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Platelet-activating factor--a powerful lipid autacoid possibly involved in microangiopathy.

Microvascular injury includes diffuse endothelial and periendothelial damage and increased leukocyte/platelet-endothelium interactions including cell adhesion and liberation of powerful autacoids, growth and coagulation factors, all capable of causing vessel wall injury. Platelet-activating factor (PAF) is an ether-lipid mediator of inflammation, produced by and active on both platelets and endothelial cells (EC) at nanomolar concentrations. Its structure, biosynthesis and origin as well as some regulatory properties of the related enzymes are considered. The in vivo effects of PAF, as well as its action on selected cell types, such as platelets, neutrophils and EC, are briefly reviewed. PAF production may explain the intervention of platelets and neutrophils as well as increased vascular permeability in kidney, lung and retinal diseases. Pharmacological modulation of PAF production and activity is discussed with particular attention to the inhibitory effect of calcium dobesilate, a drug used in human diabetic retinopathy, on PAF production from the human endothelial cell line EA926.

Animals↗

Modulation of the release of SRS-A from bovine lung in vitro by several autonomic and autacoid agents.

The immunological release of slow-reacting substance of anaphylaxis (SRS-A) from bovine lung is modulated by several autonomic and autacoid agents. Isoproterenol, a beta-adrenergic agonist, inhibited release of SRS-A, as did cyclic AMP. Phenylephrine also inhibited SRS-A release but through alpha-adrenergic mechanisms. This is in contrast to observations in human lung. Carbachol enhanced the release of bovine SRS-A. Histamine inhibited SRS-A release through the H2-receptor. Dopamine enhanced the release of SRS-A by means of a dopaminergic receptor. 5-HT did not significantly modulate SRS-A release.

Animals↗

Ramiprilat enhances endothelial autacoid formation by inhibiting breakdown of endothelium-derived bradykinin.

We studied whether inhibition of angiotensin converting enzyme stimulates the formation of nitric oxide and prostacyclin in cultured human and bovine endothelial cells by an enhanced accumulation of endothelium-derived bradykinin. Nitric oxide formation was assessed in terms of intracellular cyclic GMP accumulation, prostacyclin release by a specific radioimmunoassay. Inhibition of angiotensin converting enzyme by ramiprilat dose- and time-dependently increased the formation of nitric oxide and prostacyclin. These increases, peaking within 10 minutes, were maintained for at least 60 minutes. The ramiprilat-induced cyclic GMP increase was completely abolished by the stereospecific inhibitor of nitric oxide synthase, NG-nitro-L-arginine. The B2-kinin receptor antagonist, Hoe 140 (0.1 microM), markedly attenuated the cyclic GMP accumulation and abolished the increase in prostacyclin release. The supernatant of endothelial cells, incubated with ramiprilat (0.3 microM) for 15 minutes, elicited a significant nitric oxide release (as assessed by a guanylyl cyclase assay) in untreated endothelial cells used as detector tissue. Preincubation of the detector cells with Hoe 140 completely abolished this nitric oxide release. These data indicate that cultured endothelial cells from different species are capable of producing and releasing bradykinin into the extracellular space in amounts that lead to a sustained stimulation of nitric oxide and prostacyclin formation, provided that bradykinin degradation is prevented by angiotensin converting enzyme inhibition. Thus, the protective effect of angiotensin converting enzyme inhibitors observed on endothelial vasomotor function in hypertension may be explained by the local accumulation of endothelium-derived bradykinin that acts in an autocrine and paracrine manner as potent stimulus for endothelial autacoid formation.

Angiotensin-Converting Enzyme Inhibitors↗

Hyperresponsiveness to autacoids and autonomic drugs in lung parenchymal strips from sensitized guinea pigs.

The responsiveness of lung parenchymal strips isolated from actively sensitized guinea pigs to some selected autacoids (histamine, 5-hydroxytryptamine, bradykinin, and prostaglandins F2 alpha and l2) and autonomic drugs (acetylcholine, norepinephrine, methoxamine, and isoprenaline) was compared with that of strips from unsensitized animals. The concentration-response curves to the agonists, with the only exception of isoprenaline, in the sensitized group exhibited a left upward displacement (greater maximal effects and less effective concentration 50%) compared with those obtained in the unsensitized group. These results indicate the existence of a nonspecific increase in responsiveness of lung parenchymal strip isolated from sensitized animals.

Acetylcholine↗

Reactive oxygen species as glomerular autacoids.

There is considerable evidence suggesting that reactive oxygen species (ROS; superoxide anion, hydrogen peroxide, hydroxyl radical, hypochlorous acid) are implicated in the pathogenesis of toxic, ischemic, and immunologically mediated glomerular injury. The capacity of glomerular cells, especially mesangial cells, to generate ROS in response to several stimuli suggests that these autacoids may play a role in models of glomerular injury that are independent of infiltrating polymorphonuclear leukocytes and monocytes. The mechanisms whereby ROS formation results in morphologic lesions and in modifications of glomerular permeability, blood flow, and filtration rate have been inferred from in vitro studies. They involve direct and indirect injury to resident cells (mesangiolysis) and glomerular basement membrane (in concert with metalloproteases) and alteration of both the release and binding of vasoactive substances, such as bioactive lipids (e.g., prostaglandin E2, prostacyclin, thromboxane), cytokines (e.g., tumor necrosis factor alpha), and possibly endothelium-derived relaxing factor. The importance of such processes appears to be modulated by the intrinsic antioxidant defenses of the glomeruli. Further studies are needed to address the role of ROS in human glomerular diseases.

Animals↗

Stimulation of endothelial autacoid formation by inhibitors of angiotensin-converting enzyme.

We have investigated in human endothelial cells in culture the effects of angiotensin-converting enzyme (ACE) inhibitors on the concentration of intracellular free Ca2+ ([Ca2+]i) and the formation of nitric oxide (NO) and prostacyclin (PGI2). Enalaprilat, moexiprilat and ramiprilat similarly potentiated the increase in [Ca2+]i elicited by bradykinin and caused an increase in resting [Ca2+]i when given alone. The latter effect was long-lasting and accompanied by an increased formation of NO and PGI2. All of these effects were inhibited by the B2-kinin receptor antagonist Hoe 140, suggesting that the endogenous synthesis/release of bradykinin represents an autocrine mechanism for the stimulation of endothelial autacoid formation. Thus these findings strongly support the concept that ACE inhibitors promote local vasodilation by increasing the level of bradykinin generated in subthreshold concentrations by the endothelium.

1-Methyl-3-isobutylxanthine↗

Neuroendocrine involvements of the prostaglandin autacoids.

The eicosanoids are a system of lipid autacoids that are considered to play a role in the modulation of central nervous system (CNS) functions. This modulating effect seems to have three components: a) modulation of neuronal function and especially involvements in biological signal transduction at the level of the neuronal membrane: b) modulation of neurotransmitter release at synaptic level; c) modulation of the response amplitude of some CNS centers and areas to various stimuli, with implications in animal and human behaviour. Personal data show that cyclooxygenase inhibitors lower the seizure threshold and amplify the tonic aspect of the electric shock-induced seizure, while imidazole (thromboxane synthetase inhibitor) has no influence on the duration of seizures and seizure-free intervals, but makes the seizures have a clonic rather than tonic aspect.

Animals↗

Autacoid properties of lysophosphatidylserine.

The hypothesis of this study is summarized in Fig. 6. Phosphatidylserine due to distribution in the internal side of plasma membrane is prevented to react with the extracellular environment. When injury to cell occurs, phospholipid asymmetry is lost and the exposed phosphatidylserine becomes a signal of cell damage. Phosphatidylserine may activate defense reactions while it is still anchored to plasma membrane (Zwaal, 1978; Tanaka and Schroit, 1983). Alternatively, the soluble lysophosphatidylserine is generated, ready to diffuse and transmit the information of tissue damage to other cells. In this sequence of events, lysophosphatidylserine becomes an autacoid, originated from a membrane phospholipid. In rodents, lysophosphatidylserine seems specifically devoted to activate mast cells. The role of these cells in the regulation of the immune reactions and in tissue repair has been advocated (Dexter et al., 1981). The lysophosphatidylserine-induced mast cell activation has been shown in vivo and in vitro in a variety of rodent species (mouse, rat, gerbil, hamster). It may occur through a direct effect or through the participation of synergistic endogenous compounds. Structure-activity relationships in the action of lysophosphatidylserine show that the effect on mast cells is linked to a definite molecular organization. Determinants of the mast cell activation are the free amino group and the carboxyl group of the serine. Support to the general hypothesis of this study originates from the observation that active lysophosphatidylserine is generated within a population of leukocytes, the cells migrating in areas of wounded tissue (Mietto et al., 1987). Production of lysophosphatidylserine can be anticipated in pathological situations associated with extensive cell death (tumor growth, graft rejection, burns). At present, the observations on lysophosphatidylserine are confined to rodent mast cells. Other histamine-secreting cells (e.g., the human basophil) are unresponsive to this phospholipid (Kolster et al., 1987). Among the endogenous compounds interacting with lysophosphatidylserine, nerve growth factor seems of particular interest (Bruni et al., 1982). The synergism with lysophosphatidylserine has been confirmed in other laboratories (Sugiyama et al., 1985; Pearce and Thompson, 1986; Mazurek et al., 1986). The concerted effects by these two compounds on mast cells is in line with current opinion on the participation of nerve growth factor in the regulation of inflammatory and immune reactions (Mietto et al., 1987; Weskamp and Otten, 1987).(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Autacoid and autonomic reactivity of bovine and ovine bronchus: modifications by antigenic sensitization.

Spirally cut bronchial strips, prepared from three bovine (horse plasma-sensitized calves, control calves and adult cattle) and two ovine (horse plasma-sensitized and control sheep) animal groups were studied in isolated organ baths and their responses to standard autacoid and autonomic agents were compared. All bovine preparations contracted to carbachol greater than 5 HT greater than histamine and relaxed to isoproterenol greater than adrenaline greater than phenylephrine. Responses of ovine bronchus to the above agonists were similar to bovine except to histamine which caused relaxations. Atropine antagonized carbachol-induced contractions while the relaxant responses of bronchial strips to isoproterenol and adrenaline were inhibited by propranolol in both ruminant species. Contractile effects of histamine were sensitive to mepyramine whereas cimetidine inhibited histamine-induced relaxations of ovine bronchus. The bronchial strips prepared from horse plasma-sensitized calves and sheep exhibited a significant (p less than .05) hyperreactivity to carbachol. The relaxant responses of sensitized calf bronchus to isoproterenol and adrenaline were also significantly (p less than .05) impaired when compared with respective controls. It is concluded that hypersensitization with foreign antigens might exaggerate the airway reactivity by rendering them hyperreactive to spasmogenic and hyporeactive to spasmolytic stimulation.

Animals↗

[Neurohumoral, autacoid and transductional mechanisms in the cardiovascular effects of vanadate: histochemical correlations].

Rabbits given 1 ppm of vanadate in drinking water for twelve months showed (a) increased plasma levels of catecholamines (b) reduction of the arterial concentration of nitric oxide (c) lower activity of urine kallikrein and higher activities of urine kininases I and II and enkephalinase (d) reduced cardiac inotropism and augmented total peripheral resistance, with unchanged blood pressure levels (e) accumulation of the metal in the aorta and cardiac ventricles. Monoaminooxidase and glucose-6-phosphate dehydrogenase activities were increased by vanadate in both kidney and liver and that of NADH-diaphorase in the kidney, in which NADPH-diaphorase activity was reduced. Some of the above results were also obtained in rats given 10 and 40 ppm of vanadate in drinking water for six-seven months; these animals showed arterial hypertension and reduced activity of Na, K-ATPase in the kidney. Vanadium appears to act on the cardiovascular function through selective neurohumoral, autacoidal and transductional mechanisms only in part depending on the species.

Animals↗

Autacoid and beta-adrenergic agonist modulation of N-formylmethionyl-leucyl-phenylalanine evoked lysosomal enzyme release from human neutrophils.

Isoprenaline, histamine and PGE1 inhibit N-formylmethionyl-leucyl-phenylalanine evoked lysosomal enzyme release from human neutrophils. Their effects are dose-dependent and potentiated by 3-isobutyl-1-methylxanthine pretreatment of the cells. The order of activity is PGE1 greater than isoprenaline greater than histamine. The maximum of inhibition afforded by each agonist depends on the amount of the secretory stimulus, since it is higher at lower concentrations of the secretagogue. Isoprenaline effects are competitively antagonized by propranolol and are mimicked by fenoterol and salbutamol. These results suggest that human neutrophil functions are modulated by endogenous control mechanisms, that can also be activated by drugs acting on the same receptors as the endogenous mediators.

1-Methyl-3-isobutylxanthine↗

Autacoid and anaphylactic reactivity of pulmonary and hepatic smooth musculature of the cat.

Histamine, 2-methylhistamine (2-MeH: a relatively specific H1 receptor agonist), 5-HT, carbachol, bradykinin (BK) and PGF2alpha contract isolated cat pulmonary vein, artery and hepatic vein. PGE1, PGF2alpha and 4-methylhistamine (4-MeH: a relatively specific H2-receptor agonist) contract pulmonary arterial strips but further increase in the dose of PGE1 produces relaxation. Isoproterenol relaxes partially contracted blood vessels at low doses, but contracts at high doses. Cat trachea contracts to 5-HT, acetylcholine and carbachol but is insensitive to histamine, its analogues, BK and PGF2alpha. However, partially contracted trachea relaxes to histamine, 4-MeH, 2-MeH, isoprenaline, BK, PGE1, E2 and F2alpha. PGF2alpha and SRS-A contract cat bronchus. Isoprenaline, PGE1 and E2 relax cat bronchus contracted to carbachol, 5-HT, PGF2alpha, SRS-A and antigen. The in vitro anaphylactic contraction (Schultz-Dale reaction) of isolated pulmonary and hepatic veins, bronchus and trachea from horse plasma sensitized cat suggested the involvement of lung and liver in anaphylaxis of the cat.

Anaphylaxis↗

Vascular smooth muscle responses to endothelial autacoids in rats with chronic coarctation hypertension.

OBJECTIVE: To examine whether elevated intravascular pressure in chronic hypertension alters responses of vascular smooth muscle to agents of endothelial origin. METHODS: Coarctation hypertensive, sham normotensive control, and one-kidney, one clip hypertensive (1K1C) rats were used. Tail systolic, carotid and femoral arterial pressures were measured. Responses to histamine, endothelin-1 and the prostacyclin analog iloprost were evaluated in isolated helically cut strips of thoracic and abdominal aortas, with and without endothelium, from all groups. Responses to nitroglycerin were also evaluated in strips of abdominal aortas. RESULTS: Thoracic aortas from 1K1C and coarctation hypertensive rats, as well as abdominal aortas from 1K1C rats, but not abdominal aortas from coarctation hypertensive rats were exposed chronically to elevated arterial pressure. Endothelium-dependent maximal relaxation by histamine was significantly depressed in thoracic aortas from both groups of rats, as well as in abdominal aortas from 1K1C rats. Maximal relaxation and sensitivity to histamine were normal in abdominal aortas from coarctation hypertensive rats. Sensitivity to nitroglycerin was impaired in abdominal aortas from 1K1C rats but not in those from coarctation hypertensive rats; maximal relaxation to nitroglycerin was similar in all groups. Relaxation to iloprost was independent of the endothelium, observed only in thoracic aortas and impaired in hypertensive rats. Responses to endothelin-1 were similar in the groups. CONCLUSION: Vasorelaxation by histamine, iloprost and nitroglycerin are impaired in hypertension. The impaired relaxation by histamine results from exposure of the vascular endothelium to chronically elevated pressure. This impairment may be related to effects of high pressure in reducing the ability of the endothelium to produce endothelium-derived relaxing factor and inhibit cyclic GMP-dilator mechanisms.

Acetylcholine↗