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Biomedical subjects

M Garbarg

Publications and source records attributed to M Garbarg.

At least 55 records · Page 3Linked to original sources

Involvement of histaminergic neurons in arousal mechanisms demonstrated with H3-receptor ligands in the cat.

The effects of histamine H3-receptor ligands on sleep-waking parameters were studied in freely moving cats. Oral administration of (R)alpha-methylhistamine (alpha MHA), a H3-agonist, caused a significant increase in deep slow wave sleep while that of thioperamide, a H3-antagonist, enhanced wakefulness in a marked and dose-dependent manner. The arousal effects of thioperamide were prevented by pretreatment with alpha MHA or mepyramine, a H1-receptor antagonist. The findings support the hypothesis that the histaminergic neurons are critically involved in arousal mechanisms and suggest that H3-receptors play an active part in these mechanisms by regulating histamine transmission.

Animals↗

Effects of histamine H3-receptor ligands on various biochemical indices of histaminergic neuron activity in rat brain.

The interaction of the potent histamine H3-receptor ligands i.e. (R)alpha-methylhistamine, an agonist, and thioperamide, an antagonist, with the three classes of cerebral histamine receptors was studied in vitro and in vivo. The histamine-induced stimulation of 3',5'-cyclic AMP accumulation in slices of guinea-pig hippocampus was not modified by thioperamide (up to 0.1 mM) and (R)alpha-methylhistamine stimulated cyclic AMP accumulation only at millimolar concentrations. Hence, both (R)alpha-methylhistamine and thioperamide were at least 100,000-fold more potent at H3- than at H1- or H2-receptors in brain. In vivo, the turnover of histamine in rat cerebral cortex, as determined from its depletion elicited by alpha-fluoromethylhistidine in a synaptosomal fraction was not modified by mepyramine and zolantidine but was markedly enhanced by thioperamide at a low dose (ED50 = 2 mg/kg). Thioperamide also elicited a long-lasting decrease in synaptosomal histamine and increase in radioimmunoassayable N tau-methylhistamine. In contrast, (R)alpha-methylhistamine markedly reduced cortical [3H]histamine synthesis (ED50 = 5 mg/kg). This long-lasting action was accompanied by an increase in synaptosomal histamine and a decrease in N tau-methylhistamine levels. These changes were compared with those in plasma drug levels. Hence the two H3-receptor ligands appear to modify the activity of cerebral histamine neurons markedly and in a long-lasting and opposite manner.

Animals↗

Sensitive radioimmunoassays for histamine and tele-methylhistamine in the brain.

Serum albumin conjugates of histamine or tele-methylhistamine, a major catabolite, were prepared using 1,4-benzoquinone as the coupling agent and used to raise polyclonal antibodies in rabbits. The same reagent was used to prepare the [125I]iodinated tracer and treat tissue extracts submitted to the radioimmunoassays. The IC50 values of prederivatized histamine and tele-methylhistamine in the radioimmunoassays were 0.3 nM and 0.5 nM, respectively, whereas nonderivatized histamine or tele-methylhistamine, histidine, a variety of histamine derivatives, amines, etc., had at least 1,000-fold higher IC50 values. Application of the radioimmunoassays to nonpurified extracts of rat brain allowed the quantification of the two amine immunoreactivities in samples corresponding to less than 1 mg of hypothalamus. The tissue immunoreactivity corresponded to authentic histamine or tele-methylhistamine, as shown by (a) the parallel 125I-tracer displacement curves, (b) the similar elution patterns from HPLC columns, (c) the regional levels of histamine and tele-methylhistamine in brain, similar to those obtained with other methods, and (d) the clearcut effects of treatments with inhibitors of L-histidine decarboxylase or monoamine oxidase. The two radioimmunoassays appear as simple and sensitive tools to evaluate steady-state levels and turnover rates of histamine and tele-methylhistamine.

Animals↗

The third histamine receptor. Highly potent and selective ligands.

The third histamine receptor was first identified on brain neurons and seems also to be present in other cells such as the lung mast cells. Hence the novel and potent H3 receptor agonist (R)-alpha-methylhistamine might find therapeutic applications in allergic diseases.

Animals↗

A detailed mapping of histamine H1-receptors in guinea-pig central nervous system established by autoradiography with [125I]iodobolpyramine.

[125I]Iodobolpyramine, a potent and selective histamine H1-receptor antagonist derived from mepyramine, was used to generate light microscopic autoradiograms on sections of guinea-pig brain and spinal cord. Histamine H1-receptors were labelled with high sensitivity over a low background as determined using mianserin or other H1-receptor antagonists as competing agents. An atlas of H1-receptors was established using five sagittal sections and 39 frontal sections, the latter serially prepared at 50 micron intervals. Labelled areas were identified by comparison with corresponding, classically stained sections and their density was rated according to an arbitrary scale. Autoradiographic grains were detected in a large variety of gray matter areas whereas they were generally absent from white matter areas. In the cerebral cortex, H1-receptors are present in all areas and layers with a higher density in lamina IV. In the hippocampal formation, H1-receptors display a laminated pattern of distribution and are the most abundant in the dentate gyrus (hilus and molecular layer) and in several areas of the subiculum and commissural complex. In the amygdaloid complex, the highest densities are found in the medial group of nuclei. In the basal forebrain, the striatum is moderately labelled whereas the nucleus accumbens, islands of Calleja and most septal nuclei are highly labelled. In the thalamus, H1-receptors are present in high density, particularly in the anterior, median and lateral groups of nuclei. In the hypothalamus the labelling is highly heterogeneous with high densities in, for example, medial preoptic area, dorsomedial, ventromedial and most posterior nuclei, including the tuberomammillary complex in which histaminergic perikarya and short axons are present.(ABSTRACT TRUNCATED AT 250 WORDS)

Aminopyridines↗

Characterization of histamine H1-receptor binding peptides in guinea pig brain using [125I]iodoazidophenpyramine, an irreversible specific photoaffinity probe.

Aminophenpyramine--i.e., N-(5-[2-(4-aminophenyl)ethanamidopentyl])-N'-(4-methoxybenzyl)-N-m ethyl-N'- (2-pyridinyl)-1,2-ethanediamine, a derivative of mepyramine (pyrilamine), a typical antagonist of histamine at its H1 receptor--was synthesized and converted into [125I)iodoazidophenpyramine, a potential photoaffinity probe for the H1 receptor. In the dark, reversible binding of this probe to cerebellar membranes occurred with a Kd of 1.2 x 10(-11) M and a Bmax of 240 fmol/mg of protein and was inhibited by various H1-receptor antagonists with the expected potencies. These features establish the compound as one of the most potent H1-receptor antagonists known so far. Upon UV irradiation, 5% of the bound radioactivity was covalently incorporated into cerebellar membrane polypeptides as shown by standard NaDodSO4/PAGE. Two bands of 47 and 56 kDa were consistently labeled, labeling being prevented by various H1-receptor antagonists with the expected potencies and stereoselectivity. In the presence of protease inhibitors, labeling of the 56-kDa peptide increased at the expense of the 47-kDa peptide, suggesting that the latter was produced by hydrolysis of the former under the action of membrane proteases. In the absence of 2-mercaptoethanol, a band of 350-400 kDa appeared, apparently at the expense of the lighter bands, suggesting that the latter might be linked by one or more disulfide bridges to a higher molecular mass complex. We propose that at least part of the ligand binding domain of the histamine H1 receptor resides within a subunit of apparent molecular mass 56,000.

Affinity Labels↗

[Potential interest in powerful and specific ligands for the histamine H3 receptor].

In contrast to cerebral histamine H1 and H2-receptors, histamine H3-receptors are presynaptically located on histamine-synthesizing nerve terminals (autoreceptors) and control the synthesis and release of the amine in cerebral neurons. Two imidazole derivatives were designed to interact at H3-receptors: (R) alpha-methylhistamine (alpha-MeHA), a chiral agonist, and thioperamide, a competitive antagonist derived from imidazolyl piperidine, both display high selectivity and potency at nanomolar concentrations in vitro. (R) alpha-MeHA, being about 15 times as potent as histamine itself, constitutes, when tritiated, a suitable probe for the radioassay of H3-receptors. Outside the brain, H3-receptor sites could be detected in the lung. The availability of new ligands made it possible to assess in vivo the physiological role of central and peripheral H3-receptors. The agonist and the antagonist modified in opposite directions histamine synthesis in the lung as in the brain, confirming the presence of H3-receptors in this peripheral organ. A large part of lung histamine being present within mast-cells, it is likely that these cells are endowed with H3-receptors controlling the amine synthesis and, possibly, release. Therefore, the novel agents may be of great practical interest in the field of allergy and inflammation.

Animals↗

Synergism between histamine H1- and H2-receptors in the cAMP response in guinea pig brain slices: effects of phorbol esters and calcium.

The synergism between H1- and H2-receptors in the histamine-induced stimulation of cAMP accumulation was studied in slices from guinea pig hippocampus. Since H1-receptors appear to be coupled to the phosphatidylinositol cycle, the participation of the two branches of the cycle in this synergism was assessed by using phorbol esters and/or by removing Ca2+ from the external medium. The protein kinase C activator, 4 beta-phorbol 12,13-dibutyrate (4 beta-PDB), strongly potentiated, with an EC50 of 0.2 microM, the accumulation of cAMP elicited by dimaprit, an H2-receptor agonist used at supramaximal concentration (0.3 mM). The effect of 4 beta-PDB was also observed in the presence of impromidine, an H2-receptor agonist, and histamine. 4 beta-Phorbol 12-myristate, 13-acetate, another protein kinase C activator, also potentiated the effect of dimaprit in a concentration-dependent manner although less potently than 4 beta-PDB. In contrast, 4 alpha-phorbol or the phorbol esters, 4 alpha-phorbol 12,13-didecanoate or 4-O-methylphorbol 12-myristate, 13-acetate, all inactive on protein kinase C, had no potentiating effect. 2-Thiazolylethylamine (2-TEA), a predominantly H1-receptor agonist, increased the stimulation induced by dimaprit (0.3 mM), and this response was further enhanced in the presence of 4 beta-PDB in maximal concentration (1 microM). Mepyramine (0.1 microM) antagonized the H1-receptor-mediated effect in the absence as well as the presence of 4 beta-PDB. The phorbol ester did not significantly alter the EC50 of 2-TEA or the magnitude of its effect. In the absence of phorbol esters, removal of Ca2+ from the incubation medium did not change the response elicited by 0.3 mM dimaprit but reduced by 50% the response to a supramaximal concentration of 2-TEA. This effect was more marked when EGTA was added in the Ca2+-free medium. The EC50 value of 2-TEA was only slightly modified in the absence of Ca2+ (180 +/- 20 microM as compared with 70 +/- 4 microM in the presence of 2.6 mM Ca2+). In the presence of 4 beta-PDB (1 microM), removal of Ca2+, particularly in the presence of EGTA, did not affect or slightly increased the response to dimaprit, but still strongly reduced the response to 2-TEA. The Ca2+ ionophore A 23187 (10 microM) showed a tendency to mimic the potentiating effect of 2-TEA.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Polyclonal and monoclonal antibodies directed against SK & F 94461, a specific H1 histamine receptor ligand.

SK & F 94461, an aminopentyl analogue of mepyramine, is a recently described H1 receptor antagonist. At variance with the other available H1 receptor ligands, SK & F 94461 offers the possibility of coupling to a protein carrier to render the molecule immunogenic. SK & F 94461 coupled to succinylated bovine serum albumin was used as an immunogen to raise polyclonal antibodies in rabbits and BALB/c mice. In parallel, spleen cells from immunized mice were used to produce hybridomas by somatic cell fusion. Thus, six different murine monoclonal antibodies sharing anti-SK & F 94461 specificity were selected for further detailed characterization of their binding properties. Pharmacologic studies of competitive inhibition using a set of 11 histaminergic agents allowed analysis of the fine specificity of anti-SK & F 94461 antibodies. Both polyclonal and monoclonal anti-SK & F 94461 antibodies showed very high affinity for the immunizing molecule (i.e., Ka values for monoclonal antibodies 8 and 12 were, respectively, 3 X 10(10) and 1.4 X 10(10) M-1). Both types of antibodies bound with high affinity (IC50 ranging from 10(-10) to 10(-12) M) to mepyramine, which has a chemical structure closely resembling that of SK & F 94461. Moreover, these antibodies displayed clear-cut stereoselectivity inasmuch as they bound the d-configuration of chlorpheniramine with significantly higher affinity than the l-form. Thus, all six monoclonal antibodies showed IC50 values 1 to 6 log units lower for d- than for l-chlorpheniramine. For some monoclonal antibodies, spectroscopic and fluorescence spectra studies showed that their different binding capacities correlated with their optical properties. Similarly, polyclonal anti-SK & F 94461 antibodies showed a 500-fold lower affinity for l- than for d-chlorpheniramine. All these results indicate that the polyclonal and the majority of monoclonal anti-SK & F 94461 antibodies recognized with high affinity structural configurations known to be important for the pharmacologic activity of H1 ligands, namely the presence of the dimethylaminoethyl side chain and, with stereochemical selectivity, the d-configuration of chlorpheniramine. These data extend for the first time to an H1 histamine receptor ligand results reported in other hormone systems.

Aminopyridines↗

Autoinhibition of histamine synthesis mediated by presynaptic H3-receptors.

The regulation of histamine synthesis was studied on rat brain slices or synaptosomes labeled with L-[3H]histidine. Depolarization by increased extracellular K+ concentration enhanced by about twofold the [3H]histamine formation in slices of cerebral cortex. This stimulation was also observed, although to a lesser extent, in synaptosomes from cerebral cortex and slices from the posterior hypothalamus where most histaminergic cell-bodies are located, suggesting that it may occur in nerve endings as well as in perikarya. In the presence of exogenous histamine in increasing concentrations the K+-induced stimulation was progressively reduced by up to 60-70%. The effect of exogenous histamine appears to be receptor-mediated as shown by its saturable character, high pharmacological specificity and competitive reversal by histamine antagonists. The EC50 value of histamine for synthesis reduction (0.34 +/- 0.03 microM) was similar to its EC50 value for release inhibition known to be mediated by H3-receptors. In addition, whereas mepyramine and tiotidine, two potent antagonists at H1- and H2-receptors, respectively, were poorly effective, the H3-receptor antagonists burimamide and impromidine reversed the histamine effect in an apparently competitive manner. These effects were observed in slices of cerebral cortex or posterior hypothalamus as well as in cortical synaptosomes. Furthermore, even in the absence of added histamine, H3-receptor antagonists enhanced the depolarization-induced stimulation of [3H]histamine synthesis, indicating a participation of released endogenous histamine in the synthesis control process. The potencies of H3-receptor antagonists were similar to those of these agents at presynaptic autoreceptors controlling [3H]histamine release. It is concluded that H3-receptors control not only release but also synthesis of histamine at the level of nerve endings and also, presumably, of perikarya. A relationship between the two regulatory processes, possibly via intracellular calcium, seems likely but remains to be investigated at the molecular level.

Animals↗

[Selective stimulation of histamine H3 autoreceptors].

A simple derivative of histamine, alpha-methylhistamine i.e. 4-(2-aminopropyl)-imidazole, was shown to potently inhibit the K+-induced release of [3H] histamine from slices of rat cerebral cortex previously incubated in the presence of [3H] histidine. The maximal inhibition elicited by alpha-methylhistamine was of about 60% i.e. similar to that elicited by exogenous histamine. The effect occurred with an EC50 value of 4.3 +/- 1.1 X 10(-9) M about 10 times lower than that of histamine and was reversed by a H3-receptor antagonist. Since alpha-methylhistamine is known to display negligible potency at H1- and H2-receptors, this compound appears to be the first highly potent and selective H3-receptor agonist to be identified.

Animals↗

[125I]Iodobolpyramine, a highly sensitive probe for histamine H1-receptors in guinea-pig brain.

[125I]Iodobolpyramine is a novel 125I-ligand for histamine H1-receptors, synthesised using the 125I-Bolton Hunter reagent (2000 Ci/mmol) for acylation of an aminopentyl analogue of mepyramine. Its specific binding varied linearly with the concentration of guinea-pig cerebellar membranes and represented about 80% of the total. Selective interaction with H1-receptors was demonstrated by estimation of Ki values of known agonists and antagonists and confirmed by the low affinity of histamine H2- and H3-receptor antagonists and of non-histaminergic agents. At 25 degrees C, [125I]iodobolpyramine exhibited a slow association rate (180-240 min to reach equilibrium) and a slow dissociation rate (t1/2 = 201 min). Kinetic and saturation data yielded KD values of 0.05 and 0.15 nM, respectively, indicating that it is among the most potent H1-receptor antagonists known. The sensitivity for detecting H1-receptors in guinea-pig cerebellum using [125I]iodobolpyramine was increased 50-fold relative to use of [3H]mepyramine. Well-contrasted autoradiograms of guinea-pig brain, obtained after a short exposure time, confirmed previous H1-receptor localisation established with [3H]mepyramine and revealed new localisations, e.g. in cerebral cortex and nucleus accumbens.

Aminopyridines↗

Properties and roles of the three subclasses of histamine receptors in brain.

In brain, histamine (HA) is the transmitter of a neuronal system resembling other monoaminergic systems. It is also present in mast cells from which it may control vascular and inflammatory processes. Its various actions are mediated not only by the two well known H1- and H2-receptor subclasses but also by the recently discovered H3-receptors, with distinct localization and pharmacology. H1-receptors mediate a series of biochemical responses which have several features in common: they require intact cells to be observed and largely depend upon the availability of Ca2+. H1-receptor-mediated responses include glycogenolysis, stimulation of cyclic GMP formation, potentiation of cyclic AMP formation. Recent studies indicate that H1-receptors are linked with phosphatidylinositol breakdown and generation of two intracellular signals which both contribute to the final response (e.g. in the cyclic AMP generation). H2-receptors seem to be directly linked with an adenylate cyclase and their stimulation results in enhanced electrophysiologically recorded responses to excitatory agents. Finally whereas H1- and H2-receptors appear to be postsynaptically located, a novel subclass (H3) of HA receptors was recently revealed with a presynaptic localization. H3-receptors are autoreceptors mediating inhibition of HA release from and biosynthesis in histaminergic nerve terminals in the CNS. The physiological and pharmacological implications of three distinct receptor subclasses for HA will be discussed.

Adenylyl Cyclases↗