therapeutic drug monitoring laboratory.

Chromatography, High Pressure Liquid↗