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S Moncada

Publications and source records attributed to S Moncada.

At least 181 records · Page 10Linked to original sources

The arginine/nitric oxide pathway modulates sphincter of Oddi motor activity in guinea pigs and rabbits.

BACKGROUND: Nitric oxide acts as a neurotransmitter of nonadrenergic, noncholinergic pathways. The present study examined the role of the L-arginine/NO pathway on sphincter of Oddi motility. METHODS: In anesthetized guinea pigs and rabbits, intracholedochal pressure was recorded by a perfused catheter whose open tip was maintained close to the sphincter of Oddi lumen. The contractile responses to cholecystokinin or bethanechol were recorded before and after treatment with either a specific NO synthetase inhibitor (NG-nitro-L-arginine methyl ester) or a donor of NO (sodium nitroprusside). The effect of NO synthase inhibition on isometric tension generated by muscle from rabbit sphincter of Oddi was tested in vitro. RESULTS: Tonic pressure and phasic contractions significantly increased after NO synthase inhibition; responses to cholecystokinin and bethanechol were enhanced. In contrast, sodium nitroprusside reduced the response to cholecystokinin. Isolated muscle from rabbit sphincter of Oddi relaxed in response to the nicotinic agonist dimethyl-4-phenylpiperazinium. Relaxation was eliminated by either the neurotoxin tetrodotoxin or by NG-nitro-L-arginine methyl ester. NO synthase inhibition also suppressed the relaxatory response induced by electrical field stimulation. Calcium-dependent activity of NO synthase was detected in fresh homogenates from guinea pig and rabbit sphincter of Oddi tissue. CONCLUSIONS: NO that is locally generated by a constitutive NO synthase regulates sphincter of Oddi motor function.

Amino Acid Oxidoreductases↗

Release of nitric oxide evoked by nerve stimulation in guinea-pig intestine.

Non-adrenergic non-cholinergic nerves provide the main inhibitory autonomic supply to intestinal smooth muscle and other organ systems. Nitric oxide is likely to act as a neurotransmitter in these nerves and a nitric oxide synthase has been demonstrated in autonomic neurons. However, there are as yet no biochemical measurements of nerve-induced release of nitric oxide or its breakdown products nitrite and nitrate. We have examined the possibility that nitric oxide is released by stimulation of autonomic nerves in the guinea-pig intestine by studying the release of nitric oxide, nitrite and nitrate. The biological activity of a vascular relaxing factor released by the activation of these nerves was compared with that of nitric oxide using a bioassay system as previously described. Nitrite and nitrate release were measured by high-performance liquid chromatography using UV absorbance. The relaxation of the bioassay tissues to nerve stimulation was indistinguishable from the relaxation induced by nitric oxide. Both relaxations were equally unstable and inhibited to a similar degree by haemoglobin and enhanced by superoxide dismutase. Furthermore, the release of the relaxing factor was attenuated by treatment with the nitric oxide synthase inhibitor N omega-nitro-L-arginine. Concomitant with the release of the relaxing factor, which was frequency dependent, there was a frequency-dependent release of nitrite and nitrate in amounts sufficient to explain the vascular relaxations observed during nerve stimulation. The release of nitrite and nitrate was also inhibited by treatment with the nitric oxide synthase inhibitor.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Oxidoreductases↗

Platelet adhesion to human vascular endothelium is modulated by constitutive and cytokine induced nitric oxide.

OBJECTIVE: The aim was to study whether basal or cytokine stimulated generation of nitric oxide (NO) modulates platelet adhesion to human umbilical vein endothelial cells (HUVEC). METHODS: The adhesion of 111In labelled human platelets to transfected HUVEC (SGHEC-7) was measured either alone or after incubation of SGHEC-7 cells for 18 h with interleukin-1 beta (IL-1 beta) and/or tumour necrosis factor alpha (TNF alpha). The activity of NO synthase in these cells was measured by formation of citrulline. The effects of dexamethasone (0.3 microM) and NG-monomethyl-L-arginine (L-NMMA, 100 microM) on these two variables were determined. RESULTS: Stimulation of SGHEC-7 cells with IL-1 beta or TNF alpha (each at 1-30 ng.ml-1) caused them to express the inducible NO synthase, an effect that was prevented by dexamethasone. Platelet adhesion to unstimulated SGHEC-7 cells was < 0.1% (n = 3) and was increased to 0.7 (SEM 0.2)% by L-NMMA but was not affected by dexamethasone. Stimulation of the cells with IL-1 beta and TNF alpha increased platelet adhesion to a maximum of 2.2(0.4)%. This increase was enhanced by both dexamethasone and L-NMMA. The effect of L-NMMA was prevented by L-arginine. CONCLUSIONS: Inhibition of NO synthesis by L-NMMA potentiates platelet adhesion to unstimulated SGHEC-7 cells, showing that basally released NO regulates platelet adhesion. Stimulation of SGHEC-7 cells by cytokines increases their adhesive properties but at the same time causes them to express the inducible NO synthase. Nitric oxide generated by this enzyme contributes to the modulation of the adhesive properties of the endothelial cells. Thus both constitutive and inducible NO synthases modulate endothelial cell thrombogenicity.

Amino Acid Oxidoreductases↗

Patients with achalasia lack nitric oxide synthase in the gastro-oesophageal junction.

The abnormal function of the lower oesophageal sphincter in achalasia is likely to be due to impaired nonadrenergic, noncholinergic (NANC) inhibitory input. Since recent studies in animals suggest that nitric oxide (NO) is implicated physiologically in the inhibitory responses of the lower oesophageal sphincter, we have investigated whether the synthesis of NO is altered in the gastro-oesophageal junction of patients with achalasia. NO synthase activity was investigated in samples of tissue from the gastro-oesophageal junction obtained during surgery in eight patients with typical achalasia and six non-achalasic controls who underwent oesophagectomy for reasons other than sphincter dysfunction. The NO synthase activity was determined by the transformation of 14C-L-arginine into 14C-L-citrulline in tissue homogenates. In addition, immunohistochemical staining of the tissues was performed using a polyclonal antibody raised against a peptide sequence of rat brain NO synthase. Furthermore, the relaxant response to an exogenous NO donor (sodium nitroprusside, SNP) was measured in vitro in muscle strips obtained from two patients with achalasia and in two non-achalasic controls. NO synthase activity was detected in each of the samples obtained from six control patients (0.59 +/- 0.21 pmol mg-1 min-1; mean +/- SE). By contrast, none of the samples obtained from the eight patients with achalasia had any detectable NO synthase activity. Immunohistochemical studies confirmed the presence of NO synthase in the myenteric plexus of the gastro-oesophageal junction of control patients and its absence in achalasia. SNP relaxed muscle strips precontracted with bethanechol in both control samples and those from patients with achalasia.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Feedback inhibition of nitric oxide synthase activity by nitric oxide.

1. A murine macrophage cell line, J774, expressed nitric oxide (NO) synthase activity in response to interferon-gamma (IFN-gamma, 10 u ml-1) plus lipopolysaccharide (LPS, 10 ng ml-1). The enzyme activity was first detectable 6 h after incubation, peaked at 12 h and became undetectable after 48 h. 2. The decline in the NO synthase activity was not due to inhibition by stable substances secreted by the cells into the culture supernatant. 3. The decline in the NO synthase activity was significantly slowed down in cells cultured in a low L-arginine medium or with added haemoglobin, suggesting that NO may be involved in a feedback inhibitory mechanism. 4. The addition of NO generators, S-nitroso-acetyl-penicillamine (SNAP) or S-nitroso-glutathione (GSNO) markedly inhibited the NO synthase activity in a dose-dependent manner. The effect of NO on the enzyme was not due to the inhibition of de novo protein synthesis. 5. SNAP directly inhibited the inducible NO synthase extracted from activated J774 cells, as well as the constitutive NO synthase extracted from the rat brain. 6. The enzyme activity of J774 cells was not restored after the removal of SNAP by gel filtration, suggesting that NO inhibits NO synthase irreversibly.

8-Bromo Cyclic Adenosine Monophosphate↗

The actions of nitric oxide donors in the prevention or induction of injury to the rat gastric mucosa.

1. The protective or damaging actions on the gastric mucosa, of locally infused nitrovasodilators that donate nitric oxide (NO), have been investigated in the pentobarbitone-anaesthetized rat. 2. Local intra-arterial infusion of endothelin-1 (ET-1; 5 pmol kg-1 min-1 for 10 min) induced extensive, macroscopically apparent, haemorrhagic injury to the rat gastric mucosa. This damage was dose-dependently reduced by concurrent local intra-arterial infusion of glyceryl trinitrate (GTN; 10-40 micrograms kg-1 min-1) which liberates NO on metabolic transformation, or the nitrosothiol, S-nitroso-N-acetyl-penicillamine (SNAP, 2.5-10 micrograms kg-1 min-1) which spontaneously liberates NO. 3. Local infusion of higher doses of SNAP (20 and 40 micrograms kg-1 min-1, i.a.) did not, however, significantly protect against mucosal injury induced by ET-1. 4. Furthermore, local infusion alone of these higher doses of SNAP, as well as sodium nitroprusside (10-40 micrograms kg-1 min-1, i.a.) which also spontaneously liberates NO, induced significant mucosal injury, as assessed macroscopically and confirmed by histology. 5. Local infusion of these higher doses of SNAP and nitroprusside reduced systemic arterial blood pressure (BP), but this was not correlated with the extent of mucosal injury. 6. Furthermore, local infusion of GTN (10-40 micrograms kg-1 min-1, i.a.) alone, which also reduced BP, failed to induce gastric mucosal damage. 7. These findings suggest that exogenous NO can protect the rat gastric mucosa from damage induced by the vasoconstrictor peptide ET-1, which may reflect local microcirculatory interactions. However, the unregulated release of high levels of NO within the microvasculature induces mucosal injury.

Animals↗

Porcine ventricular endocardial cells in culture express the inducible form of nitric oxide synthase.

1. We have investigated whether porcine endocardial cells in culture express the inducible, Ca(2+)-independent form of nitric oxide (NO) synthase. 2. NO synthase activity in cytosolic extracts of endocardial cells was measured by estimation of the rate of formation of L-[14C]-citrulline from L-[14C]-arginine. 3. Treatment of the cells in culture with lipopolysaccharide or cytokines induced a Ca(2+)-independent NO synthase activity in the cell cytosol. The combination of tumour necrosis factor (TNF alpha, 10 ng ml-1) and interleukin-1 beta (IL-1 beta, 10 ng ml-1) induced the greatest enzyme activity. 4. The increased Ca(2+)-independent NO synthase activity following exposure to cytokines was paralleled by an increase in guanosine 3':5'-cyclic monophosphate (cyclic GMP) levels in the endocardial cell cytosol. 5. Simultaneous addition of dexamethasone (0.01-1 microM) or cycloheximide (0.03-3 microM) inhibited in a concentration-dependent manner TNF alpha- and IL-1 beta-induced expression of Ca(2+)-independent NO synthase activity. Neither dexamethasone (1 microM) nor cycloheximide (3 microM) had any effect on the activity of the constitutive NO synthase. 6. The possible pathophysiological consequences of endocardial expression of the inducible NO synthase are discussed.

Amino Acid Oxidoreductases↗

Modulation of adjuvant arthritis by endogenous nitric oxide.

1. The role of endogenous nitric oxide (NO) in adjuvant arthritis in Lewis rats has been studied by use of L-arginine, the amino acid from which NO is synthesized, and NG-nitro-L-arginine methyl ester (L-NAME), an inhibitor of NO synthase. Prolonged modulation (35 days) of the L-arginine: NO pathway in rats was achieved by dissolving test compounds in the drinking water (L-arginine: 3, 10 and 30 mg ml-1; L-NAME: 0.1, 1 and 10 mg ml-1). 2. Arthritis was exacerbated by L-arginine and suppressed by L-NAME in a dose-related fashion. Combined treatment with L-NAME (1 mg ml-1) and L-arginine (30 mg ml-1) did not modify the arthritis. 3. Reduced weight gain, which is a feature of adjuvant arthritis, was modified by these compounds so that L-arginine reduced weight gain whereas L-NAME increased weight gain compared with that in control animals. 4. D-Arginine (30 mg ml-1), NG-nitro-D-arginine methyl ester (D-NAME: 1 mg ml-1) and L-lysine (30 mg ml-1), an amino acid not involved in the generation of NO, were without effect on either arthritis or body weight gain. 5. Antigen-stimulated proliferation of T-lymphocytes as well as generation of nitrite (NO2-) and release of acid phosphatase from macrophages were all enhanced in L-arginine-treated arthritic rats and reduced in L-NAME-treated animals. 6. These results suggest that endogenous NO modulates adjuvant arthritis, possibly by interfering with the activation of T-lymphocytes and/or macrophages.

Acid Phosphatase↗

The induction of nitric oxide synthase and intestinal vascular permeability by endotoxin in the rat.

1. The effect of endotoxin (E. coli lipopolysaccharide) on the induction of nitric oxide synthase (NOS) and the changes in vascular permeability in the colon and jejunum over a 5 h period have been investigated in the rat. 2. Under resting conditions, a calcium-dependent constitutive NOS, determined by the conversion of radiolabelled L-arginine to citrulline, was detected in homogenates of both colonic and jejunal tissue. 3. Administration of endotoxin (3 mg kg-1, i.v.) led, after a 2 h lag period, to the appearance of calcium-independent NOS activity in the colon and jejunum ex vivo, characteristic of the inducible NOS enzyme. 4. Administration of endotoxin led to an increase in colonic and jejunal vascular permeability after a lag period of 3 h, determined by the leakage of radiolabelled albumin. 5. Pretreatment with dexamethasone (1 mg kg-1 s.c., 2 h prior to challenge) inhibited both the induction of NOS and the vascular leakage induced by endotoxin. 6. Administration of the NO synthase inhibitor NG-monomethyl-L-arginine (12.5-50 mg kg-1, s.c.) 3 h after endotoxin injection, dose-dependently reduced the subsequent increase in vascular permeability in jejunum and colon, an effect reversed by L-arginine (300 mg kg-1, s.c.). 7. These findings suggest that induction of NOS is associated with the vascular injury induced by endotoxin in the rat colon and jejunum.

Amino Acid Oxidoreductases↗

Regional and cardiac haemodynamic effects of NG, NG,dimethyl-L-arginine and their reversibility by vasodilators in conscious rats.

1. A series of experiments was carried out on 3 separate groups of male Long Evans rats, chronically instrumented for the measurement of regional haemodynamics, to compare the effects of NG,NG, dimethyl-L-arginine (ADMA) and NG-monomethyl-L-arginine (L-NMMA), and their reversibility by the nitric oxide donors, S-nitroso-N-acetyl-penicillamine (SNAP), S-nitroso-glutathione (SNOG), sodium nitroprusside (SNP), and the vasodilator, hydralazine. 2. As previously reported for L-NMMA, ADMA (1-100 mg kg-1) caused dose-dependent pressor and bradycardic effects, accompanied by renal, mesenteric and hindquarters vasoconstrictions. The magnitude and duration of these effects were similar for ADMA and L-NMMA, consistent with their being equipotent inhibitors of nitric oxide synthase. 3. Infusion of SNAP or SNOG (300 micrograms kg-1 h-1) after injection of ADMA or L-NMMA (100 mg kg-1) reversed the pressor but did not abolish the vasoconstrictor, effects of ADMA or L-NMMA. However, a higher dose of SNAP (3 mg kg-1 h-1) caused complete reversal of the pressor and mesenteric haemodynamic effects of ADMA (100 mg kg-1), although its renal and hindquarters vasoconstrictor effects were not abolished. 4. Infusion of SNP (300 micrograms kg-1 h-1) after administration of L-NMMA (100 mg kg-1), caused complete reversal of its pressor and mesenteric and hindquarters haemodynamic effects, and reduced substantially its renal vasoconstrictor action; hydralazine (7.5 mg kg-1 h-1) was almost as effective as SNP in reversing all these variables. 5. In animals chronically instrumented for the measurement of cardiac haemodynamics, ADMA(100 mg kg-1) caused a pressor effect accompanied by a rise in central venous pressure, and reductions in heart rate, cardiac index, stroke index, peak aortic flow, maximum rate of rise of aortic flow and total peripheral conductance. The reversal of the pressor effect of ADMA by SNAP (300 microg kg-1 h-1) was accompanied by a reduction of central venous pressure below resting levels and a further diminution of stroke index; all other variables showed an increase, but they still remained below resting levels (with the exception of heart rate).6. Thus, following inhibition of NO synthesis, pharmacological intervention with NO donors, or other vasodilators, may cause normalisation of the mean arterial pressure without necessarily returning all associated cardiovascular variables to normal.

Animals↗

Regulation of gall bladder motility by the arginine-nitric oxide pathway in guinea pigs.

Nitric oxide (NO) synthesised from L-arginine is an intercellular messenger in various biological actions including endothelial dependent relaxation and inhibition of platelet aggregation. This study explored the role of the L-arginine-NO pathway in the regulation of gall bladder motility. Intraluminal gall bladder pressure was recorded in anaesthetised guinea pigs in response to cholecystokinin or bethanechol before and after treatment with specific NO synthase inhibitors (NG-nitro-L-arginine, NG-nitro-L-arginine methyl ester, or NG-monomethyl-L-arginine), or with an NO donor (sodium nitroprusside). Baseline gall bladder pressure significantly increased after treatment with the NO synthase inhibitors. Responses to cholecystokinin (0.025-1.25 nmol/kg) were significantly enhanced after treatment with NG-nitro-L-arginine methyl ester and lasted two to threefold longer than in control experiments. The effect of the inhibitor both on resting pressure and on cholecystokinin induced changes was reversed by L-arginine but not by D-arginine. Pretreatment with the inhibitors also induced a significant enhancement of the response to bethanechol. On the other hand, sodium nitroprusside abolished the response to low dose cholecystokinin and reduced the response to a high dose by about 80%. In vitro experiments with isolated gall bladder strips showed a significant enhancement of the contractile response to cholecystokinin or bethanechol after preincubation with the NO synthase inhibitor. Calcium dependent activity of NO synthase was detected in fresh homogenates from gall bladder tissue and incubation with endotoxin induced considerable calcium independent activity. These findings support the existence of a key L-arginine-nitric oxide pathway regulating gall bladder contraction.

Amino Acid Oxidoreductases↗

Phagocytosis and induction of nitric oxide synthase in murine macrophages.

The murine macrophage cell line, J774, produced little or no detectable levels of nitric oxide (NO) when stimulated with interferon-gamma (IFN-gamma) alone in vitro. However, they expressed high levels of NO synthase and produced large amounts of NO when cultured with IFN-gamma in the presence of lipopolysaccharide (LPS). The synergistic action of LPS can be replaced by ingestion by the macrophages of zymosan, Staphylococcus aureus or Leishmania major in a dose-dependent manner. In contrast, the ingestion of particles such as latex beads or silica in the presence of IFN-gamma did not lead to the induction of NO synthase activity. Furthermore, ingestion of ink particles significantly reduced the ability of the macrophages to express NO synthase in response to the optimal stimulation of IFN-gamma and LPS. These results therefore demonstrate that phagocytosis per se is not sufficient to provide the additional signal for the induction of NO synthase activity in macrophages by IFN-gamma, and that the ingestion of certain particles can lead to the paralysis of the expression of this enzyme.

Amino Acid Oxidoreductases↗

Role of endogenous nitric oxide in septic shock.

Nitric oxide synthesized by a constitutive enzyme is a widespread mediator of cell-cell and intracellular communication. This mediator provides a continuous vasodilator influence in the cardiovascular system, modifies the function of circulating cells, and acts as a neurotransmitter. After exposure to bacterial endotoxin or certain cytokines, expression of a second, inducible nitric oxide synthase occurs in a wide variety of tissues. This enzyme produces large amounts of nitric oxide for long periods and has been implicated in pathophysiologic changes seen in sepsis. In some cells, including macrophages, the nitric oxide synthesized by the inducible enzyme is toxic and appears to be an important mediator in host defense. Studies in animals and in vitro have demonstrated that nitric oxide released from inducible nitric oxide synthase in other tissues may cause profound vasodilation, damage to host cells, and cardiac dysfunction. The hypotension of endotoxin- or cytokine-induced shock can be reversed by inhibitors of nitric oxide synthase and these agents may provide a novel therapeutic approach to the treatment of severe septic shock. Preliminary studies in humans suggest that inhibition of nitric oxide synthase improves BP and stabilizes hemodynamics; effects on mortality rates remain to be determined.

Animals↗

Increased serum nitrite and nitrate levels in patients with cirrhosis: relationship to endotoxemia.

Nitric oxide derived from vascular endothelium is a potent vasodilator that plays a key role in the homeostasis of blood pressure. Because cirrhotic patients tend to have low arterial pressure, we measured in 51 patients and 10 control subjects serum nitrite and nitrate levels as an index of in vivo nitric oxide generation. We also measured plasma endotoxin, a substance frequently increased in cirrhotic patients and known to induce nitric oxide synthesis. Cirrhotic patients showed significant increases in serum nitrite/nitrate and plasma endotoxin compared with controls. Values were particularly increased in patients with decompensated cirrhosis, as manifested by ascites with or without functional kidney failure. High serum nitrite/nitrate levels were associated with high plasma renin activity, high aldosterone and antidiuretic hormone levels and low urinary excretion of sodium. In addition, serum nitrite/nitrate levels significantly correlated with endotoxemia. Oral administration of colistin to 15 cirrhotic patients reduced significantly plasma endotoxin levels (p < 0.01) and serum nitrite/nitrate levels (p < 0.05). Because endotoxin enhances the expression of inducible nitric oxide synthase, our results suggest that circulating endotoxin in cirrhosis is responsible for excessive synthesis and release of nitric oxide by the vasculature. These findings might explain the hemodynamic dysfunction seen in cirrhotic patients.

Adult↗

Vascular smooth muscle contains a depletable store of a vasodilator which is light-activated and restored by donors of nitric oxide.

Endothelium-denuded strips of rabbit thoracic aorta relax on exposure to light. This response is similar to endothelium-dependent relaxation as it is inhibited by hemoglobin and methylene blue, and is mediated by an increase in cyclic GMP. We now demonstrate that photorelaxation decreases on repeated exposure to light. The response can be restored by treating the depleted smooth muscle strips with acidified nitrite, but not nitrite alone, and with the nitric oxide donors, S-nitrosopenicillamine and glyceryl trinitrate, but not with hydralazine. These data indicate that photorelaxation is mediated in part by a "pool" of light-activated vasodilator(s) and suggest that this may act as a store of nitric oxide which could play a role in the regulation of vascular tone.

Animals↗