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Biomedical subjects

B F Roth-Schechter

Publications and source records attributed to B F Roth-Schechter.

At least 19 recordsLinked to original sources

The effect of co-administration of zolpidem with fluoxetine: pharmacokinetics and pharmacodynamics.

Since early treatment of depression with Selective Serotonin Reuptake Inhibitor (SSRI) can be associated with insomnia, daytime antidepressive therapy with SSRI is often combined with nighttime administration of a hypnotic. This study attempted to evaluate the pharmacokinetic and pharmacodynamic interactions between zolpidem 10 mg, a short-acting hypnotic, and fluoxetine 20 mg, an SSRI. Twenty-seven healthy male volunteers (mean age 23.5 years, range 20 - 29) received zolpidem and fluoxetine in the following open design: zolpidem on night 1, a morning dose of fluoxetine daily from day 2 through day 18 and zolpidem on night 18. Using HPLC, plasma levels of zolpidem, fluoxetine, and norfluoxetine were determined throughout night 1 for zolpidem, night 18 for zolpidem, fluoxetine, and norfluoxetine on days 16 and 17 for fluoxetine and norfluoxetine. Morning psychomotor tests were performed on days 1, 2, 18, and 19. Statistical analysis of data consisted of repeated measures of ANOVA. There was no significant difference in AUC, C(max), and T1/2 of zolpidem plasma concentrations between night 1 (zolpidem) and night 18 (zolpidem and fluoxetine). There was a significantly higher zolpidem plasma level at 0.5 hours after dosing together with a significantly shorter T(max) on night 18 compared to night 1. There was no significant difference in C(min) of plasma fluoxetine and norfluoxetine levels between day 16 and 17 of fluoxetine dosing, and there was no difference in T(max) between day 17 (fluoxetine) and day 18 (fluoxetine and zolpidem). There was a 3 - 4% increase in AUC and C(max) of fluoxetine and norfluoxetine plasma concentrations in the presence of zolpidem. There was no difference in the next morning performance tests after nighttime treatment of zolpidem alone after 17 consecutive days of fluoxetine treatment, or after zolpidem in the presence of steady-state plasma concentrations of fluoxetine. Both zolpidem and fluoxetine were well tolerated alone or in combination. It is concluded that the onset of action of zolpidem may possibly be shortened in the presence of fluoxetine, but no other significant pharmacokinetic or pharmacodynamic interactions occurred between zolpidem and fluoxetine.

Adult

Polyamines and the development of isolated neurons in cell culture.

The possible role of polyamines in the development of isolated neuroblasts from the cerebral cortex of embryonic chick brain was studied by means of three enzyme activated irreversible inhibitors of ornithine decarboxylase. alpha-Difluoromethylornithine (MDL 71782) showed no effects on development at doses which depleted dramatically neuronal putrescine and spermidine levels. In contrast, the two other inhibitors, (E)-alpha-(fluoromethyl)dehydroputrescine (MDL 72197) and 6-heptyne-2,5-diamine (MDL 72175) blocked the formation of neuronal outgrowths completely at 100 microM and higher concentrations. Their effects on neuronal polyamines differed at this concentration considerably. The growth inhibitory effect of the ornithine decarboxylase inhibitors was in all cases reversible: cells which were grown after 3 days of exposure to the drugs in normal medium produced neuronal networks. The presence of putrescine at 10 microM concentration in the culture medium prevented the growth inhibitory effect of 100 microM concentrations of the drugs. This concentration of putrescine was not only capable of preventing, but also of reversing growth inhibition by the ornithine decarboxylase inhibitors. Although the cellular polyamine levels were not correlated with the morphological development of chick embryo cortical neurons, the present study leaves no doubt that putrescine plays an essential role in neuronal differentiation.

Alkynes

[3H]diazepam binding sites on chick neurons in primary culture.

High affinity [3H]diazepam binding sites were identified on neurons prepared from the hemispheres of 8-day-old chick embryos and grown in serum-containing or serum-free medium. Clonazepam (IC50 = 3 nM) was more potent than Ro 5-4864 (IC50 greater than 1000 nM) in displacing [3H]diazepam binding. GABA and pentobarbital, in the presence of chloride ions were able to stimulate [3H]diazepam binding synergistically. These interactions were found to be comparable to those observed in mammalian brain.

Animals

Inhibitory action of serum from a Laron dwarf on normal cellular function.

Glucose uptake and O2 consumption of confluent glial cells grown in culture were measured in the presence of serum-free buffer and compared with those measured in the presence of serum from a normal volunteer, from an hGH-deficient dwarf and from a Laron dwarf. Cellular glucose uptake and respiration in the absence or presence of insulin or hGH are inhibited by Laron serum.

Blood

Differential effect of pentobarbital on chick neurons and astrocytes grown in culture.

Primary cultures of neurons and astrocytes prepared from brains of 8-day-old and 15-day-old chick embryos. respectively, were grown for periods between 3 and 23 days. Cellular oxygen consumption was measured at various times in the presence of either pyruvate or succinate as substrate. Neuronal oxygen consumption was significantly higher than glial respiration, irrespective of the substrate employed. Dose-response curves for the effect of pentobarbital on respiratory activity of each cell type were constructed with the two substrates. In the presence of succinate neuronal respiration was more sensitive to pentobarbital than that of glial cells with a shift in the dose-effect curve by at least one order of magnitude. In the presence of pyruvate, glial cell respiration was inhibited at pentobarbital concentrations more than ten times lower than those effective in neurons. It is concluded that the differential sensitivity to pentobarbital between neurons and glia is due to differences in their respective energy metabolism.

Animals

Activity and isoenzyme pattern of lactate dehydrogenase in neurons and astroblasts cultured from brains of chick embryos.

Primary cultures of neurons and glial cells (astroblasts) prepared from brains of 8-day-old and 15-day-old chick embryos, respectively, were grown for periods between 3 and 19 days. Specific activity of lactate dehydrogenase (LDH) increased in both types of cultures as a function of time and was always significantly higher in glial cells than in neurons. Glial cell extracts were found to contain predominantly the anaerobic isoenzymatic form of LDH (LDH-M4), and this pattern did not change over a period of 19 days. Cultured neurons contained predominantly the aerobic isoenzymatic form LDH-H4, and there was a progressive appearance of all other isoenzymes over an 8-day period. These results support the hypothesis of a different energy metabolism in neurons and glia.

Animals

Developmental changes of the GABA and polyamine systems in isolated neurons in cell culture.

Dissociated cells of cerebral hemispheres from 8-day-old chick embryos were cultivated for 8 days in polylysine-coated Petri dishes. Changes of DNA, RNA, total proteins, putrescine, spermidine, spermine, free amino acids and enzymes involved in polyamine and GABA metabolism were studied throughout neuronal development in culture. The presence of GABAergic neurons in the cultured cell population was demonstrated. There were time-dependent changes in cellular polyamine concentrations and the activities of the enzymes involved in polyamine metabolism. Since no significant proliferation took place after the first day in culture, the observed changes indicate a role of polyamine metabolism during neuronal differentiation; it was not possible, however, to attribute the observed changes to specific functions. This culture system seems especially useful for the study of biochemical and of functional correlations between GABA and polyamine metabolism and morphological and functional developments of neurons.

Aging

Development of glial cells in primary cultures: energy metabolism and lactate dehydrogenase isoenzymes.

Primary cultures of glial cells prepared from brains of newborn rats were grown for periods of 1-5 weeks. After a proliferative phase of between 2 and 3 weeks, the cultures were maintained in stationary phase, during which a significant increase of oxygen consumption and of the activities of lactate dehydrogenase, succinate dehydrogenase, and mitochondrial glycerolphosphate dehydrogenase could be observed. Furthermore, qualitative changes in the lactate dehydrogenase isoenzyme pattern were found with time, characterized by a shift toward an enhanced synthesis of H subunits. A similar development was found in comparing the LDH isoenzyme pattern in the brain of 15-day-old rat embryo with those of newborn and adult rat brains. It is suggested that some aspects of maturation of glial cells in culture are comparable to those occurring in whole brain in vivo, namely a shift towards an enhanced aerobic metabolism.

Animals

Development and mechanism of barbiturate tolerance in glial cell cultures.

The effects of exposure of glial cells in primary culture and in continuous line (clone NN) to pentobarbital over various periods of time on cellular respiration and activities of enzymes involved in carbohydrate metabolism were studied. The results obtained in glial cells in primary culture were qualitatively identical to those obtained in glial cells in clonal line (NN). Both types of glial cells were shown to develop biochemical tolerance to pentobarbital as defined by an attenuated response to the depressant effects of a challenging dose of pentobarbital on cellular respiration in barbiturate-cultivated cells compared to those grown in drug-free medium. The biochemical tolerance was evident in the presence of glucose and succinate but not malate as substrate. This tolerance to pentobarbital was accompanied by increased activities of hexokinase, glucose-6-phosphate dehydrogenase, succinate dehydrogenase, and glutamate dehydrogenase and by a marked increase in the number of glial cell mitochondria as observed in electron micrographs. The results are interpreted to indicate a compensation of glial cells to the continuous presence of PB by an accelerated glucose uptake and metabolism, an accelerated metabolism of succinate, and an increased mitochondrial activity.

Animals

Preferential neurotoxicity of pentobarbital on nerve and glial cells in culture.

The effect of pentobarbital was studied in a mixed population of nerve and glial cells dissociated from brains of 7-day chick embryos and maintained in culture. Pentobarbital-Na was added in various concentrations ranging from 5 X 10(-5) M to 1 X 10(-3) M. The neuronal density was monitored by counting the neurons, neuronal identity was established by staining for Nissl Bodies and acetylcholinesterase. Over a culture period of 3 weeks, it was found that the barbiturate exerts a preferential dose-dependent cytotoxic effect on neurons.

Animals

[Barbiturate dependence at the cellular level].

In cultivated astroblasts of hamster, clone NN, increasing concentrations of sodium pentobarbital induce morphological changes in the sense of a cell differentiation. At the same time occurs a progressive dependence on the barbiturate, illustrated by cell degeneration when the effector is eliminated from the medium containing the cultivated cells.

Animals