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Biomedical subjects

B Mayer

Publications and source records attributed to B Mayer.

At least 235 records · Page 13Linked to original sources

Immunocytochemical localization of nitric oxide synthase in the brain of the chicken.

The distribution of neuronal nitric oxide synthase (NOS) in the chicken brain was investigated by immunocytochemistry. Strongly stained neurones were concentrated in the paleostriatum augmentatum, lobus parolfactorius, ventral pallidum, olfactory tubercle, parts of the neostriatum, mesencephalic reticular formation and locus coeruleus. Cells in these areas have previously been shown to stain for NADPH-diaphorase, a histochemical activity associated with NOS. However, various structures which NADPH-diaphorase staining has suggested to contain NOS were not immunoreactive: these included the glomeruli of the olfactory bulb, magnocellular preoptic neurones, the median eminence, subcommissural organ and mesencephalic trigeminal neurones. NOS was sparsely present in the hyperstriatum ventrale, providing evidence against the involvement of nitric oxide in certain forms of learning and memory processes known to occur in this region.

Amino Acid Oxidoreductases↗

Expression of rat brain nitric oxide synthase in baculovirus-infected insect cells and characterization of the purified enzyme.

Rat brain nitric oxide synthase was expressed to a high level in baculovirus-infected insect cells and purified to apparent homogeneity by affinity chromatography. The enzyme had a specific activity of approximately 1 mumol of citrulline.min-1.mg of protein-1 and contained 0.93, 0.45, 0.18 and 0.23 mol of haem, (6R)-5,6,7,8-tetrahydro-L-biopterin (H4biopterin), FAD and FMN per mol of subunit respectively.

Amino Acid Oxidoreductases↗

Synthesis and characterization of 3H-labelled tetrahydrobiopterin.

We synthesized [3'-3H]-5,6,7,8-tetrahydrobiopterin from [8,5'-3H]guanosine 5'-triphosphate ([8,5'-3H]GTP) using GTP cyclohydrolase (EC 3.5.4.16), 6-pyruvoyltetrahydropterin synthase and sepiapterin reductase (EC 1.1.1.153). After purification by cation-exchange h.p.l.c. a solution of radiochemically pure (> 95%) [3'-3H]-5,6,7,8-tetrahydrobiopterin with a specific activity of 9.2 Ci/mmol was obtained. The product proved well suited for studying the binding of tetrahydrobiopterin to nitric-oxide synthase.

Amino Acid Oxidoreductases↗

Nitric oxide synthase in the brain of the turtle Pseudemys scripta elegans.

The distribution pattern of nitric oxide synthase (NOS) was investigated in the brain of the turtle by NADPH-diaphorase histochemistry. The specificity of the histochemical staining was tested by immunocytochemical colocalization with an antiserum specific for NOS. In the forebrain, neurons staining intensely for nitric oxide synthase were localized in the olfactory tubercle, the basal ganglia complex, the basal amygdaloid nucleus, suprapeduncular nucleus, and the posterior hypothalamic area. Many positive fibers course in a tract connecting the basal amygdaloid nucleus with the hypothalamus, corresponding to the stria terminalis. Bundles of nitroxergic fibers were seen to course at the ventromedial edge of the optic tract and to cross in the supraoptic decussation, apparently consisting of tectothalamic and thalamotectal fibers. In the midbrain, strongly NOS-positive neurons were present in the substantia nigra, the nucleus profundus mesencephali, the periventricular grey of the optic tectum, the laminar nucleus of the torus semicircularis, and the nucleus of the lateral lemniscus. The area of the locus coeruleus harbored an accumulation of intensely stained neurons, which, as in mammals, might represent a cholinergic cell group of the reptilian brainstem. In the cerebellum, strong staining was confined to bundles of afferent fibers running in the lower molecular and in the Purkinje cell layer. These axons appeared to include ascending projections from the dorsal funicular nucleus or the spinal cord. NOS-positive cells in the caudal brainstem were found in the cerebellar nuclei, in the superior vestibular nucleus, in the reticular nuclei, ventrolateral to the nucleus of the solitary tract, in the perihypoglossal, and in the dorsal funicular nucleus. Taken together, these results suggest that nitric oxide acts as a messenger molecule in different areas of the reptilian brain and spinal cord. In certain areas, the pattern of expression of NOS appears to have evolved before radiation of present mammalian, avian, and reptilian species.

Amino Acid Oxidoreductases↗

Nitric oxide synthase-containing neurons in the pig large intestine: topography, morphology, and viscerofugal projections.

The distribution of neurons that are capable of synthesizing nitric oxide (NO) has been demonstrated in the porcine large intestine by means of NO synthase (NOS) immunocytochemistry and nicotinamide adenine dinucleotide phosphate diaphorase (NADPHd) histochemistry. An overall colocalization of NOS immunoreactivity and NADPHd staining was observed. Nitrergic neurons were abundant in the myenteric and outer submucous plexus of the caecum, colon, and rectum. Only a few nitrergic perikarya were seen in the inner submucous plexus of the colon and caecum, whereas a substantially larger number was observed in the rectum. Nitrergic nerve fibers were present in the three ganglionic nerve plexuses. Contrary to the outer longitudinal muscle layer and the mucosal region, the circular muscle layer received a dense nitrergic innervation. The nitrergic nerve cells were variable in size and shape, and several displayed vasoactive intestinal polypeptide (VIP) immunoreactivity (IR). Retrograde tracing studies revealed the existence of nitrergic neurons that project to the caudal (inferior) mesenteric ganglion. They were observed in the myenteric and outer submucous plexus of the transverse and descending colon and the rectum. These observations strongly suggest that several subpopulations of NO-synthesizing neurons, namely, motor neurons and interneurons, should be distinguished in the porcine large intestine, thereby emphasizing the importance of NO as a biologically active mediator.

Amino Acid Oxidoreductases↗

Neuroepithelial endocrine and nervous system in the respiratory tract of Cynops pyrrhogaster with special reference to the distribution of nitric oxide synthase and serotonin.

The respiratory tract of urodeles harbours an intramural nerve network comprising an innervated system of neuroepithelial endocrine (NEE) cells. However, striking differences have been noted between phylogenetically closely related species. Zamboni- or formaldehyde-fixed whole-mount preparations and sections of the saclike lungs of a Japanese salamander, Cynops salamander, Cynops pyrrhogaster, have been investigated for the immunocytochemical detection of nitric oxide synthase (NOS), serotonin (5-HT), VIP, somatostatin, calcitonin, and bombesin; for the enzyme-cytochemical demonstration of NADPH diaphorase (NADPHd); and for formaldehyde-induced fluorescence. In addition, the ultrastructural morphology has been examined by using glutaraldehyde/osmium tetroxide fixed lung tissues. Ovoid 5-HT-immunoreactive (IR) NEE cells occur singly or grouped in the ciliomucous epithelium of the trachea and lungs of Cynops, and a few somatostatin-, calcitonin-, and bombesin-like IR NEE cells are also observed. These cells exhibit a characteristic neuroendocrine morphology as seen with the electron microscope. In addition, large numbers of 5-HT-IR interstitial cells, with round to oval cell bodies and two or three long, slender, sometimes branching processes, are located preferentially along large blood vessels in the connective tissue capsule of the lung and trachea. Immunoelectronmicroscopy shows that 5-HT is localized over large dense granules in the cell bodies and processes of these interstitial cells. NOS-like immunoreactivity occurs in a nerve plexus composed of thick nerve bundles and nerve cells, and in a fine varicose nerve network that originates at least partly from intrapulmonary NOS-containing nerve cells. VIP-like immunoreactivity appears to be colocalized with NOS in the latter network. All NOS-positive nerve fibres in the lungs of Cynops pyrrhogaster and Ambystoma mexicanum stain for NADPHd. It is concluded that the pulmonary NEE cells observed in Cynops pyrrhogaster are similar to those described in other vertebrate species and that the 5-HT-IR interstitial cells resemble mast cells. In addition, nitric oxide is likely to be a bioactive substance involved in nonadrenergic, noncholinergic inhibitory neurotransmission in the pulmonary nervous system of urodeles, where it may be colocalized with VIP.

Amino Acid Oxidoreductases↗

Identification of imidazole as L-arginine-competitive inhibitor of porcine brain nitric oxide synthase.

Imidazole acts as a heme-site inhibitor of nitric oxide synthase (NOS). We used this compound to investigate whether the substrate L-arginine binds directly to the heme or to a separate domain of brain NOS. Enzyme kinetic experiments showed that imidazole enhanced the apparent Km for L-arginine without affecting maximal enzyme activity, and binding studies revealed that the inhibitor displaced the radioligand NG-nitro-L-[3H]arginine in a concentration-dependent fashion. These results demonstrate that imidazole exerts its effects on NOS in an L-arginine-competitive manner and that the substrate site of the enzyme may be identical with the prosthetic heme group.

Amino Acid Oxidoreductases↗

Reaction of peroxynitrite with oxyhaemoglobin: interference with photometrical determination of nitric oxide.

A frequently applied photometrical assay of NO is based on the reaction of NO with oxyhaemoglobin. This study shows that peroxynitrite induces spectral changes of oxyhaemoglobin identical with those elicited by NO. Like a variety of other agents, peroxynitrite did not interfere with NO measurements using a Clark-type electrode, demonstrating that electrochemical detection has an advantage over the oxyhaemoglobin method for specific determination of NO.

Electrochemistry↗

Uptake of nitric oxide synthase inhibitors by macrophage RAW 264.7 cells.

Uptake of the nitric oxide synthase inhibitors NG-methyl-L-arginine (L-NMA) and NG-nitro-L-arginine (L-NNA) by macrophages is mediated by two different mechanisms. Activation of the cells with cytokines resulted in an up-regulation of L-NMA uptake but did not affect L-NNA transport. Characterization of the transport sites revealed that uptake of L-NMA is mediated by a cationic amino acid transporter (system y+) whereas a neutral amino acid transporter (system L) accounts for the uptake of L-NNA.

Amino Acid Oxidoreductases↗

The pteridine binding site of brain nitric oxide synthase. Tetrahydrobiopterin binding kinetics, specificity, and allosteric interaction with the substrate domain.

Nitric oxide (NO) synthases contain FAD, FMN, heme, and (6R)-5,6,7,8-tetrahydro-L-biopterin as prosthetic groups. We have characterized the pteridine-binding site of purified brain NO synthase, using 3H-labeled (6R)-5,6,7,8-tetrahydro-L-biopterin as radioligand. Association of [3H]tetrahydrobiopterin followed second-order kinetics (kon = 1.3 x 10(6) M-1 min-1), the dissociation reaction was reversible and first-order (koff = 3.2 x 10(-1) min-1), yielding a kinetic KD of 0.25 microM. Binding of the radioligand was competitively antagonized by several pteridine derivatives with the following order of potency (KI): 7,8-dihydro-L-biopterin (2.2 microM), (6S)-5,6,7,8-tetrahydro-L-biopterin (19 microM), (6R,S)-6-methyl-5,6,7,8-tetrahydropterin (240 microM), and 6,7-dimethyl-5,6,7,8-tetrahydropterin (> 1 mM). The affinity of NO synthase for tetrahydrobiopterin was increased 6-fold in the presence of 0.1 mM L-arginine (KD = 37 nM), and, conversely, tetrahydrobiopterin enhanced the affinity of the enzyme for 3H-labeled NG-nitro-L-arginine about 2-fold. 7-Nitroindazole, which presumably binds to the heme group of NO synthase, competitively inhibited binding of [3H]tetrahydrobiopterin and [3H]NG-nitro-L-arginine with similar Ki values (0.1 microM). Functional as well as binding studies revealed that 7-nitroindazole was competitive with both L-arginine and tetrahydrobiopterin. Our data indicate that brain NO synthase exhibits a highly specific binding site for (6R)-5,6,7,8-tetrahydro-L-biopterin, which allosterically interacts with the substrate domain and may be located proximal to the prosthetic heme group of NO synthase.

Allosteric Regulation↗

Nitric oxide synthase immunoreactivity in the human ileocecal region.

The nitric oxide (NO) producing neurons in the human ileocecal region (pre-junctional ileum, ileocecal and cecocolonic junctions, cecum and post-junctional colon) have been evaluated by immunocytochemistry. The percentage of NO synthase-positive neurons was higher at the myenteric plexus than at the submucous plexus, independently of the levels examined. The inner portion of the circular muscle layer, except at the ileal level, was devoid of immunoreactive nerve fibers. Data obtained suggest that neuronal-released NO at the ileocecal region has a greater role in the relaxation of the muscle coat, except for the inner circular muscle layer, than in the regulation of blood flow, absorptive and secretory processes.

Amino Acid Oxidoreductases↗

Nitric oxide synthase-containing nerve fibres and neurones in the gall bladder and biliary pathways of the guinea-pig.

We investigated the distribution pattern of nitric oxide (NO) synthesizing nerve cell bodies and axons in the biliary system of the guinea-pig using immunohistochemistry for nitric oxide synthase (NOS). Nerve fibres staining for NOS were found to contact non-vascular smooth myocytes and to course beneath the epithelium. No perivascular NOS fibres were observed. The innervation density varied in different parts of the biliary tree. The lower portion of the common bile duct was more richly innervated than the remaining parts of the duct system. NOS-containing neurones encompassed a subpopulation of intramural ganglion cells. Sympathetic neurones in the coeliac ganglion were not stained. It is suggested that intrinsic NOergic neurones are involved in inhibitory motor control of the biliary musculature, including the sphincter of Oddi.

Amino Acid Oxidoreductases↗

Inhibitors of brain nitric oxide synthase. Binding kinetics, metabolism, and enzyme inactivation.

Nitric oxide (NO) is synthesized from L-arginine by different NO synthase isozymes, which are inhibited by the substrate analogs NG-methyl- and NG-nitro-L-arginine. We studied binding of 3H-labeled NG-nitro-L-arginine to purified brain NO synthase and compared the data with results obtained in enzyme kinetic experiments. Binding data revealed a single binding site for NG-nitro-L-[3H]arginine (KD = 0.17 microM). Binding was competitively antagonized by L-arginine (KI = 2.9 microM). The half-time of dissociation was remarkably slow (9.4 min) and closely correlated with the time necessary for surmounting NO synthase inhibition by dilution. Although an apparently less potent inhibitor, NG-methyl-L-arginine exhibited the same affinity for brain NO synthase as the nitro derivative (KI = 0.17 microM), and in initial rate experiments, almost equal KI values were obtained for NG-methyl-L-arginine (0.61 microM) and NG-nitro-L-arginine (0.53 microM). However, after prolonged incubation periods, NG-nitro-L-arginine induced a rapid inactivation of the enzyme, whereas the methyl derivative turned out to be a substrate of NO synthase, which was slowly converted into stoichiometric amounts of NO and L-citrulline.

Amino Acid Oxidoreductases↗

Neuronal and endothelial nitric oxide synthase immunoreactivity and NADPH-diaphorase staining in rat and human pancreas: influence of fixation.

In this study, we wished to clarify the distribution and co-localization of nitric oxide synthase and NA-DPH-diaphorase (NADPH-d) in nerve cells, nerve fibres and parenchymal cells in exocrine and endocrine pancreas, and to assess the influence of fixation on the staining pattern obtained. For this purpose, we applied nitric oxide synthase immunocytochemistry and NADPH-d histochemistry to rat and human pancreas under different fixation conditions. Antibodies to neuronal and endothelial nitric oxide synthase were similarly applied. We found complete co-localization of neuronal nitric oxide synthase and NADPH-d in ganglion cells, and in nerve fibres around acini, excretory ducts, blood vessels and in islets of Langerhans of rat and human pancreas. Immunoreactivity for endothelial nitric oxide synthase was co-localized with NADPH-d in endothelial cells. However, in NADPH-d reactive islet and ductal epithelial cells we could detect neither brain nor endothelial nitric oxide synthase immunoreactivity with any fixation protocol applied. There were marked differences in NADPH-d staining of both neurons and parenchymal cells under different fixation conditions. These results indicate the existence of different types of NADPH-d, which are associated or not associated with nitric oxide synthase(s), and which are differently influenced by various fixation procedures in rat and human pancreas.

Acetone↗

Localization of nitric oxide synthase immunoreactivity in mast cells of human nasal mucosa.

Nitric oxide (NO)-synthase immunoreactivity has been detected for the first time in mast cells of human normal nasal mucosa, with an antibody specific for neuronal NO-synthase. Intense immunoreactivity was revealed in secretion granules of mast cells but was found in mast cell granules free in the extracellular matrix only in some instances; no reactivity was found in the cytoplasm of this or other cell types. These findings suggest that human nasal mast cells contain a particulate isoform of NO-synthase, which shares epitopes with neuronal NO-synthase and is rapidly removed from granules upon exocytosis.

Amino Acid Oxidoreductases↗