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Biomedical subjects

I Hanbauer

Publications and source records attributed to I Hanbauer.

At least 55 records · Page 3Linked to original sources

Participation of GABA/benzodiazepine receptor system in the adrenal chromaffin cell function.

Histochemical studies have shown that GABA-containing nerve terminals impinge upon the chromaffin cells and that approximately 40% of the chromaffin cells store and release GABA. These observations are compatible with the possibility that GABA receptors located on specific populations of chromaffin cells can be activated either by GABA released from nerve terminals or by GABA released from adjacent chromaffin cells. Indeed, experiments with bicuculline indicate that in bovine chromaffin cells in culture and in the adrenal medulla of dog in vivo, the secretion of CA and opioid peptides mediated by activation of nicotinic receptors is under tonic control of GABA. In a series of pharmacological experiments in dog, we have shown that appropriate doses of GABA or other GABA-mimetic drugs release CA into the circulation. This release, comparable in its magnitude to that obtained by injecting a full pharmacological dose of carbamylcholine or by maximally efficient electrical stimulation of the splanchnic nerve, was not blocked by hexamethonium, naloxone or splanchnicotomy, but instead, was prevented by treatment with bicuculline methiodide. These data suggest that GABA-induced CA release is not the consequences of activation of transynaptic mechanisms involving either acetylcholine, enkephalin or GABA acting at the GABAB receptors, but rather the result of stimulation of GABAA receptors linked to C1- channels located on the membranes of the adrenal chromaffin cells. Because the administration of GABA was found to induce depolarization in autonomic mammalian ganglia in electrophysiological studies (DeGroat, 1970), we propose that the GABA-mediated release of CA from dog adrenal medulla is the consequence of chromaffin cell depolarization.(ABSTRACT TRUNCATED AT 250 WORDS)

4-Aminobutyrate Transaminase↗

Evidence for down-regulation of 3H-nitrendipine recognition sites in mouse brain after long-term treatment with nifedipine or verapamil.

Mice were fed powdered food which contained nifedipine, verapamil or diltiazem for 28 days. Long lasting treatment with nifedipine (0.28 mg/g b.w./day) or verapamil (0.27 mg/g b.w./day), but not with diltiazem (0.38 mg/g b.w./day) reduced the number of 3H-nitrendipine recognition sites in membranes prepared from cerebral cortex, caudate nucleus, and hippocampus. In addition, the veratridine-elicited stimulation of 45Ca-uptake in slices of the same brain areas was decreased in mice which were fed nifedipine or verapamil for 28 days.

Animals↗

Dopamine uptake is differentially regulated in rat striatum and nucleus accumbens.

Active uptake of 3,4-dihydroxyphenylethylamine (dopamine) is sodium- and temperature-dependent, strongly inhibited by benztropine and nomifensine, and present in corpus striatum and nucleus accumbens. In rat striatum dopamine uptake is related to a receptor that is specifically labelled by [3H]cocaine in the presence of Na+ and is located on dopaminergic terminals. The dopamine uptake is differentially affected in the two areas by single or repeated injections of cocaine. Cocaine inhibits dopamine uptake in slices of corpus striatum. Moreover Na+-dependent [3H]cocaine binding is not detectable in nucleus accumbens. Nomifensine inhibits [3H]dopamine uptake by interacting with low- and high-affinity sites in corpus striatum, but shows only low affinity for dopamine uptake in nucleus accumbens. The present data indicate that different mechanisms are involved in the regulation of dopamine uptake in corpus striatum and nucleus accumbens.

Animals↗

Phosphorylation of membrane proteins in response to persistent stimulation of adenylate cyclase-linked dopamine receptors in slices of striatum.

Prolonged incubation of slices of striatum with agonists of D-1 dopamine receptors increased phosphorylation of at least 5 membrane protein bands. The extent of the increase in phosphate-incorporation depended on the concentration (10(-5) M-10(-4) M) of the agonist in the incubation medium and the duration of incubation (20 min or longer). Preincubation of slices with haloperidol (10(-6) M) greatly reduced, while (-)sulpiride (10(-6) M) failed to alter the increase of phosphorylation elicited by dopamine. Prolonged incubation of striatal slices with LY 141865 (10(-5) M) or isoproterenol (10(-5) M) increased the phosphate-incorporation only in one of the protein bands with an apparent molecular weight of 42,000. Incubation of striatal slices with cholera toxin increased the phosphorylation of protein bands in a similar way to those elicited by dopamine. The present results suggest that the increased phosphorylation of certain protein bands elicited by prolonged exposure of striatal slices to D-1 dopamine receptor agonists may be associated with the desensitization of dopamine-sensitive adenylate cyclase.

Adenylyl Cyclases↗

Coupling of dopamine D1 recognition sites with adenylate cyclase in nuclei accumbens and caudatus of schizophrenics.

Sodium fluoride, guanylimidodiphosphate, and the D1 dopamine receptor agonist SKF 38393 elicited a greater activation of adenylate cyclase in homogenates of caudate nucleus in schizophrenic than in nonschizophrenic subjects used as controls. Similarly, a greater activation of adenylate cyclase by sodium fluoride was observed in the nucleus accumbens of schizophrenics. These findings suggest that the coupling of dopamine D1 recognition sites with adenylate cyclase is more efficient in the brain of the schizophrenic, presumably because of an increased affinity of the G/F protein for guanosine 5'-triphosphate.

Adenylyl Cyclases↗

Sodium-sensitive cocaine binding to rat striatal membrane: possible relationship to dopamine uptake sites.

In rat striatal membranes, NaCl induced a twofold increase in the maximal number of cocaine binding sites but did not alter the affinity of these sites for cocaine. This effect was concentration-dependent, specific to sodium ions, and occurred in membranes prepared from corpus striatum but not from other brain regions. Lesions with 6-hydroxydopamine but not with kainic acid eliminated the sodium-induced increase in binding and produced a decrease in the Bmax of binding measured in the presence of NaCl. The capacity of a series of drugs to interfere with Na+-dependent cocaine binding correlated well with their capacity to inhibit [3H]dopamine uptake into rat striatal synaptosomes. The present results suggest that Na+-dependent cocaine binding sites are localized presynaptically on dopaminergic nerve terminals in corpus striatum, and may be related to dopamine uptake sites.

Animals↗

Modulation of nicotinic receptor function by opiate recognition sites highly selective for Met5-enkephalin[Arg6Phe7].

Adrenal medullary cells contain opiate recognition sites that cannot be classified with any of the accepted conventional criteria. In primary cultures of bovine adrenal chromaffin cells, stimulation of nicotinic receptors by acetylcholine causes an increase in the release of catecholamines. When the action of acetylcholine is studied in the presence of opiate receptor agonists, the acetylcholine secretory action is curtailed. The action of the opiates is stereoselective and is blocked by naloxone and diprenorphine. The blocking activity of each opiate correlates with its Ki for the displacing of [3H]etorphine bound to specific recognition sites of adrenal medulla. Enkephalin-like opiate peptides are stored in the splanchnic nerves; they appear to act as a cotransmitter because they decrease the gain at which nicotinic receptors operate. This regulation appears to involve a down-regulation of the nicotinic receptor recognition sites because these opiate peptides elicit a decrease in the Bmax of the specific binding to adrenal medullary membranes of a radioactive fraction of alpha-bungarotoxin, a compound that inhibits the action of acetylcholine in releasing catecholamines from chromaffin cells.

Acetylcholine↗

Agonist-induced subsensitivity of adenylate cyclase coupled with a dopamine receptor in slices from rat corpus striatum.

Incubation, for 30 min, of striatal slices with 10 microM dopamine, 10 microM apomorphine, or 10 microM SKF 38393 decreased dopamine-stimulated adenylate cyclase activity by 50-60%. This loss in dopamine-stimulated enzyme activity appears to be mediated by a persistent occupancy of recognition sites of the D-1 receptor because: (i) at 10 microM, SKF 38393, a selective D-1 receptor agonist, facilitates desensitization and Ly 141865, a selective D-2 receptor agonist, fails to elicit desensitization of dopamine-dependent adenylate cyclase; and (ii) preincubation with dopamine in the presence of 1 microM haloperidol but not 1 microM sulpiride curtails the desensitization of dopamine-dependent adenylate cyclase. In dopamine-desensitized striatal slices of the Kd for N-propylnorapomorphine binding is increased but the content of membrane-bound calmodulin and the activation of adenylate cyclase by NaF and cholera toxin are decreased significantly. In striatal slices incubated with dopamine for prolonged time periods the coupling of the GTP-binding protein with adenylate cyclase and dopamine recognition sites may be impaired and the content of membrane-bound calmodulin is decreased.

Adenylyl Cyclases↗

Regulation by a beta-adrenergic receptor of a Ca2+-independent adenosine 3',5'-(cyclic)monophosphate phosphodiesterase in C6 glioma cells.

The hormonal control of cyclic nucleotide phosphodiesterase (EC 3.1.4.17) activity has been studied by using as a model the isoproterenol stimulation of cyclic AMP phosphodiesterase activity in C6 glioma cells. A 2-fold increase in cyclic AMP phosphodiesterase specific activity was observed in homogenates of isoproterenol-treated cells relative to control. This increase reached a maximum 3 h after addition of isoproterenol, was selective for cyclic AMP hydrolysis, was reproduced by incubation with 8-Br cycl AMP but not with 8-Br cyclic GMP and was limited to the soluble enzyme activity. The presence of 0.1 mM EGTA did not alter the magnitude of the increase in phosphodiesterase activity. Moreover, the calmodulin content in the cell extracts was not changed after isoproterenol. DEAE-Sephacel chromatography of the 100000 X g supernatant resolved two peaks of phosphodiesterase activity. The first peak hydrolyzed both cyclic nucleotides and was activated by Ca2+ an purified calmodulin. The second peak was specific for cyclic AMP but it was Ca2+- and calmodulin-insensitive. Isoproterenol selectively increased the specific activity of the second peak. Kinetic analysis of the cyclic AMP hydrolysis by the induced enzyme revealed a non-linear Hofstee plot with apparent Km values of 2-5 microM. Cyclic GMP was not hydrolyzed by this enzyme in the absence or presence of calmodulin and failed to affect the kinetics of the hydrolysis of cyclic AMP. Gel filtration chromatography of the induced DEAE-Sephacel peak resolved a single peak of enzyme activity with an apparent molecular weight of 54000.

3',5'-Cyclic-AMP Phosphodiesterases↗

Regulation of acetylcholine receptors by endogenous cotransmitters: studies of adrenal medulla.

The coexistence of neuropeptides and amine transmitters in the same neuron and the presence of postsynaptic receptors for these compounds invite speculation that the compounds may interact postsynaptically. To study this interaction, we selected the synapse between the splanchnic nerve and the chromaffin cells of adrenal medulla because the splanchnic nerve contains acetylcholine and neuropeptides (multiple molecular forms of enkephalin-like peptides), while the membranes of chromaffin cells contain receptors for acetylcholine and opiate peptides. When the opiate receptors are occupied by specific agonists, these agonists inhibit the expression of acetylcholine receptors. Both the acetylcholine binding and catecholamine release by acetylcholine were inhibited. It is suggested that peptides and acetylcholine coexisting in the splanchnic nerve might act as cotransmitters, there by modulating the sensitivity of acetylcholine receptors. Multiple molecular forms of enkephalin-like peptides are stored in chromaffin cells and are released by acetylcholine. A role for the opiate receptors in the modulation of the secretion of opiate peptides stored in chromaffin cells is not evident.

Adrenal Medulla↗