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Biomedical subjects

F Murad

Publications and source records attributed to F Murad.

At least 73 records · Page 4Linked to original sources

Ca2+/calmodulin-dependent NO synthase type I: a biopteroflavoprotein with Ca2+/calmodulin-independent diaphorase and reductase activities.

NO synthase (NOS; EC 1.14.23) catalyzes the conversion of L-arginine into L-citrulline and a guanylyl cyclase-activating factor (GAF) that is chemically identical with nitric oxide or a nitric oxide-releasing compound (NO). Similar to the other isozymes of NOS that have been characterized to date, the soluble and Ca2+/calmodulin-regulated type I from rat cerebellum (homodimer of 160-kDa subunits) is dependent on NADPH for catalytic activity. The enzyme also possesses NADPH diaphorase activity in the presence of the electron acceptor nitroblue tetrazolium (NBT). We investigated the requirements of NOS and its content of the proposed additional cofactors tetrahydrobiopterin (H4biopterin) and flavins, further characterized the NADPH diaphorase activity, and quantified the NADPH binding site(s). Purified NOS type I Ca2+/calmodulin-independently bound the [32P]2',3'-dialdehyde analogue of NADPH (dNADPH), which, at near Km concentrations during 3-min incubations was utilized as a substrate and at higher concentrations or after prolonged incubations and cross-linking inhibited NOS activity. The NADPH diaphorase activity was Ca2+/calmodulin-independent, required higher NADPH concentrations than NOS activity, and was affected by dNADPH to a lesser degree. Divalent cations interfered with the diaphorase assay. Per dimer, native NOS contained about 1 mol each of H4biopterin, FAD, and FMN, classifying it as a biopteroflavoprotein, and incorporated 1 mol of dNADPH. No dihydrobiopterin (H2biopterin), biopterin, or riboflavin was detected. These findings suggest that NOS may share cofactors between two identical subunits via high-affinity binding sites.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Oxidoreductases↗

Induced RAW 264.7 macrophages express soluble and particulate nitric oxide synthase: inhibition by transforming growth factor-beta.

RAW 264.7 macrophages induced with lipopolysaccharide and interferon-gamma expressed nitric oxide (NO) synthase. Approximately two-thirds of the total induced NO synthase activity was found in the cytosolic fraction, whereas one-third was associated with the particulate fraction. Both enzymes formed L-citrulline in addition to NO-like material. NO and L-citrulline formation by both enzymes were calcium-independent and inhibited by NG-nitro-L-arginine and NG-methyl-L-arginine. Transforming growth factor-beta 1 prevented the induction of both enzymes.

Amino Acid Oxidoreductases↗

Insulin secretion from pancreatic B cells caused by L-arginine-derived nitrogen oxides.

L-arginine causes insulin release from pancreatic B cells. Data from three model systems support the hypothesis that L-arginine-derived nitrogen oxides (NOs) mediate insulin release stimulated by L-arginine in the presence of D-glucose and by the hypoglycemic drug tolbutamide. The formation of NO in pancreatic B cells was detected both chemically and by the NO-induced accumulation of guanosine 3',5'-monophosphate. NG-substituted L-arginine analogs inhibited the release of both insulin and NO. Protein immunoblot and histochemical analysis with antiserum to type I NO synthase suggest that the formation of NO in pancreatic B cells is catalyzed by an NADPH- (reduced form of nicotinamide adenine dinucleotide phosphate), Ca2+/calmodulin-dependent type I NO synthase of about 150 kilodaltons.

Amino Acid Oxidoreductases↗

Colocalization of nitric oxide synthase and NADPH-diaphorase in cultured myenteric neurones.

Nitric oxide synthase immunoreactivity and NADPH-diaphorase activity were examined in explant culture preparations of the myenteric plexus from beneath the taenia coli of the guinea-pig caecum. Nitric oxide synthase immunoreactive neurones formed approximately one third of the total neuronal population. NADPH-diaphorase positive neurones, demonstrated histochemically, constituted a similar proportion of the total number of neurones. Immunocytochemistry and NADPH-diaphorase histochemistry performed on the same preparations revealed that all nitric oxide synthase immunoreactive neurones expressed NADPH-diaphorase activity. This histochemical evidence is consistent with the view that nitric oxide may act as a regulatory agent in the guinea-pig caecum.

Amino Acid Oxidoreductases↗

Detection by bioassay and specific enzyme-linked immunosorbent assay of phosphoramidon-inhibitable endothelin-converting activity in brain and endothelium.

The endothelin-converting enzyme (ECE) activity present in endothelial cells and rat and human brains was characterized using a selective and rapid bioassay for endothelin-1 (ET-1) or endothelin-3 (ET-3) together with a sensitive enzyme-linked immunosorbent assay. We found that ECE activity was predominantly in the membrane fraction of endothelial cells from which it could be extracted by treatment with detergent. In rat brain tissue, the ECE activity was in the membrane fraction and was not solubilized by detergent treatment. Further dissection of the brain revealed that there was a strong localization of ECE activity in the hypothalamus, midbrain, and medulla oblongata in agreement with earlier observations of ET-like immunoreactivity and binding sites. Experiments with human brain tissue also showed the presence of ECE activity. In conclusion, our studies confirmed the presence of ECE activity within endothelial cells, and showed ECE to be localized in brain tissue in sites consistent with the selective distribution of the ET-1 synthetic pathway. In all tissues studied, the ECE activity was significantly inhibited by phosphoramidon or ethylenediaminetetra-acetate.

Animals↗

Particulate and soluble bovine endothelial nitric oxide synthases are structurally similar proteins yet different from soluble brain nitric oxide synthase.

In cultured bovine aortic endothelial cells (BAECs), 95% of the total endothelial nitric oxide (NO) synthase (type III) activity was found in the particulate fraction and only 5% was found in the soluble fraction. The soluble and particulate endothelial NO synthase activities behaved similarly on anion-exchange and gel filtration chromatography, whereas the soluble brain NO synthase (type I) had chromatographic properties different from the type III endothelial NO synthases. We have purified the particulate endothelial NO synthase from cultured and native BAECs using affinity chromatography on 2',5'-ADP Sepharose followed by Superose 6 gel filtration chromatography. Subsequently, monoclonal antibodies were generated against the purified particulate endothelial NO synthase. In protein immunoblotting analyses, crude and partially purified samples of particulate and soluble type III endothelial NO synthase demonstrated a single band at a molecular mass of 135 kDa with monoclonal antibody (MAb) H32. Purified type I soluble brain NO synthase did not cross-react with MAb H32. These data indicate that the soluble and particulate endothelial NO synthase are structurally similar proteins and represent an isozyme that can be distinguished from the brain NO synthase.

Amino Acid Oxidoreductases↗

Human brain contains a metalloprotease that converts big endothelin-1 to endothelin-1 and is inhibited by phosphoramidon and EDTA.

Incubation of big endothelin-1 (bET-1) with protein derived from the detergent-extracted 100,000 g pellet prepared from human brain tissue resulted in the formation of endothelin-1 (ET-1) at a rate of 90 fmol mg-1 protein min-1. This formation was inhibited in a concentration-dependent manner by either phosphoramidon or EDTA, with half-maximal inhibitory concentrations of 2 and 20 microM, respectively. No conversion of big endothelin-3 (bET-3) to endothelin-3 (ET-3) was detected under the same conditions. These results show the presence in the human brain of a metalloprotease-like enzymatic activity which selectively converts bET-1 and ET-1. Together with earlier reports of mRNA for ET-1 this suggests the presence of the entire synthetic pathway for ET-1 in human brain.

Brain↗

Characterization and localization of nitric oxide synthase in non-adrenergic non-cholinergic nerves from bovine retractor penis muscles.

1. Partially purified soluble nitric oxide (NO) synthase was isolated from the bovine retractor penis muscle (BRP), a tissue in which the inhibitory response to non-adrenergic non-cholinergic nerve (NANC) stimulation appears to be mediated by NO or NO-like material. 2. NO synthase from BRP used L-arginine as a substrate, required NADPH, tetrahydrobiopterin, and FAD as co-factors and was Ca2+/calmodulin-dependent. The activity of NO synthase was inhibited by NG-methyl-L-arginine and NG-nitro-L-arginine, and haemoglobin blocked the effect of NO formed by the enzyme. 3. On reducing SDS polyacrylamide gel electrophoresis the apparent molecular mass of NO synthase from BRP was 160 +/- 2 kDa, which is similar to that of the cerebellar NO synthase. Protein immunoblot and immunoprecipitation showed that NO synthase from BRP cross-reacted with the selective antiserum to neuronal NO synthase from rat cerebellum. 4. Immunohistochemistry using the same antiserum demonstrated that NO synthase in BRP was located exclusively within nerve fibres. Thus, autonomic nerves synthesizing the NANC neurotransmitter seem to contain an isoform of NO synthase which is similar to that from rat cerebellum.

Amino Acid Oxidoreductases↗

Regional differences in endothelin converting enzyme activity in rat brain: inhibition by phosphoramidon and EDTA.

1. It has been demonstrated previously that conversion of big endothelin-1 (bET-1) to endothelin-1 (ET-1) is inhibited in vitro and in vivo by phosphoramidon. In addition, ET-1 binding sites and mRNA have been shown within the brain. Here we expand upon our previous observation that rat brain contains phosphoramidon-inhibitable endothelin converting enzyme (ECE) and show that this activity is not uniformly distributed throughout the brain. 2. ECE activity was detected by a bioassay which depended upon the 10,000 fold difference in potency between bET-1 and ET-1 as stimulants of guanosine 3':5'-cyclic monophosphate (cyclic GMP) accumulation in kidney epithelial (PK1) cells of the pig. Data were confirmed by specific enzyme-linked immunosorbent assay (ELISA) employing antibody directed against ET-1/3(17-21). 3. Following homogenization of the whole brain and ultracentrifugation the 100,000 g pellet contained greater than 4 times more ECE activity than the cytosol. Washing of the pellet with KCl (1 M) and extraction with the detergent CHAPS (20 mM) revealed a phosphoramidon-inhibitable ECE within the residual particulate fraction (nominally classified as the cytoskeletal fraction). Phosphoramidon (IC50, approx. 5 microM) or EDTA inhibited the conversion of bET-1 to ET-1 by the cytoskeletal fraction of rat brain by more than 60%.2+ 4. Following dissection of rat brain into olfactory bulb, cerebral cortex, striatum, hippocampus, cerebellum, midbrain (including thalamus), hypothalamus and medulla oblongata (including pons) the greatest ECE was detected in the hypothalamus and medulla oblongata.After fractionation, the ECE-activities in the cytoskeletal fractions prepared from the hypothalamus or medulla oblongata were inhibited concentration-dependently by phosphoramidon or EDTA, with maximum inhibitions of>80% and >70%, respectively.5. These data show that rat brain contains a phosphoramidon- and EDTA-inhibitable ECE which maybe similar to that present in endothelial cells. The localization of this enzyme correlates with published reports of immunoreactive-ET-l, ET-1-binding sites, and messenger RNA for ET-1 in the rat brain, and suggests the presence of the entire synthetic pathway for ET-1.

Animals↗

Nitric oxide synthase in ferret brain: localization and characterization.

1. In the present study, we have investigated the distribution of nitric oxide synthase in the ferret brain. Nitric oxide synthase was determined biochemically and immunochemically. 2. In the rat brain, the highest nitric oxide synthase activity has been detected in the cerebellum. However, in the ferret brain, the highest activity was found in the striatum and the lowest in the cerebellum and cerebral cortex. The enzymatic activity was localized predominantly in the cytosolic fractions, it was dependent on NADPH and Ca2+, and inhibited by NG-nitro-L-arginine or NG-methyl-L-arginine. 3. Western blot analysis revealed that all regions of the ferret brain contained a 160 kD protein crossreacting with an antibody to nitric oxide synthase purified from the rat cerebellum, and the levels of relative intensity of staining by the antibody correlated with the distribution of nitric oxide synthase activity. 4. These results indicate that the ferret brain contains a nitric oxide synthase similar to the rat brain, but the distribution of enzymatic activity in the ferret brain differs markedly from the rat brain.

Amino Acid Oxidoreductases↗

Interactions of endothelins and EDRF in bovine native endothelial cells: selective effects of endothelin-3.

The tone of vascular smooth muscle is influenced by factors released from the endothelium, including endothelin (ET)-1 and endothelium-derived relaxing factor (EDRF). To better understand the interactions between these two mediators, we examined the release of both immunoreactive ET-1 (ir-ET-1) and EDRF from bovine aortic intact endothelium. Bovine aortas were opened longitudinally, washed, and clamped with the endothelium uppermost between two plates. The upper plate contained six openings forming identical and independent wells of endothelial cell monolayer. In experiments examining the release of EDRF, measured as accumulated NO2- and NO3- (NO chi -), we found that ET-3, calcium ionophore A23187 (A23187), acetylcholine (ACh), or ADP caused significant increase in NO chi- release, whereas ET-1 did not. These were significantly reduced in the presence of the EDRF/NO synthase inhibitor, NG-methyl-L-arginine (L-NMA). In a parallel series of experiments measuring EDRF release by stimulation of guanosine 3',5'-cyclic monophosphate (cGMP) accumulation in rat fetal lung (RFL)-6 cells, ET-3 but not ET-1 was also found to be active as a releaser of EDRF. A23187 caused an increase of ir-ET-1 release, whereas ACh, ADP, or the NO-containing compound sodium nitroprusside decreased the release of ir-ET-1. The depression in ir-ET-1 release in the presence of ACh or ADP was not seen when the endothelium was treated with L-NMA. When the cells were pretreated with 8-bromoguanosine 3',5'-cyclic monophosphate (8-bromo-cGMP), the release of ir-ET-1 in response to A23187 was significantly depressed.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Atriopeptin-induced increases in endothelial cell permeability are associated with elevated cGMP levels.

To investigate the mechanism of nonrenal capillary hyperfiltration, we studied the effect of atriopeptin (AP) III and AP I on permeability and intracellular cyclic nucleotide levels in cultured bovine pulmonary artery endothelial cell monolayers. Permeability to albumin was assessed by the albumin transfer rate across endothelial cell monolayers, following a 4-h incubation with atriopeptins. AP III (0.01, 0.1, and 1 microM) caused a concentration-dependent increase in the albumin transfer rate. AP III induced a threefold increase in intracellular guanosine 3',5'-cyclic monophosphate (cGMP) levels during the incubation period. A phosphodiesterase inhibitor, 3-isobutyl-1-methylxanthine (IBMX), enhanced the AP III-induced increase in permeability and cGMP accumulation by 16-fold at maximum. 8-Bromoguanosine 3',5'-cyclic monophosphate, a hydrolysis-resistant cGMP analogue, caused a slight but significant increase in permeability. In contrast, AP I, a weak agonist of the cGMP-coupled ANP receptor, did not elicit an increase in permeability at concentrations of 0.1 and 1 microM. Although AP I (1 microM) caused a significant increase in cGMP by 33 and 60% in the absence and presence of IBMX, the increase was markedly less compared with AP III. AP III did not cause a change in intracellular cAMP levels during the incubation period. These observations suggest that in our system AP III increases the permeability of endothelial cell monolayers in association with an elevated cGMP level. Thus an increase in permeability might be involved in the mechanism of ANP-induced capillary hyperfiltration.

Animals↗

Mapping of neural nitric oxide synthase in the rat suggests frequent co-localization with NADPH diaphorase but not with soluble guanylyl cyclase, and novel paraneural functions for nitrinergic signal transduction.

Nitric oxide synthases (NOS Types I-III) generate nitric oxide (NO), which in turn activates soluble guanylyl cyclase (GC-S). The distribution of this NO-mediated (nitrinergic) signal transduction pathway in the body is unclear. A polyclonal monospecific antibody to rat cerebellum NOS-I and a monoclonal antibody to rat lung GC-S were employed to localize the protein components of this pathway in different rat organs and tissues. We confirmed the localization of NOS-I in neurons of the central and peripheral nervous system, where NO may regulate cerebral blood flow and mediate long-term potentiation. GC-S was located in NOS-negative neurons, indicating that NO acts as an intercellular signal molecule or neurotransmitter. However, NOS-I was not confined to neurons but was widely distributed over several non-neural cell types and tissues. These included glia cells, macula densa of kidney, epithelial cells of lung, uterus, and stomach, and islets of Langerhans. Our findings suggest that NOS-I is the most widely distributed isoform of NOS and, in addition to its neural functions, regulates secretion and non-vascular smooth muscle function. With the exception of bone tissue, NADPH-diaphorase (NADPH-d) activity was generally co-localized with NOS-I immunoreactivity in both neural and non-neural cells, and is a suitable histochemical marker for NOS-I but not a selective neuronal marker.

Amino Acid Oxidoreductases↗

Characterization of endothelin-converting enzyme from endothelial cells and rat brain: detection of the formation of biologically active endothelin-1 by rapid bioassay.

Using the endothelin-1 (ET-1)-stimulated elevation in cGMP in LLC-PK1 cells as a biological detector system for the conversion of big ET-1 (bET-1) to ET-1, we detected bET-1-converting activities in subcellular fractions from bovine aortic cultured endothelial cells (BAE) and rat brain. Within the particulate fraction of BAE, we detected two activities, at pH 3.4 and pH 5.4-7.4. The latter but not the former activity was inhibited in a concentration-dependent manner by phosphoramidon (approximate IC50, 1 microM) and converted bET-1 to ET-1 at a rate of 0.6 nmol/hr/mg of protein. It could be solubilized from the particulate fraction by detergent treatment. Phosphoramidon-inhibitable converting activity was also detected in the cytosolic fraction of BAE. Within the rat brain, phosphoramidon-inhibitable conversion of bET-1 to ET-1 was detected principally in the cytoskeletal fraction, i.e., that fraction from the membrane that was not solubilized by detergent treatment. These results show the presence of at least two different endothelin-converting enzyme activities in endothelial cells and a third within the rat brain. They also demonstrate the use of LLC-PK1 cells as a rapid assay that permits the sensitive detection and measurement of the formation of biologically active ET-1 from its precursor bET-1.

Animals↗

Prolonged exposure to catecholamines enhances sensitivity of smooth muscle relaxation induced by sodium nitroprusside and atriopeptin.

Desensitization of alpha-1 adrenergic receptor-mediated contraction occurs in aortic smooth muscle from rats after in vitro exposure to norepinephrine (NE). The purpose of this study was to examine effects of pretreatment of blood vessels with catecholamines on relaxant responses of the vessels to sodium nitroprusside (SNP) and atriopeptin III (ANF). Vessels preincubated with NE for 4 hr had a markedly increased sensitivity to relaxation induced by SNP as compared to controls. The concentration of SNP giving half-maximal relaxation (log EC50) was -8.78 +/- 0.09 in the vessels pretreated with NE and -7.40 +/- 0.18 in controls (P less than .001). NE-treated vessels also had an increased sensitivity to ANF (EC50 -8.23 +/- 0.11 vs. -7.03 +/- 0.31, respectively; P less than .01). However, both desensitized and control vessels had similar sensitivity to relaxation induced by 8-bromo-cyclic GMP. The capacity of SNP to stimulate intracellular cyclic GMP accumulation in vessels pretreated with NE was greater than controls at a high concentration of SNP (10(-5) M.). However, there was no correlation between vasodilation induced by lower concentrations of SNP and stimulation of cyclic GMP accumulation in these blood vessels. Activity of soluble and particulate guanylate cyclase in NE-treated vessels was increased compared to controls. Changes in sensitivity of smooth muscle relaxation to SNP and ANF after prolonged exposure to catecholamines may relate to changes in capacity of the cyclic GMP system.

Animals↗

Regulation and subcellular location of nitrogen oxide synthases in RAW264.7 macrophages.

In nitrinergic signal transduction, nitrogen oxide (NO) synthases (NOS) (EC 1.14.23) catalyze the conversion of L-arginine to L-citrulline and NO, which in turn activates soluble guanylyl cyclase. Macrophages were reported to contain a single isoform of NOS (type II, soluble, Ca(2+)-independent, 130-kDa) and only upon activation of the cells by interferon-gamma (INF) and lipopolysaccharides (LPS). By a mechanism involving L-type Ca2+ channels, calmodulin, and serine proteases, INF/LPS also induce a cytotoxic activation of macrophages. In RAW264.7 macrophages, NO release was detected upon activation of the cells by INF/LPS but also, although at a 20-fold lower level, in control cells. The latter constitutive NOS activity and NO release were Ca2+ dependent and were decreased in INF/LPS-activated RAW264.7 cells or with increasing passage number. RAW264.7 cells did not express soluble guanylyl cyclase, suggesting other target molecules for NO. In INF/LPS-activated cells, NOS activities and NO release were Ca2+ independent (type II) and coinduced with NADPH-diaphorase activities both in the soluble and in the particulate fractions. The NOS-II activities corresponded to a 130-kDa protein, by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, which was not recognized in a protein immunoblot with anti-NOS-I antibody. The serine protease inhibitor tosyl-lysyl chloromethyl ketone abolished the induction of NOS-II by INF/LPS, by depleting intracellular thiol pools and interfering with protein synthesis. Induction of NOS-II by INF/LPS was transcriptionally based and, for maximal enzyme activity, required increased intracellular tetrahydrobiopterin levels, intracellular Ca2+ mobilization, and activation of non-L-type Ca2+ channels but, unlike the induction of macrophage-mediated cytotoxicity, neither L-type-Ca2+ channels nor calmodulin.

Amino Acid Oxidoreductases↗

Induction of NADPH-dependent diaphorase and nitric oxide synthase activity in aortic smooth muscle and cultured macrophages.

Lipopolysaccharide (LPS), either alone or in combination with cytokines, induces nitric oxide (NO) synthase activity in cells that normally release little or no NO. In arterial smooth muscle cells and various macrophage cell lines, NO synthase activity is induced after several hours of incubation with LPS. In brain, NADPH-dependent diaphorase activity has been associated with constitutive NO synthase. Here we show that incubation of rat aorta or cultured macrophages with LPS causes a time-dependent induction of NO synthase. The NO synthase activity in both rat aorta and macrophages was calcium independent and inhibited by NG-monomethyl-L-arginine and NG-nitro-L-arginine. We also found that LPS caused a time-dependent induction in NADPH-dependent diaphorase activity in both rat aorta and cultured macrophages. The diaphorase activity was mainly NADPH dependent and NADH independent. NO synthase activity and NADPH-diaphorase activity in crude cytosol from LPS-treated macrophages were found to co-purify, using 2',5'-ADP-Sepharose followed by Superose-6 gel permeation chromatography.

Amino Acid Oxidoreductases↗