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G Spignoli

Publications and source records attributed to G Spignoli.

24 records · Page 2Linked to original sources

Effect of oxiracetam and piracetam on central cholinergic mechanisms and active-avoidance acquisition.

Oxiracetam at 100 and 300 mg/kg i.p. dose levels increased acetylcholine (ACh) utilization in the rat cerebral cortex and hippocampus. ACh utilization was assessed by measuring, with a gas chromatographic method, the decrease in ACh level after inhibiting its synthesis by 15 micrograms intracerebroventricularly (i.c.v.) injection of hemicholinium (HC-3). ACh steady state levels were not affected. Piracetam (300 mg/kg i.p.) also increased ACh utilization in the hippocampus. Repeated daily administration of oxiracetam 100 mg/kg i.p. caused a 31% increase in high-affinity choline uptake (HACU) in the hippocampus. A single administration of 300 mg/kg i.p. of oxiracetam and piracetam also increased HACU rate in the hippocampus. However, the effect of piracetam was over within 3 h, while 3 h after its administration oxiracetam still caused a 40% increase in HACU rate. Oxiracetam (100 mg/kg i.p.) significantly antagonized the impairment in the acquisition of an active-avoidance conditioned response (pole climbing) associated with the inhibition of ACh synthesis by HC-3. These results indicate that oxiracetam enhances the activity of the septohippocampal cholinergic pathways, and to a lesser extent, of the cortical cholinergic network.

Acetylcholine

Phosphatidylserine increases acetylcholine release from cortical slices in aged rats.

Acetylcholine release was investigated in cortical slices superfused with choline-enriched Krebs solution containing physostigmine. Slices were prepared from 3 and 24 month old rats treated with either Tris buffer or sonicated suspensions of phosphatidylserine and phosphatidylcholine in Tris buffer. Slices were electrically stimulated at frequencies of 1, 2 and 5 Hz for 5 min periods preceded and followed by rest periods. ACh content of the superfusate was quantified by bioassay. In the 24 month old rats treated with Tris buffer, acetylcholine release, at all frequencies tested, was approximately 50% lower than that in the 3 month old rats. On the contrary, no significant decrease in ACh release was found in the 24 month old rats treated for 30 days with phosphatidylserine (15 mg/kg IP). The same treatment did not increase acetylcholine release in 3 month old rats. Acetylcholine release in 24 month old rats receiving a single administration of phosphatidylserine (15 mg/kg IP) or phosphatidylcholine (15 mg/kg IP) for 30 days was as low as in the 24 month old rats receiving the Tris buffer only. It is proposed that the chronic phosphatidylserine treatment may reduce the age-induced decrease in acetylcholine release by acting on the stimulus-secretion coupling mechanism.

Acetylcholine

Biphasic effect of methylxanthines on acetylcholine release from electrically-stimulated brain slices.

The effect of caffeine and aminophylline on the release of acetylcholine (ACh) was investigated in slices of rat cortex perfused with Krebs solution at rest and during electrical stimulation at frequencies of 0.2, 1 and 5 Hz. Both methylxanthines added to the superfusing Krebs solution at a concentration of 50 microM enhanced ACh release. Conversely, at a concentration of 0.5 mM both caffeine and aminophylline decreased ACh release. Neither caffeine nor aminophylline affected the unstimulated ACh release. Dipyridamole 10 microM potentiated the inhibitory effect of adenosine 30 microM on ACh release and antagonized both the stimulatory and inhibitory effects of caffeine on ACh release. The inhibitory effect of caffeine was antagonized by cyclohexyladenosine (CHA) 0.5 microM and N-ethylcarboxamideadenosine (NECA) 5 microM. The results indicate that methylxanthines exert both stimulatory and inhibitory effects on ACh release by acting on adenosine receptors. Methylxanthines may enhance the electrically-evoked ACh release by antagonizing the effect of endogenous adenosine on inhibitory adenosine receptors. On the other hand the mechanism through which methylxanthines decrease ACh release remains obscure.

Acetylcholine