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Biomedical subjects

S Caccia

Publications and source records attributed to S Caccia.

At least 91 records · Page 5Linked to original sources

Effect of L-cysteine on the long-term depletion of brain indoles caused by p-chloroamphetamine and d-fenfluramine in rats. Relation to brain drug concentrations.

The effect of L-cysteine on the depletion of serotonin and 5-hydroxyindoleacetic acid concentrations caused by p-chloroamphetamine and d-fenfluramine was studied in various brain regions one week after drug injection. p-Chloroamphetamine (2.5 and 5 mg/kg i.p.) and d-fenfluramine (13.4 mg/kg i.p.) significantly reduced serotonin and 5-hydroxyindoleacetic acid levels in the striatum, hippocampus and cortex, particularly in the latter areas. L-cysteine (500 mg/kg i.p.), administered 30 min before and 5 h after p-chloroamphetamine or d-fenfluramine, significantly reduced the effect of either drug on the concentrations of both indoles without causing any effect by itself. In another experiment, the rats were treated as above and were killed at various times after p-chloroamphetamine or d-fenfluramine injection to determine, in parallel, the indole levels in the whole brain and the concentration of p-chloroamphetamine, d-fenfluramine and its metabolite d-norfenfluramine in the plasma and brain. p-Chloroamphetamine and d-fenfluramine markedly lowered both indoles, particularly 16 and 24 h after injection. L-cysteine had no effect on the indole concentrations but significantly reduced the effect of p-chloroamphetamine, d-fenfluramine 16 and 24 h after injection. At these times, the brain concentrations of p-chloroamphetamine, d-fenfluramine and d-norfenfluramine were markedly lower in the L-cysteine-treated than in the control rats. Analysis of the blood concentration of p-chloroamphetamine, d-fenfluramine and d-norfenfluramine showed that the rats treated with L-cysteine eliminated the drugs studied more rapidly than the control animals.(ABSTRACT TRUNCATED AT 250 WORDS)

Amphetamines↗

Mode of action of tiaspirone on the central cholinergic system.

Tiaspirone, a potential antipsychotic drug, reduced the acetylcholine content of rat hemispheric brain regions (striatum 35%, hippocampus 20%, cortex 32% with no effect on N. accumbens) at an oral dose of 40 mg/kg. Choline content was uniformly raised in the same brain regions. A kinetic study showed that the drug is evenly distributed in the brain. Tiaspirone's effects on acetylcholine and choline in the striatum were not related in time. The fall off (30-240 min) of tiaspirone's effect on choline content paralleled the decline in striatal drug concentration (t1/2 = 240 min) whereas that on acetylcholine did not. No tolerance was observed to an acute challenge with tiaspirone on acetylcholine and choline in the striatum after 11 days' subchronic treatment. In vitro the drug had no effect on striatal choline acetyltransferase and acetylcholinesterase activities up to a concentration of 300 microM. The muscarinic agonist oxotremorine did not interfere with the acetylcholine decrease produced by the drug suggesting that muscarinic receptors are not essential for this effect. Tiaspirone, however, was found to be a competitive, reversible inhibitor of the sodium-dependent high-affinity choline uptake (SDHACU) by crude hippocampal and striatal synaptosomal preparations, giving IC50 values of respectively 3.69 microM and 1.14 microM. The compound did not alter SDHACU ex vivo despite the fact that it readily crosses the blood-brain barrier and achieves brain concentrations equivalent to its in vitro IC50 concentration. Tiaspirone antagonized the striatal acetylcholine increasing effect of apomorphine, a selective dopaminergic receptor agonist, supporting the idea that the drug affects the striatal cholinergic system by a primary action on dopamine receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

Evidence that central 5-HT2 receptors do not play an important role in the anorectic activity of D-fenfluramine in the rat.

To gain information on the role of central 5-HT2 receptors in the reduction of food intake caused by D-fenfluramine in rats, different intraperitoneal doses of metergoline, a non-selective 5-HT receptor antagonist and ritanserin, a selective 5-HT2 receptor antagonist, were compared for their ability (a) to antagonize the anorectic effect of D-fenfluramine; (b) to occupy central 5-HT2 receptors in vivo (measured by the binding of [3H]spiperone in the frontal cortex) and (c) to affect the concentrations of D-fenfluramine and its active metabolite, D-norfenfluramine in brain. Metergoline dose-dependently reduced the effect of D-fenfluramine (2.5 mg/kg i.p.) on food intake, with complete antagonism at 1 mg/kg, a dose which occupies about 50% of cortical 5-HT2 receptors. Ritanserin, at a dose (0.5 mg/kg) causing 50% occupation of 5-HT2 receptors, had no effect on anorexia induced by D-fenfluramine and only partially prevented it at doses which caused maximum occupation of 5-HT2 receptors (1-2 mg/kg). Unlike 1 mg/kg metergoline, 1 mg/kg ritanserin significantly reduced the concentrations of D-norfenfluramine in the frontal cortex and hypothalamus of rats 30 min after injection of D-fenfluramine. The results suggest that 5-HT receptors, other than 5-HT2, possibly 5-HT1B, are involved in the anorectic effect of D-fenfluramine in food-deprived rats.

Animals↗

Kinetics of MK-801 and its effect on quinolinic acid-induced seizures and neurotoxicity in rats.

MK-801 [(+)-5-methyl-10,11-dihydro-5H-dibenzo(a,d)cyclo-hepten-5,10-imine maleate], a noncompetitive antagonist of the N-methyl-D-aspartate-type of excitatory aminoacid receptors, was measured in plasma and brain tissues after i.p. administration to rats by using a novel high-performance liquid chromatography assay. The drug reached maximal concentrations in plasma and brain within 10 to 30 min of injection (2 mg/kg) with an elimination half-life of 1.9 and 2.05 hr, respectively. Mean ratio of brain area concentration-time curve to plasma area concentration time curve was 12.5, referring to total plasma concentrations. MK-801 distributed almost equally between plasma and red cells (mean blood-to-plasma ratio averaged 1.2 +/- 0.2 when calculated 30 and 180 min from drug administration). Plasma and brain concentrations of MK-801 rose almost linearly from 0.5 to 4 mg/kg 30 min after injection and the brain-to-plasma ratio (12.9 +/- 2.8) was constant in the dose range studied. The distribution of the drug in various brain regions 30 and 180 min after 2 mg/kg i.p. showed no preferential concentration or retention in any of the areas studied. The anticonvulsant effect of MK-801 was evaluated against limbic seizures (measured by EEG) induced by intrahippocampal injection of 120 nmol of quinolinic acid, an agonist of the N-methyl-D-aspartate-type receptors, in freely moving rats. At 0.25 and 0.5 mg/kg, MK-801 significantly lowered by 71 to 77% the number of seizures and by 80% the total time spent in seizures (P less than .01).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

The alpha 2-adrenoceptor antagonist activity of ipsapirone and gepirone is mediated by their common metabolite 1-(2-pyrimidinyl)-piperazine (PmP).

Ipsapirone and gepirone, analogs of buspirone, a newly developed antianxiety agent, form 1-(2-pyrimidinyl)-piperazine (PmP) during their biotransformation in rats. After oral administration (10 mg/kg) of a parent drug, e.g. ipsapirone or gepirone, the metabolite appears in significant amounts in plasma, with maximal concentrations of 0.9 and 1.4 nmol/ml respectively. The metabolite half-life ranged from about 140 to 200 min. Ipsapirone is eliminated more slowly than gepirone, with a half-life of about 100 and 30 min, respectively. The metabolite to parent drug ratios for the areas under the plasma concentration-time curve (AUC) were 1 for ipsapirone and 14 for gepirone. PmP (0.5-2 mg/kg p.o), ipsapirone, gepirone and buspirone (5-20 mg/kg p.o.) dose dependently antagonized the slowing of gastrointestinal transit induced by clonidine 0.1 mg/kg s.c. The doses inhibiting the antitransit effect of clonidine by 50% were 0.8 mg/kg for PmP, 14 mg/kg for ipsapirone and 9 mg/kg for both gepirone and buspirone. Analysis of small intestinal longitudinal muscle of rats given the ED50 of PmP, ipsapirone, gepirone, buspirone showed that PmP concentrations in the longitudinal muscle (with attached myenteric plexus) fell within a relatively narrow range and were consistent with the appropriate transit scores. The plasma was also tested for anticlonidine activity. These data indicate that PmP formation is a pharmacologically significant metabolic process for the buspirone-related drugs, ipsapirone and gepirone, and that this metabolite is responsible for the alpha 2-adrenoceptor blocking activity exerted by these drugs in vivo in the rat.

Administration, Oral↗

Effect of aspartame on seizures in various models of experimental epilepsy.

We investigated in rats whether aspartame intake affected the susceptibility to seizures induced chemically (metrazol, quinolinic acid) or electrically (electroshock). Aspartame (0.75-1.0 g/kg), given orally as a single bolus to 16-hr fasted animals 60 min before metrazol, significantly increased the number of animals showing clonic-tonic seizures. At 1.0 g/kg the ED50 for clonic-tonic convulsions was lowered by 23%. A similar increase in seizure susceptibility was observed with 0.25-0.5 g/kg of the aspartame's metabolite phenylalanine. When aspartame was administered to fasted rats in three divided doses (0.33 g/kg) over 120 min or to fed animals after a meal, or overnight with the diet, no significant changes in the incidence of animals showing seizures was observed. One gram per kilogram aspartame and 0.5 g/kg phenylalanine did not modify the CC50 (mA) for tonic hindlimb extension induced by electroshock and the electroencephalographic seizures caused by intrahippocampal injection of 120 nmol quinolinic acid. Plasma and brain levels of phenylalanine and tyrosine significantly raised after both 1 g/kg aspartame as a single bolus (plasma: Phe 285%, Tyr 288%; brain: Phe 146%, Tyr 192%; above controls) or in three divided doses (plasma: Phe 207%, Tyr 315%; brain Phe 103%, Tyr 211%; above controls) and 0.5 g/kg phenylalanine (plasma: Phe 339%, Tyr 410%; brain: Phe 219%, Tyr 192%; above controls), but the ratio Phe/Tyr was not modified. Our data indicate that aspartame cannot be regarded as a general proconvulsant agent. The mechanisms of potentiation of seizures induced by metrazol after the administration of the sweetner in a single rapid intake will be discussed.

Animals↗

Disposition of D-fenfluramine in lean and obese rats.

The anorectic drug D-fenfluramine (D-F) was administered as single i.v. doses of 1.25 and 6.25 mg/kg to lean female Sprague-Dawley and lean and obese female Zucker rats. Blood samples were collected serially and analysed by electron capture gas-liquid chromatography for D-F and its main metabolite, D-norfenfluramine (D-NF). At the lowest dose the disappearance of D-F followed an apparent first-order process with mean elimination half-life (T1/2) of approximately 2 h in female Sprague-Dawley and 4 h in lean and obese Zucker rats. Mean absolute steady-state volume of distribution (Vss) was the same in the lean female of both strains but total clearance (Cl) was significantly lower in the Zucker rats. Therefore elimination T1/2 of D-F was longer in female Zucker than Sprague-Dawley animals. Obese rats presented lower relative Cl and Vss but no change in absolute Cl and Vss and elimination T1/2 of the drug. Intra- and inter-strain differences were observed in hepatic microsomal protein and P-450 content. As in the case of D-F the elimination T1/2 of D-NF was also longer in Zucker than Sprague-Dawley rats. No differences were observed between lean and obese rats but in all cases the elimination T1/2 of the metabolite was much longer than that of its parent drug. After larger doses (6.25 mg/kg) the kinetics of the drug were not linear. The apparent Cl declined changing the metabolite-to-parent drug ratios in all types of rats, but more evidently in Zucker than Sprague-Dawley rats and in obese than lean animals. Inter- and intra-strain differences in D-F and D-NF kinetics should be considered in neurochemical studies of the drug and extrapolation of data across animal species requires consideration of dose dependence in the rat.

Animals↗

Interaction of the anticonvulsants, denzimol and nafimidone, with liver cytochrome P450 in the rat.

The presence of an imidazole moiety in the chemical structure of denzimol and nafimidone suggested that these new anticonvulsants might interfere with cytochrome P450-mediated mixed function monooxygenase activities. We therefore investigated their ability to bind reversibly to rat liver cytochrome P450. Both drugs displayed a type II spectra. The Ks values of binding were 6.66 and 7.00 mM, respectively, for denzimol and nafimidone. In other in-vitro studies the IC50 of the inhibition caused by denzimol and nafimidone was determined on carbamazepine (CBZ) epoxidation and diazepam C3-hydroxylation and N1-dealkylation. The IC50 values for CBZ epoxidation were 4.46 x 10(-7) and 2.95 x 10(-7) M, respectively, in the presence of denzimol and nafimidone. The IC50 values for diazepam C3-hydroxylation were 1.44 x 10(-6) and 1.00 x 10(-6) M, respectively, and those for N1-dealkylation 6.66 x 10(-7) and 5.95 x 10(-7) M. The inhibition of CBZ metabolism was also investigated ex-vivo and in-vivo after single oral doses (15 and/or 60 mg kg-1) of denzimol or nafimidone. Inhibition of CBZ-10,11-epoxidation by the two drugs was time- and dose-dependent. Further studies in-vivo showed that denzimol and nafimidone prolong pentobarbitone sleeping times indicating that both drugs bind to rat liver microsomes and are potent inhibitors in the rat of mixed function monooxygense activities both in-vitro and in-vivo.

Animals↗

Clinical pharmacokinetics of oral buspirone in patients with impaired renal function.

12 patients with mild to moderate impairment of renal function and 12 healthy subjects each received 20mg buspirone as a single dose in this acute study. Six anuric patients with chronic renal failure were given two 20mg doses of buspirone, the first 2 days before haemodialysis (between dialyses) and the second during hemodialysis (2 hours before dialysis began). The differences between the median pharmacokinetic values of buspirone for healthy subjects, patients with mild to moderate renal impairment, and anuric patients were not statistically significant. Similarly, there were no significant differences between values in mild to moderate renal failure vs healthy subjects. Some of the median pharmacokinetic values for the active buspirone metabolite 1-(2-pyrimidinyl)-piperazine (1-PP), however, differed significantly for anuric patients, compared with healthy subjects or patients with mild to moderate renal impairment. When assessed between and during haemodialysis, the anuric patients had significantly (p less than 0.05) greater pharmacokinetic median values: half-life (t 1/2) = 15.2 vs 9.8 hours; area under the concentration-time curve (AUC) = 604 vs 404 nmol/L.h; and mean residence time (MRT) = 9.28 vs 6.96 hours. No firm recommendation for specific dosage can be made based on the present data. However, it does appear that in patients with mild to moderate renal impairment, the pharmacokinetics of buspirone and its active metabolite 1-PP are similar to those in individuals with normal renal function. For anuric patients higher concentrations of the 1-PP metabolite are attained while they are not undergoing haemodialysis. A dosage reduction of 25 to 50% might be necessary when buspirone is given to anuric patients.

Administration, Oral↗

Disposition of (-)-fenfluramine and its active metabolite, (-)-norfenfluramine in rat: a single dose-proportionality study.

1. The disposition of (-)-fenfluramine, (-)-F, was studied in rats after i.v. and oral administration (1.25 to 12.5 mg/kg). Whole blood-to-plasma ratio and the protein binding (determined by equilibrium dialysis) of the compound and its main active metabolite, (-)-norfenfluramine (-)-NF, were investigated. 2. The bound fraction of both compounds (about 40%) was constant in the concentration range of 1-10 nmol/ml. The whole blood to plasma concentration ratios of (-)-F and (-)-NF were larger than unity and were constant over this dose range. 3. The drug followed apparent first-order kinetics, at doses up to 6.25 mg/kg. The mean half-lives of the parent drug and its metabolite were about 1 and 12 h respectively. The volume of distribution of (-)-F was large and total body clearance approached liver blood flow. 4. Oral doses were rapidly absorbed from the rat gastrointestinal tract. Bioavailability of the drug was about 20%. Urinary excretion of unchanged drug (3-4% of dose) and its metabolite (about 20%) were similar after i.v. and oral administration. 5. After larger doses (12.5 mg/kg) the kinetics of (-)-F were nonlinear. The AUC increased, but not in proportion to the dose, and kinetic parameters were modified. 6. Brain concentrations reflected the dose-related changes observed in (-)-F and (-)-NF blood concentrations, and patterns of brain distribution and subcellular localization of the drug and its metabolite were modified at the highest dose tested.

Administration, Oral↗

Progress in assessing the role of serotonin in the control of food intake.

There is evidence that serotonin inhibits food intake, particularly intake of carbohydrate and that induced by activation of catecholamine-containing neurons in different brain circuits. An agent that has contributed considerably to the hypothesis of a role of serotonin in feeding is fenfluramine, used as an anorexigenic drug in obese people. Experiments using synaptosomal preparations for studying monoamine uptake and release have shown that d-norfenfluramine preferentially releases serotonin from a reserpine-insensitive compartment. Studies on brain monoamine release and metabolism in intact animals have shown that d and l isomers of fenfluramine at relatively low doses have a specific action on brain serotonin and catecholamines, respectively. Several findings suggest that d-fenfluramine and d-norfenfluramine cause anorexia by increasing the availability of serotonin at postsynaptic receptors. Evidence has recently been provided that d-fenfluramine uses preferentially serotonin1 sites, particularly of the serotonin1B type, in the rat brain to cause anorexia in this animal species. Activation of serotonin1A sites by agents such as 8-OH-DPAT and buspirone instead has been shown to cause overeating. It is suggested that serotonin1B sites in the hypothalamus and serotonin1A sites in the serotonin neurons of the midbrain raphe nuclei mediate these effects. Evidence is provided that [3H]d-fenfluramine binding to rat brain membranes is different from serotonin uptake sites ([3H]imipramine binding) and serotonin receptors. It is, however, displaced by some drugs using serotonin to cause anorexia, raising the possibility that it is somewhat related to serotonin mechanisms involved in feeding control. These studies provide evidence that the serotoninergic system in the brain is a likely target for drugs affecting food intake and suggest new ways to develop novel and potent strategies for the treatment of clinical hyperphagia and anorexia.

Eating↗

Recombinant tumor necrosis factor reduces hepatic drug metabolism in vivo in the rat.

To verify the potential in vivo inhibitory effect on liver function of tumor necrosis factor (TNF), also known as cachectin, antipyrine and diazepam were chosen to probe the hepatic mixed-function oxidase system. A single dose of TNF (30 micrograms/kg) to rats significantly reduced the plasma clearance of antipyrine and diazepam by about 30% and 25%, respectively; this resulted in concomitant prolongation of the elimination half-life (t1/2) of the two drugs, although of borderline significance for the benzodiazepine. This was probably due to a decrease in hepatic cytochrome P-450 activities that are responsible for antipyrine and diazepam metabolism in TNF-treated rats. This could be of clinical relevance if a similar effect occurs in humans after therapeutically effective doses of this biological response modifier.

Animals↗

1-(o-Methoxyphenyl)piperazine is a metabolite of drugs bearing a methoxyphenylpiperazine side-chain.

Drugs bearing an o-methoxyphenylpiperazine (oOCH3PP) moiety in the side-chain of their molecule may form oOCH3PP during biotransformation in-vivo in the rat. This has been verified by combined gas chromatography-mass spectrometry of urine from rats given orally a series of relatively new o-methoxyphenylpiperazine-substituted derivatives. The metabolite is reported to be biochemically and pharmacologically active and therefore its formation may have pharmacological significance, at least for derivatives undergoing extensive cleavage of the arylpiperazine side-chain.

Animals↗

Inhibitory and inducing effects of denzimol on carbamazepine metabolism in the rat.

In vivo and in vitro alterations in carbamazepine (CBZ) metabolism and the extent of enzyme induction of the hepatic cytochrome P-450 system after chronic oral denzimol to rats were evaluated. No effect on drug-metabolizing enzymes was detected for this new anticonvulsant drug at a dose of 15 mg/kg, which is just above the anticonvulsive dose. At higher doses (60 mg/kg) denzimol significantly raised the hepatic cytochrome P-450 content, enhanced CBZ clearance and tend to shorten its elimination t1/2 and that of its active metabolite. These results, combined with those of a previous study showing impairment of CBZ metabolism after single doses of denzimol, suggest that the drug may have either inductive or inhibitory effects on microsomal mixed-function oxidase activity in the rat, depending on the dose and schedule of treatment.

Animals↗

Lipophilicity and disposition of 1-aryl-piperazines in the rat.

The disposition of eight 1-aryl-piperazines was investigated in rats after i.v. administration. The concentration of 1-aryl-piperazine in body fluids and tissues was determined by h.p.l.c. or electron-capture g.l.c. Correlations of kinetics and physiological parameters with the lipophilicity of each 1-aryl-piperazine, determined by h.p.l.c. retention on a reverse-phase C18 column at neutral pH, were investigated. Binding to rat plasma proteins varied within the series, increasing with lipophilicity. For the majority of the derivatives the blood-to-plasma ratio was close to unity, implying an almost equal distribution between erythrocytes and plasma. The most lipophilic 1-aryl-piperazine of the series partitioned more into erythrocytes. The eight compounds differed widely in Vss and total Cl values and as a general trend both values increased with lipophilicity. The percentage of the dose excreted unchanged in the urine decreased progressively with increasing lipophilicity. 1-Aryl-piperazines were distributed extensively in all the tissues examined, concentrating particularly in the eliminating organs and lung. They easily entered the rat brain, Cmax values generally being reached within five minutes of parenteral injection. 1-Aryl-piperazine brain uptake increased with lipophilicity.

Animals↗