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Biomedical subjects

H Pollard

Publications and source records attributed to H Pollard.

At least 73 records · Page 4Linked to original sources

Histamine-producing cell-stimulating activity. Interleukin 3 and granulocyte-macrophage colony-stimulating factor induce de novo synthesis of histidine decarboxylase in hemopoietic progenitor cells.

Both interleukin 3 (IL-3) and granulocyte-macrophage colony-stimulating factor (GM-CSF) induce increased histamine production by murine hemopoietic cells. Histidine-free culture conditions or addition of alpha-fluoromethylhistidine, an irreversible inhibitor of histidine decarboxylase, completely abrogate this phenomenon, indicating that increased histamine levels result from an augmentation of the rate of its synthesis. L-Histidine decarboxylase (HDC) (EC 4.1.1.22) activity is detected in normal bone marrow cell lysates. It is markedly increased following incubation of the cells with IL-3 or GM-CSF. The cells responding by the most important enhancement of HDC activity are located in the less dense layers of a discontinuous Ficoll gradient containing the majority of the hemopoietic progenitor cell types, such as colony-forming units (spleen), granulocyte-macrophage colony-forming cells, and mast cell precursors. In comparison with other HDC-containing cell populations tested, the enzymatic activity contained in these cells is particularly high after IL-3 or GM-CSF treatment and similar to the HDC levels observed in murine fetal liver. The time course of IL-3 and GM-CSF-induced HDC activation at comparable concentrations is slightly different. In response to GM-CSF, HDC activation is more rapid, with a significant enhancement after 4 hr of incubation, as compared with IL-3-induced HDC activation. Moreover, in the latter case the activation increases more progressively up to 48 hr of incubation, whereas GM-CSF-induced increase of HDC activity reaches a plateau more rapidly. In addition, maximal increase in histamine production in response to IL-3 is always higher than in response to GM-CSF. Moreover, the simultaneous presence of both factors at optimal concentration induces only a partially cumulative effect. These results suggest that IL-3 and GM-CSF induce HDC activation in two distinct ways, possibly reflecting the involvement of distinct target cells. However, both mediators act by inducing the transcription of the HDC gene and de novo synthesis of this enzyme since actinomycin D or cycloheximide abolish GM-CSF-or IL-3-induced histamine-producing cell-stimulating activity. This synthesis is independent from cell proliferation as demonstrated by the lack of effect of bone marrow cell irradiation. Finally, the observation that cholera toxin, prostaglandin E2, and N6,2'-O-dibutyryl adenosine 3',5'-cyclic monophosphate mimic the effects of IL-3 and GM-CSF on bone marrow cell HDC suggests an involvement of cyclic adenosine monophosphate in factor-induced histamine-producing cell-stimulating activity.

Animals↗

Enkephalinase (EC 3.4.24.11) is highly localized to a striatonigral pathway in rat brain.

Autoradiographic visualization of enkephalinase (membrane metalloendopeptidase, EC 3.4.24.11) in sagittal sections of rat brain using a 125I-labelled monoclonal antibody showed the presence of a dense immunoreactivity in a tract joining the striatum to the substantia nigra. Unilateral kainate injections into the striatum elicited a strong ipsilateral decrease in enkephalinase activity and immunoreactivity in both the injected area and substantia nigra, particularly its pars compacta. This demonstrates the presence of enkephalinase all along fibers of a striatonigral pathway.

Animals↗

Characterisation of two probes for the localisation of enkephalinase in rat brain: [3H]thiorphan and a 125I-labeled monoclonal antibody.

We studied the binding of two radioactive probes, i.e. [3H]thiorphan and a 125I-labeled monoclonal antibody raised against the rabbit kidney enzyme, to enkephalinase (EC 3.4.24.11, membrane metalloendopeptidase) from rat cerebral membranes. [3H]Thiorphan binding at equilibrium to striatal membranes was monophasic with a KD (0.7 nM) and a pharmacology consistent with a selective labeling of the enzyme. The ratio of Vmax/Bmax was in the same range as the Kcat of the enzyme purified from peripheral tissues. The monoclonal antibody immunoprecipitated to a similar extent the solubilised enkephalinase activity and [3H]thiorphan binding sites from striatum. The regional distributions of binding sites for the two probes established either on isolated membranes or autoradiographic sections were highly heterogeneous and similar to that of enkephalinase activity. Hence the two probes appear to label membrane-bound enkephalinase in rat brain but, from a technical point of a view, the 125I-monoclonal antibody is a more sensitive and flexible tool.

Amino Acids, Sulfur↗

Major localization of aminopeptidase M in rat brain microvessels.

The localization of two enkephalin-hydrolysing aminopeptidases i.e. aminopeptidase M (aminopeptidase N, EC 3.4.11.2) relatively insensitive to puromycin (Ki = 78 microM), and a puromycin-sensitive aminopeptidase (Ki = 1 microM) was studied in rat brain. The two aminopeptidases were differentially identified and/or localized using polyclonal anti-aminopeptidase M antibodies displaying anticatalytic activity and the inhibitors puromycin, bestatin and amastatin. Microvessels represent a major localization of cerebral aminopeptidase M as shown by the intense immunostaining of their walls in sections from various regions as well as in a fraction isolated from cerebral cortex homogenates by a sieving procedure. As compared to the starting homogenate, aminopeptidase M activity was enriched about twenty fold in this microvascular fraction. Aminopeptidase M was identified in this fraction by comparing the inhibitory potencies of antibodies and peptidase inhibitors towards the hydrolysis of [tyrosyl-3,5-3H, Met5]enkephalin to those found for the purified enzyme. A rather high aminopeptidase M activity was also localized in choroid plexuses. Following differential and gradient centrifugation analysis of cerebral cortex homogenates, aminopeptidase M activity was also enriched (by five to six fold) in fractions containing synaptic membranes. No significant soluble aminopeptidase M activity could be detected. These data suggest a dual localization of cerebral aminopeptidase M in microvessels and synaptic membranes consistent with its roles in preventing the access of circulating peptides to brain as well as in inactivating neuropeptides released from cerebral neurones. In comparison, puromycin-sensitive aminopeptidase activity, which is about 100 fold higher than aminopeptidase M activity in brain, was relatively low in microvessels and non-detectable in fractions enriched in synaptic membranes, being almost entirely restricted to soluble fractions.

Aminopeptidases↗

Enhancement of norepinephrine biosynthesis by ascorbic acid in cultured bovine chromaffin cells.

Ascorbic acid donates electrons to dopamine beta-monooxygenase during the hydroxylation of dopamine to norepinephrine in vitro. However, the possible role of ascorbic acid in norepinephrine biosynthesis in vivo has not been defined. We therefore investigated the effect of newly accumulated ascorbic acid on catecholamine biosynthesis in cultured bovine adrenal chromaffin cells. Cells supplemented for 3 h with ascorbic acid accumulated 9-fold more ascorbic acid than found in control cells. Under these conditions, the cells loaded with ascorbate were found to double the rate of norepinephrine biosynthesis from [14C]tyrosine compared to control. By contrast, the amounts present of [14C] 3,4-dihydroxyphenylalanine and [14C]dopamine synthesized from [14C]tyrosine were unaffected by the preloading of ascorbic acid. Ascorbate preloaded cells incubated with [3H]dopamine also showed a similar increase in the rate of norepinephrine formation, without any change in dopamine transport into the cells. Thus, these data were consistent with ascorbate action at the dopamine beta-monooxygenase step. In order to determine if ascorbate could interact directly with dopamine beta-monooxygenase localized within chromaffin granules, we studied whether isolated chromaffin granules could accumulate ascorbic acid. Ascorbic acid was not transported into chromaffin granules by an uptake or exchange process, despite coincident [3H]dopamine uptake which was Mg-ATP dependent. These data indicate that ascorbic acid does augment norepinephrine biosynthesis in intact chromaffin cells, but by a mechanism that might enhance the rate of dopamine hydroxylation indirectly.

Adrenal Medulla↗

Monoclonal antibody against L-histidine decarboxylase for localization of histaminergic cells.

The immunochemical and immunohistochemical properties of a monoclonal antibody (Mab HI 113-12) developed in mice against a partially purified preparation of rat gastric L-histidine decarboxylase (HD) were studied. The Mab recognised the HD activity from the antigen and from crude tissue extracts with a high histamine (HA)-synthesizing capacity (stomach, hypothalamus, striatum, mastocytoma). In contrast, neither a bacterial HD nor other decarboxylases (glutamic and DOPA decarboxylases) were immunoprecipitated. In preliminary immunohistochemical studies, staining of the cytoplasm of mastocytoma as well as of hypothalamic neurons, particularly magnocellular ones in the mamillary region, were observed. The latter presumably correspond to the cells of origin of a long ascending histaminergic pathway.

Animals↗

Ascorbic acid and catecholamine secretion from cultured chromaffin cells.

Ascorbic acid was found to be secreted from cultured bovine adrenal chromaffin cells coincidentally with catecholamines using a variety of secretagogues, including veratridine, nicotine, acetylcholine, and potassium chloride. Secretion of ascorbic acid was measured by preloading the cells for 3 h with (R)-[14C]ascorbic acid and then quantitating release of the label. The newly transported ascorbic acid constituted nearly 90% of total cellular ascorbic acid. Although chromaffin granules are known to contain endogenous ascorbic acid, only 16% of the total labeled ascorbic acid taken up by cultured cells was localized to the chromaffin granule fraction. Under the same isolation conditions, 95% of the endogenous catecholamines was found in the granule fraction. The secretion of both (R)-[14C] ascorbic acid and catecholamines was calcium dependent. However, only catecholamine secretion was effectively inhibited by the presence in the medium of isethionate, an impermeant ion that inhibits catecholamine secretion from isolated chromaffin granules. Analysis of the ratios of cellular and granular (R)-[14C] ascorbate as well as secreted (R)-[14C]ascorbate and catecholamines revealed that the secreted (R)-[14C]ascorbic acid did not come exclusively from the chromaffin granule fraction but also from a nonsedimenting cytoplasmic compartment. Indeed, for all four agonists, the amounts of (R)-[14C]ascorbic acid secreted were more than 1.5 times greater than could be accounted for by chromaffin granule ascorbate alone. We took these data to indicate that, while ascorbic acid and catecholamines were secreted concomitantly, the sources of the secreted substances were not necessarily identical.

Acetylcholine↗

Primary cultures of bovine chromaffin cells synthesize and secrete vasoactive intestinal polypeptide (VIP).

Dispersed cells of the bovine adrenal medulla express immunoreactive vasoactive intestinal polypeptide (VIP) after 24 hours in culture, although VIP could not be detected in extracts of bovine adrenal medulla or cortex. Immunoreactive VIP eluted from a reversed-phrase chromatography column with the same retention time as authentic porcine VIP1-28. VIP in chromaffin cells in culture appears to be contained in a secretory granule pool, since it, like methionine-enkephalin (met-enk) was released into the medium after exposure of cells to nicotine, carbachol, veratridine and elevated potassium in a dose-dependent manner. Dose-response curves for VIP and enkephalin release by the above secretagogues were similar but not identical. Enkephalins and VIP may either be contained in separate subpopulations of chromaffin cells or co-stored in the same cells.

Adrenal Medulla↗

Chemical evidence that catecholamines are transported across the chromaffin granule membrane as noncationic species.

Catecholamines are transported into chromaffin granules by a Mg2+/ATP-driven process under conditions in which the substrate exists primarily as a positively charged or neutral species. In order to distinguish between these two states, we studied the transport properties of a permanently charged quaternary analogue of epinephrine, (R,S)-dimethylepinephrine. We found that this compound was a classical competitive inhibitor of (R)-[3H]norepinephrine uptake, with a Ki of 3.8 mM for the racemic form, or 1.9 mM for the R form. However, the [3H]dimethylepinephrine was not transported at all into granules. Our control for steric hindrance as an explanation for deficient translocation was analysis of the transport properties of isoproterenol, a secondary catecholamine with an isopropyl group around the amine residue. (R)-Isoproterenol was an effective competitive inhibitor of (R)-[3H]norepinephrine transport, with a Ki of 91 microM. In contrast to dimethylepinephrine, (R,S)-[3H]isoproterenol was clearly translocated across the granule membrane, with a Km of 123 microM, or 61.5 microM for the R isomer. Thus, the positive charge on dimethylepinephrine and not the size of the amine moiety appeared to be responsible for the lack of translocation. We interpret these data to indicate that, although the positively charged species can interact with the transport site, an uncharged species is the one actually transported.

Animals↗

[Production of anti-L-histidine decarboxylase monoclonal antibodies].

Hybridomas secreting monoclonal antibodies directed against Rat gastric L-histidine decarboxylase (H.D.) have been obtained from a partially purified preparation and screened by immunoprecipitation of the enzyme activity. They cross react with Rat brain H.D., indicating at least that these two enzymes share common antigenic determinants.

Animals↗

Further evidence for the existence of opiate binding sites on neurosecretory LHRH mediobasal hypothalamic terminals.

Opiate binding sites as well as LHRH and SRIF content were evaluated in mediobasal hypothalamus (MBH) from normal male rats and animals subjected to anterolateral deafferentation of the hypothalamus. A 87 and 44% depletion of LHRH and SRIF content respectively and a 50% decrease in the number of specific opiate binding sites was observed in the deafferented MBH. Dopa-decarboxylase activity remained unchanged. These data indicate that presynaptic opiate binding sites are present on LHRH and SRIF mediobasal hypothalamic nerve endings.

Animals↗