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B Zingarelli

Publications and source records attributed to B Zingarelli.

At least 73 records · Page 4Linked to original sources

Modulation of lipopolysaccharide-induced tumor necrosis factor-alpha and nitric oxide production by dopamine receptor agonists and antagonists in mice.

The effects of various agonist and antagonists of dopamine D1 and D2 receptors on lipopolysaccharide (LPS)-induced tumor necrosis factor-alpha (TNF-alpha) and nitric oxide (NO) production was investigated in mice. Pretreatment of animals with bromocryptine or quinpirole, agonists of dopamine D2 receptors caused a blunting of both the TNF-alpha and NO responses to LPS injected intraperitoneally. Sulpiride, an antagonist of dopamine D2 receptors, decreased the LPS-induced TNF-alpha plasma levels in a dose-dependent manner and inhibited the LPS-induced NO production by peritoneal macrophages. Bromocryptine or quinpirole blunted both the TNF-alpha and NO response to LPS. SCH-23390, an antagonist of dopamine D1 receptors did not alter LPS-induced TNF-alpha production, but inhibited LPS-induced NO production. These results indicate that while the D2 subtype of dopamine receptors is involve in the modulation of both LPS-induced TNF-alpha and NO production, dopamine D1 receptors only regulate the production of NO. Since several drugs possess effect on dopamine D2 receptors, the present observations may be of clinical relevance.

Animals↗

Protective effects of nicotinamide against nitric oxide-mediated delayed vascular failure in endotoxic shock: potential involvement of polyADP ribosyl synthetase.

Nitric oxide (NO) produced by the inducible isoform of nitric oxide synthase contributes to the hypotension and vascular hyporeactivity in shock. Nicotinamide is protective against the cytotoxic effects of exogenous and endogenous NO in vitro. We investigated the effect of nicotinamide on the cellular energetic and vascular failure in a rat model of endotoxin shock. Administration of nicotinamide to rats, starting at 1 h bacterial lipopolysaccharide, maintained higher blood pressure levels, without affecting induction of nitric oxide synthase. Nicotinamide treatment prevented the lipopolysaccharide-induced decrease in mitochondrial respiration and intracellular NAD+ levels in peritoneal macrophages and improved the contractility of the thoracic aorta ex vivo. Thus, nicotinamide protects against the delayed, NO-mediated vascular failure in endotoxic shock. Its actions are unrelated to inhibition of NO biosynthesis but may be related to inhibition of the NO-mediated activation of an energy-consuming DNA repair cycle triggered by polyADP ribose synthetase.

ADP Ribose Transferases↗

Low-level expression and limited role for the inducible isoform of nitric oxide synthase in the vascular hyporeactivity and mortality associated with cecal ligation and puncture in the rat.

Expression of the inducible isoform of nitric oxide synthase (iNOS) contributes to the hypotension and vascular hyporeactivity in various models of shock induced by bacterial lipopolysaccharide (LPS). However, the role of iNOS in response to shock caused by live bacteria is more controversial. In the present study, we investigated the role of iNOS in a rat model of cecal ligation and puncture (CLP). CLP resulted in increased plasma nitrite/nitrate levels (up to 59 microM at 24 h) and increased pulmonary iNOS activity (up to 71 fmoles/mg/min at 12 h) and caused a significant vascular hyporeactivity at 18 h. The degree of NO production and iNOS induction was approximately 30% of that observed several hours after administration of LPS in the same species, and the degree of vascular hyporeactivity was less than that observed after LPS injection. Selective inhibition of iNOS with mercaptoethylguanidine (MEG) reduced plasma nitrite/nitrate levels, but did not prevent the development of vascular hyporeactivity, and did not improve survival in this model of CLP. Thus, CLP-induced sepsis causes low-level induction of iNOS, but factors other than iNOS are the crucial determinants of the vascular failure and mortality in this model.

Animals↗

Spontaneous rearrangement of aminoalkylisothioureas into mercaptoalkylguanidines, a novel class of nitric oxide synthase inhibitors with selectivity towards the inducible isoform.

1. The generation of nitric oxide (NO) from L-arginine by NO synthases (NOS) can be inhibited by guanidines, amidines and S-alkylisothioureas. Unlike most L-arginine based inhibitors, however, some guanidines and S-alkylisothioureas, in particular aminoethylisothiourea (AETU), show selectivity towards the inducible isoform (iNOS) over the constitutive isoforms (endothelial, ecNOS and brain isoform, bNOS) and so may be of therapeutic benefit. In the present study we have investigated the effects of AETU and other aminoalkylisothioureas on the activities of iNOS, ecNOS and bNOS. 2. AETU, aminopropylisothiourea (APTU) and their derivatives containing alkyl substituents on one of the amidino nitrogens, potently inhibit nitrite formation by immunostimulated J774 macrophages (a model of iNOS activity) with EC50 values ranging from 6-30 microM (EC50 values for NG-methyl-L-arginine (L-NMA) and NG-nitro-L-arginine were 159 and > 1000 microM, respectively). The inhibitory effects of these aminoalkylisothioureas (AATUs) were attentuated by L-arginine in the incubation medium, indicating that these agents may complete with L-arginine for its binding site on NOS. 3. The above AATUs undergo chemical conversion in neutral or basic solution (pH 7 or above) as indicated by (1) the disappearance of AATUs from solution as measured by h.p.l.c., (2) the generation of free thiols not previously present and (3) the isolation of species (as picrate and flavianate salts) from neutral or basic solutions of AATUs that are different from those obtained from acid solutions. 4. Mercaptoalkylguanidines (MAGs) were prepared and shown to be potent inhibitors of iNOS activity with EC50s comparable to those of their isomeric AATUs. 5. These findings suggest that certain AATUs exert their potent inhibitory effects through intramolecular rearrangement to mercaptoalkylguanidines (MAGs) at physiological pH. Those AATUs not capable of such rearrangement do not exhibit the same degree of inhibition of iNOS. 6. In contrast to their potent effects on iNOS, some AATUs and MAGs were 20-100 times weaker than NG-methyl-L-arginine and NG-nitro-L-arginine as inhibitors of ecNOS as assessed by their effects on the conversion of L-arginine to L-citrulline in homogenates of bovine endothelial cells and by their pressor effects in anaesthetized rats. Thus mercaptoalkylguanidines represent a new class of NOS inhibitors with preference towards iNOS. 7. AETU and mercaptoethylguanidine (MEG), when given as infusions, gave slight decreases in MAP in control rats. However, infusions of AETU or MEG to endotoxin-treated rats caused an increase in MAP and restored 80% of the endotoxin-induced fall in MAP. 8. High doses of MEG (30-60 mg kg-1) caused a decrease in MAP of normal rats. This depressor effect may be a consequence of the in vivo oxidation of MEG to the disulphide, guanidinoethyldisulphide (GED), which caused pronounced, transient hypotensive responses in anaesthetized rats and caused endothelium-independent vasodilator responses in precontracted rat aortic rings in vitro. 9. In some cases, slight differences were observed in the activities of AATUs and the corresponding MAGs. These may be explained by the formation of other species from AATUs in physiological media. For example, AETU can give rise to small amounts of the potent ecNOS inhibitor, 2-aminothiazoline, in addition to MEG. This may account for the differences in the in vitro and in vivo effects of AETU and MEG. 10. In conclusion, the in vitro and in vivo effects of AETU and related aminoalkylisothioureas can be explained in terms of their intramolecular rearrangement to generate mercaptoalkylguanidines, a novel class of selective inhibitors of iNOS.

Animals↗

Pharmacological characterization of guanidinoethyldisulphide (GED), a novel inhibitor of nitric oxide synthase with selectivity towards the inducible isoform.

1. Guanidines, amidines, S-alkylisothioureas, and recently, mercaptoalkylguanidines have been described as inhibitors of the generation of nitric oxide (NO) from L-arginine by NO synthases (NOS). We have recently demonstrated that guanidinoethyldisulphide (GED), formed from the dimerisation of mercaptoethylguanidine (MEG), is a novel inhibitor of nitric oxide synthases. Here we describe the pharmacological properties of GED on purified NOS isoforms, various cultured cell types, vascular ring preparations, and in endotoxin shock. 2. GED potently inhibited NOS activity of purified inducible NOS (iNOS), endothelial NOS (ecNOS), and brain NOS (bNOS) enzymes with Ki values of 4.3, 18 and 25 microM, respectively. Thus, GED has a 4 fold selectivity for iNOS over ecNOS at the enzyme level. The inhibitory effect of GED on ecNOS and iNOS was competitive vs. L-arginine and non-competitive vs. tetrahydrobiopterin. 3. Murine J774 macrophages, rat aortic smooth muscle cells, murine lung epithelial cells, and human intestinal DLD-1 cells were stimulated with appropriate mixtures of pro-inflammatory cytokines or bacterial lipopolysaccharide to express iNOS. In these cells, GED potently inhibited nitrite formation (EC50 values: 11, 9, 1 and 30 microM, respectively). This suggests that uptake of GED may be cell type and species-dependent. The inhibitory effect of GED on nitrite production was independent of whether GED was given together with immunostimulation or 6 h afterwards, indicating that GED does not interfere with the process of iNOS induction. 4. GED caused relaxations in the precontracted vascular ring preparations (EC50: 20 microM). Part of this relaxation was endothelium-dependent, but was not blocked by methylene blue (100 microM), an inhibitor of soluble guanylyl cyclase. In precontracted rings, GED enhanced the acetylcholine-induced, endothelium-dependent relaxations at 10 microM and caused a slight inhibition of the relaxations at 100 microM. The vascular studies demonstrate that the inhibitory potency of GED on ecNOS in the ring preparations is considerably lower than its potency against iNOS in the cultured cells. These data suggest that the selectivity of GED towards iNOS may lie, in part, at the enzyme level, as well as differential uptake by cells expressing the various isoforms of NOS. 5. In a rat model of endotoxin shock in vivo, administration of GED, at 3 mg kg-1 bolus followed by 10 mg kg-1 h-1 infusion, starting at 90 min after bacterial lipopolysaccharide (LPS, 15 mg kg-1, i.v.), prevented the delayed fall in mean arterial blood pressure, prevented the development of the vascular hyporeactivity to noradrenaline of the thoracic aorta ex vivo and protected against the impairment of the endothelium-dependent relaxations associated with this model of endotoxaemia. The same bolus and infusion of the inhibitor did not alter blood pressure or ex vivo vascular reactivity in normal animals over 90 min. 6. Administration of GED (10 mg kg-1, i.p.) given at 2 h after LPS (120 mg kg-1, i.p.) and every 6 h thereafter caused a significant improvement in the survival rate in a lethal model of endotoxin shock in mice between 12 and 42 h. 7. In conclusion, we found that GED is a competitive inhibitor of iNOS activity. Its selectivity towards iNOS may lie both at the enzyme level and at the level of cell uptake. GED has beneficial effects in models of endotoxin shock that are driven by iNOS. GED or its derivatives may be useful tools in the experimental therapy of inflammatory conditions associated with NO overproduction due to iNOS expression.

Animals↗

Role of poly-ADP ribosyltransferase activation in the vascular contractile and energetic failure elicited by exogenous and endogenous nitric oxide and peroxynitrite.

Stimulation of vascular smooth muscle with bacterial lipopolysaccharide (LPS) and proinflammatory cytokines induces the expression of a distinct isoform of NO synthase (inducible NOS [iNOS]) contributing to the suppression of vascular contractility. We have obtained evidence of the involvement of an indirect pathway triggered by NO and its reaction product peroxynitrite (ONOO-) through the activation of the nuclear enzyme poly-ADP ribosyltransferase (PARS) in the pathogenesis of cellular energetic and contractile failure in vascular smooth muscle. Exposure of vascular smooth muscle cells caused DNA strand breaks, activation of PARS, depletion of NAD+, and inhibition of mitochondrial respiration. The NAD+ depletion and inhibition of mitochondrial respiration were reduced by pharmacological inhibition of PARS. Stimulation of vascular smooth muscle cells with LPS and interferon gamma (IFN-gamma) triggered the production of superoxide anion over 3 to 48 hours and NO and ONOO- over 24 to 48 hours and resulted in significant DNA strand breakage. The decrease in mitochondrial respiration in response to LPS and IFN-gamma stimulation was inhibited by the ONOO- scavenger uric acid (100 mumol/L) and by inhibitors of iNOS. The PARS inhibitors 3-aminobenzamide (1 mmol/L), nicotinamide (1 mmol/L), and PD 128763 (100 mumol/L) inhibited the reduction in cellular NAD+ and ATP and the suppression of mitochondrial respiration in response to LPS and IFN-gamma stimulation. Administration of 3-aminobenzamide also reduced PARS activation and vascular hyporeactivity of rat thoracic aortas exposed to ONOO- (300 mumol/L to 1.5 mmol/L) in vitro. 3-Aminobenzamide (10 mg/kg IP) preserved the ex vivo contractility of aortas obtained from endotoxic rats and improved survival in lethal murine endotoxic shock. These data suggest that PARS activation due to iNOS induction (1) is involved in the energetic depletion of vascular smooth muscle cells that express iNOS and (2) contributes to the pathogenesis of vascular energetic and contractile failure in endotoxic shock. Inhibition of PARS may be a novel concept of therapeutic potential in shock.

Animals↗

Increased nitric oxide synthesis during the development of endotoxin tolerance.

The role of nitric oxide (NO) synthesis was investigated in endotoxin (LPS) tolerance induced in rats by intraperitoneal injection of a sublethal dose of Salmonella enteritidis LPS (100 micrograms/kg intraperitoneally). Peritoneal macrophages were harvested 6 and 24 h after LPS injection and stimulated in vitro with LPS. LPS significantly stimulated arachidonic acid metabolism, as assessed by 6-keto-prostaglandin F1 alpha (6-keto-PGF1 alpha) levels, and NO production, as assessed by nitrite, in macrophages collected from control rats. In macrophages from tolerant rats LPS-stimulated 6-keto-PGF1 alpha production was significantly reduced, while nitrite production was increased compared to control macrophages (p < .001). In in vivo mortality studies, rats that were pretreated 24 h earlier with sublethal LPS were resistant to the lethal effect of a subsequent dose of LPS (15 mg/kg intravenously) in comparison to control rats (p < .001). NG-Nitro-L-arginine-methyl ester, an inhibitor of NO synthase, decreased mean survival time in control rats and abrogated the resistance to the lethal effect of LPS in tolerant rats. In contrast, molsidomine, a NO donor, improved survival in control rats but did not modify the resistance to the lethal dose of LPS in tolerant rats. The results suggest that sustained NO synthesis may be a beneficial mechanism for the induction of LPS tolerance.

6-Ketoprostaglandin F1 alpha↗

Reorientation of macrophage mediator production in endotoxin tolerance.

During endotoxin shock macrophages produce arachidonic acid (AA) metabolites, nitric oxide (NO) and interleukin 6 (IL-6). In contrast, macrophages from endotoxin tolerant rats become hyporesponsive to LPS-induced AA metabolites production. However the role of NO and IL-6 during endotoxin tolerance is not known. Therefore, we evaluated the production of the AA metabolite 6-keto-prostaglandin F1 alpha (6-keto-PGF1 alpha), IL-6 and NO (by nitrite measurement) by peritoneal macrophages from endotoxin tolerant rats. Since pertussis toxin (PT) sensitive guanine nucleotide binding regulatory (Gi) protein activity is altered during endotoxin tolerance, we also studied the effect of PT on the regulation of the above mediators synthesis. Endotoxin tolerance was induced in rats by intraperitoneal injection of a sublethal dose of Salmonella enteritidis lipopolysaccharide (LPS, 100 micrograms/kg ip). Peritoneal macrophages were harvested 24 hours after LPS injection and stimulated in vitro with LPS (50 micrograms/ml) for determination of NO activity by nitrite, 6-keto-PGF1 alpha and IL-6 production. In macrophages collected from vehicle-pretreated rats (control) LPS stimulates all three mediators. In vivo pretreatment with LPS induced a desensitization of macrophages to LPS-induced 6-keto-PGF1 alpha production compared to control macrophages (p < 0.001). LPS-stimulated IL-6 synthesis was also partially, but not completely, reduced in tolerant macrophages (p < 0.001 versus control).(ABSTRACT TRUNCATED AT 250 WORDS)

6-Ketoprostaglandin F1 alpha↗

Central serotoninergic system involvement in the anorexia induced by NG-nitro-L-arginine, an inhibitor of nitric oxide synthase.

The effects of NG-nitro-L-arginine, an inhibitor of brain nitric oxide (NO) synthase, on central serotoninergic system were studied in male obese Zucker rats and in their lean age-matched controls (FA/?; FA/FA), both groups aged 14 weeks. Acute injection of NG-nitro-L-arginine (50 mg/kg i.p.) or repeated administration of NG-nitro-L-arginine (50 mg/kg i.p. daily, for 7 days) reduced food intake and body weight in obese rats. Acute administration of NG-nitro-L-arginine reduced food intake in lean rats. However, lean rats showed tolerance to the NG-nitro-L-arginine effects after repeated administration. NG-Nitro-L-arginine administration significantly increased serotonin metabolism in the cortex, diencephalon and medulla-pons of obese Zucker rats after either acute or repeated administration of NG-nitro-L-arginine. In contrast, NG-nitro-L-arginine increased serotonin metabolism in lean rats only after acute administration, and the appearance of tolerance to NG-nitro-L-arginine anorectic effects paralleled the failure of NG-nitro-L-arginine to increase serotonin metabolism. The present data extend our previous findings indicating that NG-nitro-L-arginine possesses anorectic activity in obese Zucker rats, and clearly suggest that the central serotoninergic system mediates the anorexia induced by inhibitors of brain NO synthase.

Amino Acid Oxidoreductases↗

E-selectin in the pathogenesis of experimental myocardial ischemia-reperfusion injury.

The role of E-selectin in the pathogenesis of an experimental model of myocardial ischemia-reperfusion injury was investigated. Pentobarbital anesthetized rats underwent left main coronary artery ligation (1 h) followed by reperfusion (1 h; MI/R). Sham operated rats were used as controls (sham MI/R). Myocardial ischemia-reperfusion injury reduced survival rate (50%), caused severe myocardial damage (necrotic area/area-at-risk 69.8 +/- 5%; necrotic area/total area = 56 +/- 7.6%), increased serum creatine phosphokinase activity (sham MI/R = 33 +/- 3 U/ml; MI/R = 215 +/- 13 U/ml), and elevated myeloperoxidase activity (investigated as an index of leukocyte adhesion and accumulation; sham MI/R = 0.11 +/- 0.02 U x 10(-3)/g tissue) in the area-at-risk (7.5 +/- 1.7 U x 10(-3)/g tissue) and in the necrotic area (7.8 +/- 2.2 U x 10(-3)/g tissue). Furthermore, MI/R rats had an increased pressure rate index, studied as a quantitative means for assessing myocardial oxygen demand. Administration of a hyperimmune serum containing antibodies against E-selectin significantly improved survival rate (80%), reduced myocardial injury (necrotic area/area-at-risk = 26.4 +/- 7%, P < 0.005; necrotic area/total area 19.1 +/- 2.8%, P < 0.005), lowered serum creatine phospokinase activity (85 +/- 5 U/ml, P < 0.001) and decreased myeloperoxidase activity in the area at risk (3.7 +/- 1.3 U x 10(-3)/g tissue, P < 0.001) and in the necrotic area (3.0 +/- 0.7 U x 10(-3)/g tissue). Finally, the administration of anti E-selectin antibodies improved the PRI in MI/R rats. The present data suggest that E-selectin in vivo plays a key role in the pathogenesis of myocardial ischemia/reperfusion injury.

Animals↗

TCV-309, a novel platelet activating factor antagonist, inhibits leukocyte accumulation and protects against splanchnic artery occlusion shock.

The aim of this study was to evaluate: (1) the accumulation of leukocytes in the ileum and the lung during splanchnic artery occlusion (SAO) shock; (2) the role of platelet-activating factor (PAF) and tumor necrosis factor (TNF-alpha) in this phenomenon. Untreated anesthesized rats subjected to total occlusion of the celiac, superior and inferior mesenteric arteries for 45 min, followed by reperfusion, uniformly died within 90 min after reperfusion. The mean survival time was 93 +/- 7 min. The neutrophilic infiltrate was quantitated in the ileum and in the lung using a myeloperoxidase (MPO) assay. MPO activity in the ileum and in the lung averaged 0.05 +/- 0.03 and 0.4 +/- 0.02 U x 10(-3)/g protein in animals killed before occlusion. MPO activity did not change in rats killed immediately before reperfusion and was significantly elevated (0.11 +/- 0.02 and 1.7 +/- 0.6 U x 10(-3)/g protein in the ileum and the lung, respectively) in those killed 80 min after the beginning of the reperfusion. The histological examination confirmed the accumulation of leukocytes in the mucosa of the ileum and the lung over the 80 min. SAO shocked rats exhibited leukopenia and increased serum levels of TNF-alpha. In order to evaluate the role of PAF and TNF-alpha in SAO shock, a powerful PAF receptor antagonist, TCV-309 (5 micrograms/kg i.v.), was injected 5 min after reperfusion. TCV-309 increased survival time, lowered serum TNF-alpha, reduced MPO activity in both the ileum and the lung and ameliorated leukopenia induced by SAO shock.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Food deprivation increases brain nitric oxide synthase and depresses brain serotonin levels in rats.

We studied nitric oxide (NO) synthase activity and serotonin content in the diencephalon of 24 hr food deprived rats. NO synthase activity was significantly increased whereas serotonin levels together with those of tryptophan and 5-hydroxyindoleacetic acid (5-HIAA) were reduced in food deprived rats when compared to control rats. NG-Nitro-L-arginine (L-NO Arg), an inhibitor of NO synthase, was used as a tool to study the role of NO in food deprivation. Twenty-four hr food deprived male Sprague-Dawley rats were intraperitoneally (i.p.) administered L-NO Arg (12.5, 25 and 50 mg/kg) before food presentation. Control rats received a NaCl (0.9%) solution. Food consumption was monitored 1 and 2 hr after food presentation. L-NO Arg administration produced a dose-dependent reduction in food intake. Pretreatment with metergoline (2 mg/kg) but not with ritanserin (1 mg/kg) antagonized the anorectic effect of L-NO Arg. Moreover, in the diencephalon L-NO Arg significantly reduced NO synthase activity whereas it increased serotonin levels. Our data indicate that NO might have a physiological role in the regulation of food intake and suggest that brain NO may modulate the central serotoninergic system.

Amino Acid Oxidoreductases↗

Reduction of myocardial infarct size in rat by IRFI-048, a selective analogue of vitamin E.

The effects of IRFI-048 (2,3-dihydro-5-methoxy-4,6,7-trimethyl-2-benzofuranyl acetic acid), a selective analogue of Vitamin E, on myocardial tissue injury were examined in anaesthetized rats subjected to 60-min occlusion of the left coronary artery followed by 60-min reperfusion. Infarct size (Evan's blue and tetrazolium stain), serum creatinphosphokinase (CPK), plasma malonaldehyde (MAL), cardiac myeloperoxidase (MPO) activity, and ST-segment of electrocardiogram (ECG) and survival rate were evaluated. Postischaemic reperfusion produced severe cardiac necrosis, caused neutrophil (PMNs) infiltration (evaluated by MPO activity) in the jeopardized tissue, increased serum CPK and plasma MAL, raised ST-segment of ECG, and decreased survival rate. IRFI-048, (200 and 400 mg/kg o.s.) given to the rats 6 h before occlusion, caused a reduction of necrotic area expressed as a percentage of either the area at risk or the total left ventricle, decreased MPO activity both in the area at risk (from 3.2 +/- 0.3 U x 10(-3)/g tissue to 1.1 +/- 0.4 U x 10(-3)/g tissue; p < .005) and in the necrotic area (from 5.7 +/- 0.9 U x 10(-3)/g tissue to 1.8 +/- 0.5 U x 10(-3)/g tissue; p < .001), attenuated the rise of ST-segment of ECG (from 0.51 +/- 0.14 mV in the vehicle group to 0.28 +/- 0.11 mV in the treated group; p < .005), reduced the increase of plasma MAL and serum CPK during reperfusion (from 42 +/- 5.3 nmol/ml to 15 +/- 3.1 nmol/ml and 139 +/- 13 IU/100 ml to 58 +/- 7.5 IU/100 ml, respectively; p < .001).(ABSTRACT TRUNCATED AT 250 WORDS)

Analysis of Variance↗

Dexamethasone prevents vascular failure mediated by nitric oxide in hemorrhagic shock.

The involvement of L-arginine/nitric oxide (NO) pathway in the vascular reactivity following hypovolemic hemorrhagic shock was studied in male anesthetized Wistar rats. Aortic rings from shocked rats showed a marked hyporeactivity (p < .01) to phenylephrine (PE, 1 nM to 10 microM), whereas the responsiveness to acetylcholine (ACh, 10 nM to 10 microM) remained unaffected. The response of these rings was restored to control values by N gamma-nitro-L-arginine methyl ester (L-NAME, 10 microM). D-NAME was without effect. L-Arginine (300 microM), but not D-arginine, significantly increased the vascular hyporeactivity of aortic rings from hemorrhagic shocked rats (p < .01), while it had no effect in rings from sham shocked rats. Dexamethasone (.1, 1, or 2 mg/kg), given intravenously 2 h before bleeding, significantly (p < .01) increased survival rate and reduced the severe hypotension due to hemorrhagic shock (p < .01). Additionally, aortic rings of hemorrhagic shocked rats pretreated with dexamethasone exhibited a greater contractile response to PE when compared to aortic rings from vehicle-pretreated shocked rats (p < .01). These results suggest that dexamethasone exerts beneficial effects in hemorrhagic shock by inhibiting NO synthesis.

Acetylcholine↗

Mediation by nitric oxide formation in the preoptic area of endotoxin and tumour necrosis factor-induced inhibition of water intake in the rat.

1. Drinking was induced in rats by 24 h of water deprivation. Water intake (ml) was evaluated for a 1 h period. 2. NG-nitro-L-arginine methyl ester (L-NAME, 5-10 micrograms, i.c.v., 50-100 ng into the preoptic area (POA)), an inhibitor of nitric oxide (NO) synthase, and methylene blue (50-100 ng into POA), an inhibitor of guanylate cyclase activation, antagonized the inhibition of drinking induced by E. coli endotoxin (LPS, 640 micrograms kg-1, i.v.) and tumour necrosis factor (TNF alpha, 40 ng, i.c.v.) in 24 h water-deprived rats. 3. L-Arginine (25, 50 and 100 ng), the precursor amino acid of NO, but not the stereoisomer D-arginine (100 ng), inhibited drinking induced by water deprivation when injected into the POA 30 min before water presentation (74.4% of inhibition with the highest dose). A dose of 12.5 ng L-arginine into the POA did not exhibit antidipsogenic effects. 4. TNF alpha (20 and 40 ng, i.c.v.; 1.25, 2.5 and 5 ng into the POA) showed a dose-dependent and powerful inhibition of drinking behaviour in water-deprived rats (70.4% and 80.8%, i.c.v. and into POA, with the highest doses, respectively). A dose of 10 ng of TNF alpha given i.c.v. had no effect on the intake of water. 5. LPS and TNF alpha, given at doses (160 micrograms kg-1, i.v. and 10 ng, i.c.v., respectively) that did not influence drinking in water-deprived rats, exhibited a strong antidipsogenic effect in water-deprived rats treated with a dose of L-arginine (12.5 ng, into the POA) which did not modify drinking by itself. (LPS + L-arginine:53.6% of inhibition; TNFalpha + L-arginine: 52.0% of inhibition).6. These results suggest that NO into the POA: (1) acts as an inhibitory mechanism on thirst and (2)plays a role in the antidipsogenic effect of LPS and TNFalpha.

Animals↗

Participation of tumour necrosis factor and nitric oxide in the mediation of vascular dysfunction in splanchnic artery occlusion shock.

1. Splanchnic artery occlusion (SAO) shock is characterized by irreversible circulatory failure. Tumour necrosis factor (TNF-alpha) may affect the L-arginine/nitric oxide (NO) pathway, thus contributing to the cardiovascular derangements of circulatory shock. 2. We investigated the contribution of both TNF-alpha and the L-arginine/nitric oxide pathway to the vascular dysfunction of SAO shock. Anaesthetized rats, subjected to total occlusion of the superior mesenteric artery and the coeliac trunk for 45 min developed a severe shock state (SAO shock) resulting in a fatal outcome within 75-90 min after the release of occlusion. Sham operated animals were used as controls. SAO shocked rats had also a marked hypotension and enhanced macrophage and serum levels of TNF-alpha. Furthermore, aortic rings from shocked rats showed a marked hyporeactivity to phenylephrine (PE 1 nM-10 microM) and reduced responsiveness to acetylcholine (ACh 10 nM-10 microM). Endothelium-denuded aortic rings had also a marked hyporeactivity to phenylephrine, which was restored to control values by in vitro administration of NG nitro-L-arginine-methyl ester (L-NAME 10 microM). 3. In vivo administration of cloricromene (2 mg kg-1, i.v.), an inhibitor of TNF-alpha biosynthesis, increased survival, enhanced mean arterial blood pressure and reduced macrophage and serum levels of TNF-alpha. Furthermore, aortic rings from shocked rats treated with cloricromene exhibited a greater contractile response to phenylephrine and improved responsiveness to ACh when compared to aortic rings from vehicle-treated SAO shocked rats. 4. Our results suggest that TNF-alpha alters both endothelial and muscular L-arginine/nitric oxide pathways which in turn produce vascular dysfunction in SAO shock.

Acetylcholine↗

Role of tumor necrosis factor-alpha in acute hypovolemic hemorrhagic shock in rats.

Hemorrhagic shock was induced in male anesthetized rats by intermittently withdrawing blood from an iliac catheter until mean arterial blood pressure (MAP) fell and stabilized within the range of 20-30 mmHg. Survival rate, MAP, and serum and macrophage levels of tumor necrosis factor-alpha (TNF-alpha) were then evaluated. Furthermore, in ex vivo studies, the responsiveness to phenylephrine (PE; 1 nM to 10 microM) was investigated in aortic rings from hemorrhagic shocked rats. Antibodies raised against TNF-alpha (anti-TNF-alpha; 2 mg/kg) or vehicle (phosphate-buffered saline, 1 ml/kg) were injected intravenously 3 h before the bleeding. Vehicle-treated rats, subjected to hemorrhagic shock, exhibited acute and serious hypotension (MAP = 20-30 mmHg) and high levels of serum (790 +/- 47 pg/ml) and macrophage (78 +/- 9 pg/ml) TNF-alpha and died within 30 min. Moreover, aortas from shocked rats showed a marked hypocontractility to PE compared with the reactivity of aortas from a group of sham shocked rats. Anti-TNF-alpha administration significantly improved survival rate and MAP in hypovolemic shocked rats. Furthermore, the hyporesponsiveness to PE was significantly restored in aortic rings. Therefore, these data suggest that TNF-alpha is an important mediator in the pathophysiology of hypovolemic hemorrhagic shock and it might be responsible, at least in part, for the vascular hyporeactivity of this experimental circulatory shock.

Acute Disease↗

Protective effects of IRFI-016, a new antioxidant agent, in myocardial damage, following coronary artery occlusion and reperfusion in the rat.

The new free radical scavenger IRFI-016 [2(2,3-dihydro-5-acetoxy 4,6,7-trimethyl-benzofuranyl) acetic acid] was assessed in a rat model of myocardial injury induced by 1 h of left coronary artery occlusion followed by 30 min of reperfusion. Myocardial ischaemia plus reperfusion (MI/R) produced severe cardiac necrosis, neutrophil infiltration in the jeopardized tissue, increased serum creatine kinase (CK) and ST segment of the electrocardiogram (ECG), lowered the pressure rate index (PRI), increased serum levels of tumour necrosis factor (TNF-alpha) and caused a decrease in the survival rate. Administration of IRFI-016 (100 and 200 mg/kg i.p.) 30 min before occlusion resulted in a significant protective effect in post-ischaemic reperfusion. Compared with untreated rats, IRFI-016, in particular the dose of 200 mg/kg, caused a reduction of the necrotic zone whether the necrotic area was expressed as a percentage of the area at risk (55 +/- 4% in the MI/R vehicle group and 24 +/- 2.5% in the MI/R treated group; p < 0.001) or as a percentage of the total left ventricle (23 +/- 3.4% in the MI/R vehicle group and 8 +/- 2.1% in the MI/R treated group; p < 0.005), reduced the myeloperoxidase activity, an index of neutrophil infiltration in the necrotic area (from 4.8 +/- 0.8 to 1.6 +/- 0.4 U/g tissue; p < 0.005), reduced the serum levels of TNF-alpha (from 216 +/- 13 to 45 +/- 7 U/ml; p < 0.001), blunted the rise of the ST segment of the ECG (from 0.47 +/- 0.13 mV in the vehicle group to 0.3 +/- 0.18 mV in the treated group; p < 0.001), reduced the loss of CK (from 220 +/- 15 to 88 +/- 13 IU/ml of blood; p < 0.001) and improved the depressed PRI (from 56 +/- 4% to 78 +/- 3% mm Hg/beats/min; p < 0.005). Finally, IRFI-016 significantly enhanced the survival rate evaluated at the end of the experiment. The results strongly indicate that IRFI-016 is a promising drug for cardiac ischaemia and reperfusion.

Animals↗