High-performance liquid chromatographic procedure for the quantitation of norfloxacin in urine, serum and tissues.
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Biomedical subjects
Publications and source records attributed to C Forchetti.
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Microdoses of kainic acid injected into dorsal hippocampus, into striatum and into substantia reticularis pontis cause specific epileptic-like patterns associated with neuronal degeneration. Epileptic patterns seem to be dose-related and depend on the injected brain areas.
Microinjection of low doses of kainic acid, a neurotoxic analogue of glutammate, in different brain areas (striatum, hippocampus, substantia reticularis pontis) induces neuronal damages in injected and distant areas. Particularly severe neuronal damages have been observed in striatum and CA3 hippocampal area; neuronal degeneration has also been observed in substantia nigra following kainic acid infusion into the substantia reticularis pontis.
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Bromocriptine reduces the spontaneous firing rate of neurons in the pars compacta of the substantia nigra but does not change the electrical activity of the neurons located in the pars reticulata. On the other hand, bromocriptine induces contralateral circling behaviour in rats with unilateral 6-hydroxydopamine nigral lesion. This increased motor activity follows an initial period of hypomotility. The decrease of the neuronal firing rate in the pars compacta of the substantia nigra coincides with the hypomotility observed in the lesioned rats.
An injection of D-tubocurarine into the rat striatum produces a complex motor syndrome resembling in part that induced by picrotoxin. The destruction of the dopaminergic terminals by 6-hydroxydopamine does not prevent these effects of D-tubocurarine on motor activity. Hence neither dopamine release nor the presynaptic acetylcholine receptors are responsible for the D-tubocurarine-induced movements. On the other hand, lesion of the striatum by kainic acid abolishes the motor abnormalities due to D-tubocurarine but not those due to picrotoxin injection. Therefore, the effects of picrotoxin might be attributable to an action on GABA receptors still present in the kainic acid-treated striatum, whereas the effects of D-tubocurarine might be due to its action on striatal postsynaptic acetylcholine receptors.
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With high resolution, quantitative magnetic resonance imaging (MRI) techniques, it is now possible to examine alterations in brain anatomy in vivo and to identify regions affected in the earliest stages of Alzheimer's disease (AD). In this study, we compared MRI-derived entorhinal and hippocampal volume in healthy elderly controls, patients who presented at the clinic with cognitive complaints, but did not meet criteria for dementia (non-demented), and patients with very mild AD. The two patient groups differed significantly from controls in entorhinal volume, but not from each other; in contrast, they differed from each other, as well as from controls, in hippocampal volume, with the mild AD cases showing the greatest atrophy. Follow-up clinical evaluations available on 23/28 non-demented patients indicated that 12/23 had converted to AD within 12-77 months from the baseline MRI examination. Converters could be best differentiated from non-converters on the basis of entorhinal, but not hippocampal volume. These data suggest that although both the EC and hippocampal formation degenerate before the onset of overt dementia, EC volume is a better predictor of conversion.