Search PubMed⌕ Search

Biomedical subjects

S Garattini

Publications and source records attributed to S Garattini.

At least 127 records · Page 7Linked to original sources

Effects of the l isomer of fenfluramine on dopamine mechanisms in rat brain: further studies.

Experiments were carried out to gain additional evidence that l-fenfluramine reduces the dopamine-mediated effects in intact animals. l-Fenfluramine 5 and 10 mg/kg i.p. dose dependently raised the levels of homovanillic acid in the striatum and nucleus accumbens of rats 1 h after injection. The effect of 5 mg/kg l-fenfluramine disappeared and was actually reversed 4 and 8 h after injection. The effect of 10 mg/kg l-fenfluramine, administered 48 h after the last haloperidol dose, was completely antagonized in both striatum and nucleus accumbens of animals made tolerant to the effect of haloperidol on homovanillic acid levels (through repeated treatment with 1 mg/kg haloperidol i.p. twice daily for 11 days). Unlike haloperidol (0.25 mg/kg), l-fenfluramine in various doses (2.5-20 mg/kg i.p.) did not modify the levels of striatal 3-methoxytyramine or change the decrease induced by a s.c. injection of 0.5 mg/kg apomorphine. The effect of apomorphine was not antagonized by 10 or 20 mg/kg l-norfenfluramine, an active metabolite of l-fenfluramine but 20 mg/kg l-norfenfluramine significantly raised striatal 3-methoxytyramine levels. l-Fenfluramine 20 mg/kg (but not 10 mg/kg) significantly enhanced the output of striatal acetylcholine assessed by trans-striatal microdialysis, for 60 min after injection. Apomorphine 1 mg/kg i.p. completely antagonized the increase of acetylcholine caused by 1 mg/kg haloperidol or 20 mg/kg l-fenfluramine. The results confirm that the l isomer of fenfluramine produces effects on the responses to dopamine and acetylcholine similar to those of neuroleptics by a mechanism not involving direct blockade of receptors.

Animals↗

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↗

Antiinflammatory action of salicylates: aspirin is not a prodrug for salicylate against rat carrageenin pleurisy.

A current hypothesis postulates that the antiinflammatory effect of aspirin (acetylsalicylic acid) is mediated by its metabolite salicylic acid through inhibition of PGE2 synthesis. We tested this hypothesis in rats with carrageenin-induced pleurisy. Aspirin or salicylate, given orally, reduced exudation and cell migration into the pleural cavity, aspirin being more potent than salicylate. The antiinflammatory effect of aspirin cannot be explained only in terms of salicylate formation. Doses of aspirin and salicylate that inhibit inflammation by 50% result in salicylate levels in the exudate of 70 +/- 12 and 323 +/- 17 micrograms/ml, respectively. At a significant antiinflammatory dose (100 mg/kg), salicylate did not reduce the prostaglandin and thromboxane content of the exudate. This indicates that inhibition of cyclooxygenase is not a likely mechanism for the antiinflammatory effect of salicylate. Salicylate only reduced the amount of 6-keto-PGF1 alpha in the exudate at higher doses (200 mg/kg), while aspirin at an equally antiinflammatory dose (50 mg/kg) reduced the content of 6-keto-PGF1 alpha, TXB2, PGD2 but not of PGE2 in the exudate. It therefore seems unlikely that an inhibition of PGE2 synthesis is the common mechanism by which aspirin and salicylate exert their antiinflammatory effects. These results do not supported the hypothesis that aspirin is a prodrug for salicylate but rather indicate that both compounds may exert their antiinflammatory effects partly by different mechanisms.

Animals↗

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↗

Reduction of beta-adrenergic receptors can explain the lack of rebound effect after tertatolol withdrawal.

Tertatolol is a potent beta-blocker with no intrinsic sympathomimetic activity (ISA) or beta 1/beta 2 receptor subtype selectivity. We provide evidence that tertatolol competitively inhibits beta-adrenergic receptors (beta-AR) and induces a marked and persistent reduction of their number. This has been consistently found in vitro and in vivo. The in vitro study showed that the receptor reduction by tertatolol was rapid (about 1 h at 37 degrees C), slowly reversible and independent of ISA. This effect was also observed in vivo. In healthy volunteers, seven days tertatolol treatment lowered the number of beta-AR by 26%. This number gradually rose back to the pretreatment levels, and a significant effect was still present on day 3 after drug withdrawal. The reduction of heart rate by tertatolol was also persistent and was still significant on day 3 to 5 after drug withdrawal. We conclude that the reduction of the receptor numbers may be important in producing a lack of a rebound effect after discontinuation of chronic tertatolol treatment.

Adrenergic beta-Antagonists↗

Pharmacology of amineptine: synthesis and updating.

Amineptine is a tricyclic antidepressant agent with the unique capacity to decrease selectively the uptake of dopamine (DA) without affecting the uptake of noradrenaline (NA) and serotonin (5HT). The effect is obtained both in vitro and in vivo by the use of suitable methodology. Amineptine can be differentiated from amphetamine both on the basis of pharmacological as well as biochemical parameters. In vivo, amineptine increases striatal homovanillic acid without affecting the levels of other metabolites of DA, namely, 3, 4, dihydrozoxyphenylacetic acid (DOPAC) and 3-methoxytyramine (3MT). However, by using relatively high doses of amineptine, the extracellular DOPAC level--assessed by the use of pulse voltammetry--was decreased preferentially in the nucleus accumbens but not in the striatum. Chronic treatment with amineptine, as with other antidepressant agents, induces a down-regulation of beta-adrenergic receptors. Amineptine enters the brain and its pharmacological effects are likely due to the unchanged drug rather than to its two main metabolites.

Animals↗

Differential inhibition by aspirin of platelet thromboxane and renal prostaglandins in the rat.

Aspirin (ASA) beside inhibiting platelet thromboxane A2 (TxA2) can suppress the formation of renal prostacyclin (PGI2) and prostaglandin E2 (PGE2) which play a crucial role in the control of renal hemodynamics. Previous studies based on urinary PG measurements have suggested that p.o. ASA can spare renal cyclooxygenase. We wanted to establish by direct measurement whether p.o. ASA has a renal sparing effect and to establish to which extent changes in renal cyclooxygenase activity can be predicted measuring urinary excretion of 6-keto-PGF1 alpha and PGE2. Our results showed that in normal rats 10 mg/kg of ASA given p.o. partially inhibits platelet TxA2 formation (measured as serum TxB2) and does not inhibit glomerular and medullary PGI2 and PGE2 synthesis. Higher doses of ASA (30-200 mg/kg) effectively and completely inhibit platelet TxA2 independently if given p.o. or i.v., and also inhibit glomerular and medullary PG synthesis. The kinetics of the effect of ASA on platelet vs. renal cyclooxygenase is different: the inhibition being irreversible in platelets, but rapidly reversible in glomeruli and medulla. Six hours after the administration of 10 and 30 mg/kg i.v. and 30 mg/kg p.o., kidney cyclooxygenase activity recovers completely. This transient inhibition of renal cyclooxygenase is not reflected by urinary excretion of 6-keto-PGF1 alpha and PGE2 (6- and 24-hr collection periods). In conclusion our present results indicate that doses of ASA enough to inhibit platelet TxA2, transiently inhibit glomerular and medullary PGI2 and PGE2. Although the inhibitory effect on platelets is long lasting, the effect on renal cyclooxygenase is transient and rapidly reversible.(ABSTRACT TRUNCATED AT 250 WORDS)

6-Ketoprostaglandin F1 alpha↗

Renal handling of aspirin in the rat.

Aspirin (ASA), in addition to blocking platelet cyclooxygenase, thus preventing thromboxane A2 formation, can also block renal cyclooxygenase thus inhibiting the renal synthesis of vasodilatory prostaglandins (PGs) which can induce renal function deterioration. The purpose of the present study was to clarify the pharmacological basis of the inhibitory effect of ASA on renal cell cyclooxygenase in the rat. ASA was given to rats either i.v. or p.o. at doses ranging from 10 to 200 mg/kg. After both i.v. and p.o. administration ASA was rapidly detected in plasma as intact molecule. The kinetics were of a dose-dependent type with a disproportionate increase in plasma level increasing the dose. Plasma salicylic acid (SA) concentrations peaked after ASA with a precursor product relationship. ASA levels in kidney homogenates were also determined after i.v. and p.o. ASA. Whereas after i.v. administration ASA was detected in the kidney as intact molecule, no ASA was detected in the kidney after p.o. administration. SA was measurable in the kidney after both i.v. and p.o. ASA with a time course which paralleled the plasma concentrations. Results of isolated kidneys perfused with a medium containing ASA and of kidney homogenates exposed to ASA "in vitro" indicate that ASA is rapidly converted to SA by kidney tissue enzymes. After ASA hydrolysis SA accumulates in the kidney and may protect renal cyclooxygenase from the inhibitor effect of ASA.

Animals↗

Reduction of food intake by manipulation of central serotonin. Current experimental results.

Serotonergic anorectics are correctly defined only if they enhance 5-HT transmission and have their anorectic effects inhibited by drugs that block 5-HT receptors. Fenfluramine, the prototype indirect 5-HT agonist, and its metabolite, norfenfluramine, act as 5-HT releasers and uptake inhibitors and are both more effective in the dextro form. They lack the stimulant activity and do not cause hyperthermia or stereotypical behaviour as is characteristic of amphetamines. The anorectic effect of those drugs is attenuated by metergoline, a 5-HT receptor antagonist, in animals and man; 5-HT uptake inhibitors such as fluoxetine, zimelidine, SL 810385, and sertraline also cause anorexia, but only sertraline antagonism by metergoline has been reported. The effect of serotonergic anorectics on 5-HT release has been poorly investigated. Quipazine and RU-24969 cause anorexia by acting directly on 5-HT post-synaptic receptors. Serotonergic nerve terminals take up [3H]-D-fenfluramine and bind with high affinity in rat brain; uptake, an active process, appears to occur at a different site than binding, which is not affected by ouabain or low temperature. Anorexia is probably induced by interaction with 5-HT1B receptors in the rat; the human equivalent of this receptor is not known, but the 5-HT1D type is a likely candidate.

Animals↗

Different effects of fenfluramine isomers and metabolites on extracellular 5-HIAA in nucleus accumbens and hippocampus of freely moving rats.

The effects of optical isomers of fenfluramine and their metabolites, d- and l-norfenfluramine on the serotonergic system were studied in the nucleus accumbens and hippocampus of freely moving rats by in vivo voltammetry. Both isomers and the metabolites induced a slow, sustained decrease in 5HIAA but only d-fenfluramine and its metabolite, d-norfenfluramine, increased the 5HIAA levels in nucleus accumbens shortly after injection, the increase being greater after the metabolite. No effect could be detected in the hippocampus after the higher dose of d-fenfluramine.

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↗

Blockade of alpha 2-adrenoceptors by 1-(2-pyrimidinyl)-piperazine (PmP) in vivo and its relation to the activity of buspirone.

The effect of 1-(2-pyrimidinyl)-piperazine (PmP) and the parent drug, buspirone in counteracting the behavioral and biochemical effects of clonidine were evaluated in the rat. Intraperitoneal or oral administration of PmP, buspirone and yohimbine, but not of prazosin, antagonized the slowing of gastrointestinal motility induced by subcutaneous clonidine (0.1 mg/kg). The doses that inhibited the effect of clonidine on the transit time by 50% were 0.5 mg/kg i.p. and 0.7 mg/kg p.o. for PmP, 7 mg/kg i.p. and 9 mg/kg p.o. for buspirone and 0.5 mg/kg i.p. for yohimbine. PmP (0.5 mg/kg) did not block the antitransit effect of clonidine when administered by intracerebroventricular injection. The antitransit effect of a low dose of morphine (0.05 mg/kg i.p.) was not blocked by PmP (2 mg/kg i.p.). The prolongation of the hexobarbital-induced loss of the righting reflex that occurs after clonidine (0.25 mg/kg i.p.) administration was inhibited by pretreatment with PmP (0.1-2 mg/kg p.o.) or yohimbine (1 mg/kg i.p.) but not by pretreatment with prazosin (2 mg/kg i.p.). Buspirone (1-20 mg/kg) also reduced the effect of clonidine after oral administration, with a maximal effect at 5 mg/kg, whereas the same dose administered i.v. had less effect. PmP (2 mg/kg) and buspirone (15 mg/kg) raised the levels of total 3-methoxy-4-hydroxyphenylgycol (MHPG) in rat cerebral cortex, and prevented the decrease in MHPG induced by clonidine. These findings show that buspirone, in doses at which it is active as an anxiolytic, suppresses the central and peripheral effects of clonidine. This action occurs through alpha 2-adrenoceptors and is mediated primarily by the metabolite, PmP.

Adrenergic alpha-Antagonists↗

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↗

Aspartame and the rat brain monoaminergic system.

A high dose of aspartame (APM) was administered to rats to study possible effects on brain monoaminergic systems. APM and its metabolite phenylalanine (Phe) were given orally at doses of 1000 and 500 mg/kg, respectively. Significant increases were seen in brain Phe and tyrosine (Tyr) levels. Two different approaches were used to study monoaminergic systems: whole tissue measurements by HPLC-ED and in vivo voltammetry in freely moving rats. Dopamine, serotonin and their metabolites were taken as indexes of neuronal activity. In spite of the high dose used, no modification was found in monoamines or their metabolites in striatum, hippocampus and nucleus accumbens.

3,4-Dihydroxyphenylacetic Acid↗