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Biomedical subjects

S Govoni

Publications and source records attributed to S Govoni.

At least 109 records · Page 6Linked to original sources

Calcium antagonists inhibit met-enkephalin immunoreactive material release: in vitro and ex vivo experiments.

Depolarizing stimuli increase the release of neurotransmitter met-enkephalin from rat striatal slices. Bay K8644, a calcium agonist, significantly enhances the submaximal release of this peptide. Several organic calcium antagonists, including nimodipine, nifedipine, nicardipine, gallopamil and flunarizine, are able to inhibit the potassium-evoked met-enkephalin release both in vitro and ex vivo. The data suggest that the release of this neuropeptide is modulated by calcium antagonist-sensitive calcium channels.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Biochemical and functional evidence for the presence of dopamine D1 receptors in the bovine ciliary body.

The present paper reports both functional and biochemical evidence for the presence of dopamine D1 receptors in the bovine ciliary body. Dopamine (DA) and dopamine D1 agonists (such as SKF 38,393) but not D2 agonists (such as LY 141,865) produced a concentration-related decrease in the tone induced by a maximally active concentration of carbachol (1 x 10(-4)-5 x 10(-4) M). The maximal relaxation obtained was 100% of the carbachol response using 10(-5) M dopamine or 5 x 10(-6) M SKF 38,393. SCH 23,390, a D1 antagonist, but not (-)-sulpiride, antagonized the effect of DA and SKF 38,393. In accordance with the functional data, radioreceptor binding experiments revealed the existence of a high affinity saturable [3H]SCH 23,390 binding to membranes prepared from ciliary body (Bmax: 344 fmol mg protein-1; Kd: 0.87 nM). The binding was specifically displaced by SCH 23,390, dopamine and dopamine D1 agonists, but not by norepinephrine, D2 agonists, or antagonists such as LY 141,865 and sulpiride. No specific binding was found when using dopamine D2 ligands, such as tritiated spiroperidol.

2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-ben↗

Modulation of dihydropyridine-sensitive calcium channels: a role for G proteins.

The present study investigates the effect of G protein activation on dihydropyridine recognition sites in PC12 cell membranes. The addition of a stable analogue of GTP, GMP-PNP, increases the displacement of tritiated PN 200-110 produced by Bay K 8644 without modifying the one produced by nitrendipine. This effect is prevented by Pertussis toxin treatment. Functional studies based on the measurement of intracellular calcium concentrations by means of the fura 2 technique show that Pertussis toxin reduces the ability of Bay K8644 to potentiate the increase of cytosolic calcium elicited by 80 mM K+. The results support the hypothesis that a G protein may modulate the activity of voltage-dependent, dihydropyridine-sensitive calcium channels.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Decrease in phorbol ester receptors in human brain tumors.

We have characterized the specific binding of [3H]-phorbol-12,13-dibutyrate in the white and gray matter of normal human brain and in cerebral tumors as an index of the availability of protein kinase C enzyme molecules. White matter has less than 50% phorbol-ester-binding capacity in comparison to gray matter. The binding is lower in tumors of glial origin when compared with normal white matter. Tumors of nonglial origin such as neurinoma and meningioma have a lower binding capacity than glial tumors. Metastatic tissues have the lowest binding capacity. The analysis of binding parameters in tumors and in the corresponding normal peritumoral tissues confirms the decreased binding capacity of neoplastic tissues in comparison to tissues not undergoing malignant transformation. These data suggest that brain glial tumors have a low availability of protein kinase C enzyme molecules and point to the potential involvement of this system in malignant transformation of human brain cells.

Adult↗

Lead neurotoxicity: a role for dopamine receptors.

Chronic lead exposure differentially affects dopamine receptor subtypes (D1 and D2). In particular dopamine D2 recognition sites in striatum are up-regulated while in nucleus accumbens they are down-regulated. These changes may be correlated to the observed alterations of dopamine terminal activity. Consistent with these biochemical changes behavioral studies indicate that lead-treated rats show more pronounced basal activity, attenuation of apomorphine (63 micrograms/kg s.c.) induced hypomotility and tendency to increased stereotyped response to apomorphine (300 micrograms/kg s.c.). On the contrary, both behavioral and biochemical markers of D1 receptors are unmodified by lead treatment. In fact, SKF 38393-induced grooming behavior, [3H]SCH 23390 binding and the dopamine stimulated adenylate cyclase activity are comparable in controls and lead-exposed rats.

2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-ben↗

Direct coupling of a G-protein to dihydropyridine binding sites.

Electrophysiological data support the existence of GTP-binding proteins interacting with voltage dependent calcium channels. Along this line the present study investigates the effect of GMP-PNP, a stable GTP analogue, on the displacement of [3H]-PN 200-110 binding by agonist and antagonist dihydropyridines in synaptic membranes prepared from rat cortex. The results show that GMP-PNP increases the ability of the agonist dihydropyridine BAY K 8644 to displace [3H]-PN 200-110 binding. The in vivo treatment with Pertussis Toxin abolishes the effect produced by the non-hydrolysable GTP analogue.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Mechanisms of the effect of lead on brain neurotransmission: a calcium mediated action.

Data on the effect of chronic lead ingestion on brain neurochemistry in laboratory rodents show the involvement of several neurotransmitters including catecholamines. In the case of dopamine (DA), the action of lead is not uniform in all the DA-innervated areas. The reason for the regional susceptibility to the effect of lead is at present unknown, but points to the existence of specific neuronal mechanisms. Results obtained from animals exposed from birth to lead show that calcium channels are differentially modified in various brain areas. In particular, calcium antagonists display regional sensitivity both after in vivo lead treatment and after in vitro lead addition. These data support the concept that the area selective effects of the metal on neurotransmission may depend on the mechanisms controlling nerve terminal activity in different neuronal populations.

Animals↗

Effect of chronic ethanol treatment on dopamine receptor subtypes in rat striatum.

Chronic exposure to ethanol (6% in the drinking water, 25 days) reduces the responsiveness of both the dopamine-stimulated and of the dopamine-inhibited adenylate cyclase in rat striatum. The changes in the adenylate cyclase activity are paralleled by alterations in dopamine recognition sites, in fact binding studies using selective ligands indicate that the number of both D1- and D2-receptors is reduced in striatal membranes of treated rats.

Adenylyl Cyclases↗

Effect of chronic calcium antagonist treatment on dopamine recognition sites in rat striatum.

The effects of nimodipine and flunarizine administration (18 days 15 mg/kg/day p.o.) on striatal dopamine recognition sites in rats were investigated in vivo. In vitro flunarizine but not nimodipine displaces [3H]spiroperidol binding. After in vivo treatment both drugs induce a significant increase in the number of sulpiride displaceable spiroperidol binding sites (flunarizine, +114%, nimodipine +61%) concomitant with an increase in the dissociation constant. Binding parameters return toward control values after 1 week of suspension of the treatment. The results suggest that the repeated in vivo treatment with nimodipine and flunarizine may significantly interact with dopaminergic transmission leading to adaptive changes of the dopamine recognition sites.

Animals↗

L-type calcium channels are modified in rat hippocampus by short-term experimental ischemia.

Increasing evidence suggests a role for calcium ions in the pathophysiology of ischemic brain damage. The major mechanism allowing calcium entry from the extracellular compartment is the opening of voltage-operated calcium channels. In this line, we have explored the hypothesis that the characteristics of central L-type voltage-dependent calcium channels, labeled by the dihydropyridine ligand 3H-PN 200-110, may be modified by experimental ischemia. The results show that short-term mild ischemia, produced in the rat by 1 h of right carotid ligation, induces an increase in the number of 3H-PN 200-110 binding sites in the hippocampus ipsilateral to the side of carotid occlusion, accompanied by an increase in the dissociation constant value, whereas no changes in the kinetic parameters of the binding were observed in the other areas examined, i.e., the cortex and the striatum. The changes in hippocampus are transient: 96 h after the occlusion, binding parameters return to the control range. The modifications of the binding characteristics in the hippocampus may be related to alterations of Ca2+ fluxes through L-type calcium channels.

Animals↗

Reduced cAMP-dependent phosphorylation in striatum and nucleus accumbens of aged rats: evidence of an altered functioning of D1 dopaminoceptive neurons.

Cyclic AMP-dependent phosphorylation was measured in particulate and in cytosolic fractions of two brain dopaminergic areas, i.e., striatum and nucleus accumbens, of young (3 months) and old (24 months) rats. A reduced cAMP-stimulated 32P incorporation was observed in several protein bands in both brain areas in the aged group. In the soluble fraction the reduced phosphorylation of DARPP-32, which is specific for dopaminoceptive neurons bearing D-1 receptors, may be of particular relevance in the mechanisms of age-related changes in dopaminergic transmission.

Aging↗

Glial brain tumors lack microvascular adrenergic receptors.

In human and animal brain microvessels beta-adrenergic receptors have been identified which are suggested to subserve the regulation of capillary function in both physiological and pathological conditions. Brain tumors are supplied by vessels that differ from those supplying normal cerebral tissue in various structural and functional parameters. In order to study the characteristics of brain tumor microcirculation, we have investigated the presence of beta-adrenergic receptors in capillaries isolated from different types of neoplasms using the specific radioligand 125I-iodocyanopindolol (ICYP). The microvessels were isolated and prepared by albumin flotation and glass bead filtration from normal and pathological tissues. No ICYP-specific binding was detected in the microvessels of tumors of glial origin, while capillaries obtained from meningiomas and neurinomas showed, like the normal brain, a specific binding of the radioligand. The data indicate that the regulation of capillary function in glial tumors differs from that of normal cerebral tissue and extraparenchymal tumors, thus indicating an impaired control of the vascular permeability.

Brain Neoplasms↗

The central dopaminergic system: susceptibility to risk factors for accelerated aging.

The synaptic deficit of brain dopaminergic activity involves a complex pattern of changes both at presynaptic and at postsynaptic level. The aged dopaminergic nuclei present a reduced number of dopamine terminals, a decreased ability to synthesize and reuptake dopamine and defective recognition sites both in terms of absolute number of D2 receptors and of transducing mechanisms linked to D1 receptors. These changes suggest that the dopaminergic system may be particularly sensitive during aging to environmental, iatrogenic and toxic factors, which may easily make the elderly develop symptoms of central dopamine deficiency.

Aging↗

Aging modifies the asymmetry in brain microvascular regulation.

Cerebral ischemia induced by unilateral carotid occlusion in rats decreases in an asymmetric manner the number of beta-adrenergic receptors in microvessels prepared from cerebral cortexes ipsilateral and contralateral to the side of the ligature. In particular, the reduction is more pronounced in the left hemisphere in case of both right and left carotid ligature. The greater receptor decrease in the left side of the brain was shown to depend on the integrity of interhemispheric connections. We show that the changes in capillary beta-adrenergic receptors in response to unilateral carotid occlusion are qualitatively modified during aging. In particular, the asymmetry in the response pattern observed in young rats is lost. The mechanisms underlying this phenomenon may be based on an age-related impairment in the transfer of neuronal information between the two sides of the brain.

Aging↗