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Biomedical subjects

D Gattullo

Publications and source records attributed to D Gattullo.

At least 37 records · Page 2Linked to original sources

The role of nitric oxide in the initiation and in the duration of some vasodilator responses in the coronary circulation.

In the coronary bed vasodilation can be mediated by several mechanisms including endothelium-produced nitric oxide. To examine the contribution of nitric oxide, three different techniques to cause vasodilation in the coronary vessels were used in the anaesthetized dog: intracoronary injection of 1 microgram acetylcholine, sudden reduction of the aortic blood pressure inducing a myogenic response and transient occlusion followed by release of the left circumflex coronary artery causing reactive hyperaemia. Each manoeuvre was performed before and after intracoronary administration of 100 mg N-nitro-L-arginine, an inhibitor of the synthesis of nitric oxide. In contrast to previous investigations, the inhibition of nitric oxide synthesis was prevented from causing an increase in blood pressure by the use of a blood-pressure-compensating device. The results observed during each of the three techniques, suggest that the initial cause of the vasodilatation is not the result of the increase of the production of nitric oxide. However, subsequent to the initiation of vasodilation, an increase in the shear stress can result in an increase in the release of nitric oxide from the vascular endothelium, thus prolonging the vasodilatation obtained using each technique.

Acetylcholine↗

Properties of the myocardium affecting the coronary circulation.

The mean coronary blood flow increases in response to an increase in myocardial oxygen consumption. Conversely, an increase in coronary perfusion is itself reported to induce an increase in myocardial oxygen consumption. Such an effect can be explained by stretching of the myocardial fibers surrounding the vessels, which become more distended with an increase in perfusion. The flow in the left descending and circumflex coronary arteries is reduced in systole because of the compression exerted by the contracting myocardium on the intramyocardial vessels. Due to the thinner wall of the right ventricle, this reduction is not obvious in the right coronary artery. The intramyocardial pump model provides a satisfactory explanation of the mechanism by which contraction reduces the flow. It also explains the attenuation of the diastolic-systolic oscillations of flow which occurs in the presence of a stenosis of a large epicardial artery. The varying elastance model shows the dependence of the extent of the reduction of the flow in systole on myocardial contractile force rather than on the pressure developed in the ventricle by the contraction. However, although the ventricular systolic pressure does not affect the flow in hearts with a relatively thick wall, it contributes to the systolic reduction of flow in hearts with a relatively thin wall. Owing to a mechanism involving the coronary capacitance, contraction is also responsible for the level of coronary flow in diastole.

Animals↗

The effect of the inhibition of the endothelial release of nitric oxide on coronary reactive hyperaemia in the anaesthetized dog.

The effect of the inhibition of the endothelial release of nitric oxide (NO) on the hyperaemia which follows a 10 s coronary occlusion was studied in anaesthetized dogs. Aortic blood pressure was kept constant during the experiments using an arterial reservoir connected with the femoral arteries. The blood flow in the left circumflex coronary artery was recorded with an electromagnetic flow probe. A 10 s coronary occlusion was performed before and after intracoronary infusion of Nitro-L-arginine (LNNA), at the dose of 100 mg in 20 min. The effect of LNNA in preventing the release of NO by the endothelium was demonstrated by the reduced coronary hyperaemia which follows the intracoronary infusion of acetylcholine. After LNNA the baseline coronary flow was not altered. Following the release of the coronary occlusion the peak amplitude of the reactive hyperaemia was not significantly changed, while the duration was reduced to almost a half of the control. The results suggest that in the intact dog NO is not important in the regulation of the baseline coronary vasomotor tone. It may also be argued that the peak amplitude of the hyperaemia is not significantly affected by LNNA either because the inhibition of the release of nitric oxide is counteracted by a greater production of adenosine, or because a mechanism not affected by nitric oxide (e.g. a myogenic mechanism) is involved in the reactive hyperaemia. In contrast the reduction of the duration of the hyperaemia after the inhibitor may depend on a reduced effect of the shear stress of the blood on the endothelium during the reactive hyperaemia.

Animals↗

Control of coronary blood flow by endothelial release of nitric oxide.

1. Nitric oxide (NO) is released from vascular endothelium following conversion of L-arginine to L-citrulline by calcium-calmodulin-dependent 'constitutive' NO-synthase. 2. Nitric oxide release occurs under basal conditions, in response to chemical stimuli (acetylcholine, bradykinin, thrombin, prostacyclin, serotonin, etc.) and in response to changes in shear stress (effects of blood velocity on vascular endothelium). 3. Analogues of L-arginine inhibit NO and are widely used to study the effects of NO on the cardiovascular system: in intact animals, these inhibitors cause vasoconstriction, leading to an increase in arterial blood pressure (ABP) and bradycardia. 4. Bradycardia induced by NO inhibitors is due, in part, to baroreceptor activity following the increase in ABP and in part to a direct effect on the sino-atrial node. 5. In the intact animals and isolated perfused heart, NO inhibitors cause coronary vasoconstriction and hence a reduction in basal coronary flow. This effect, however, is not seen in isolated coronary vessels. 6. From experiments in which ABP did not change, NO does not appear to have an important role in regulating coronary vasomotor tone under basal conditions. 7. Nitric oxide appears to be involved in the duration of reactive hyperaemia following coronary vascular occlusion but is not involved to any significant extent in the peak amplitude of hyperaemia. 8. Responses to vasodilator stimuli which do not involve NO in the initiation of the vasodilation may be prolonged by the effect of increased blood flow (shear stress) which releases NO and potentiates hyperaemia.

Animals↗

Increases in coronary intravascular pressure during maximal coronary vasodilatation in the anaesthetized dog.

The present study was planned to investigate whether or not, after complete suppression of vasomotor tone, increases in intravascular blood pressure distend the coronary vasculature causing passive decreases in the resistance to the coronary arterial inflow during the diastole. In anaesthetized dogs, aortic and left ventricular pressures and flow in the left circumflex coronary artery were recorded. Coronary flow was derived using an electromagnetic flowmeter. Transient (10 s) increases in intravascular blood pressure in a range above 70 mm Hg were produced by mechanical constriction of the descending thoracic aorta. In the presence of a normal vasomotor tone the increase in blood pressure caused an autoregulatory increase in the mean diastolic coronary inflow resistance. After maximal vasodilatation by dipyridamole, no change in inflow resistance was induced by the increase in intravascular blood pressure. It may be argued that while a non-maximal vasodilatation is reported to increase coronary distensibility, at a blood pressure of 70 mm Hg the complete suppression of the vasomotor tone brings the vascular radius to a size which cannot be further distended by an increase in blood pressure.

Animals↗

The effect of pure right ventricular ischemia on right and left ventricular performance in the anesthetized dog.

This study was planned to investigate the effect of ischemic dysfunction of the free wall of the right ventricle on right and left ventricular performance in the presence of a normally contracting interventricular septum. The experiments were performed in 6 anesthetized dogs in which echocardiogram, electrocardiogram, aortic blood pressure and left and right ventricular pressure were recorded. In the dog, the contractility of the septum is not affected by the occlusion of the right coronary artery which does not perfuse this part of the myocardium. Complete occlusion of the major individual ventricular branches and partial occlusion of the main right coronary artery did not impair right ventricular performance. Only complete occlusion of the main artery affected right and left ventricular function as revealed by echocardiogram. Reduced output by the ischemic right ventricle caused a reduction in left ventricular diastolic and systolic dimensions and in left ventricular developed pressure without any effect on left ventricular end-diastolic pressure.

Animals↗

"Resistance" to left ventricular outflow studied in anesthetized dogs.

A simple method is proposed to determine resistance to left ventricular output from the evaluation of a parameter Z, given by the ratio of peak systolic pressure and the corresponding instantaneous blood flow. The method, derived from the basic equation of the Windkessel model, is applied to analyze pressure and flow data measured in the ascending aorta of anesthetized dogs. The Z values obtained in this way are found to be closely related to resistance calculated from the ratio of mean aortic pressure and mean flow over the cardiac cycle. Effects of abrupt changes of resistance obtained by removing an aortic constriction are also analyzed according to the same basic Windkessel equation and the results show the same close relationship to resistance.

Animals↗

[The effect of maximal vasodilation on the distensibility of the coronary vascular bed].

This study aimed at investigating the changes in coronary vascular resistance induced by sudden increases in transmural pressure in the presence of a maximally vasodilated coronary bed. In anaesthetized open-chest dogs under artificial ventilation, aortic blood pressure, left ventricular pressure and the flow in the left circumflex coronary artery were recorded. The flow was derived by means of an electromagnetic flowmeter. Maximal vasodilatation was achieved by intracoronary infusion of dipyridamole (10-40 mg/h), increases in transmural pressure, starting from 70 mmHg, were obtained by constricting for 10 s the descending thoracic aorta with a plastic snare. While in the absence of vasodilatation the increase in pressure was accompanied with an increase in resistance because of an auto-regulatory response, when the coronary bed was maximally dilated the increase in pressure did not alter the coronary vascular resistance. These results seem to be in conflict with the observation that in the coronary circulation the distension of the vascular wall produced by increases in pressure is favoured by the reduction of the vasomotor tone. However, it may be argued that, while a reduction of the vasomotor tone can increase the vascular distensibility, a maximal vasodilatation, as it was seen in the resistance vessels of the skeletal muscles, brings the vascular diameter to such a size that no further distension can be induced when the transmural pressure is increased starting from a value of about 70 mmHg.

Animals↗

Coronary flow and left ventricular pressure during diastole in the anaesthetized dog.

There is controversy about the effect of left ventricular pressure on resistance of the intramyocardial coronary vessels. In anaesthetized dogs the effect of left ventricular pressure on coronary flow during diastole was studied using an extracorporeal circulation and allowing the heart to contract and relax isovolumically. At constant coronary perfusion pressure of about 45 mmHg with maximal coronary vasodilatation, produced by dipyridamole, increases in diastolic left ventricular pressure to 22 mmHg, producing a volume of 50 ml, did not affect diastolic coronary flow. It is suggested that in the intact animal over the physiological range of left ventricular diastolic pressure the resistance in the coronary vessels is not affected.

Anesthesia↗

The mechanical and electrical effects of rhinoceros viper (Bitis nasicornis) venom on the isolated perfused guinea pig heart and atrial preparations.

The mechanical and electrical effects of the venom of Bitis nasicornis were studied on the guinea-pig Langendorff and left atrial myocardium preparations. While Langendorff preparations were treated with individual doses of 0.1, 0.6 and 1.4 mg, isolated left atria were treated using concentrations of 2.0, 20 and 200 micrograms/ml of venom in the perfusion solution. In the Langendorff preparation, transient increases in left ventricular systolic pressure (LVSP) and heart rate (HR) were seen after 0.1 mg of venom. When 0.6 mg of venom was given, the increases were followed by decreases, while 1.4 mg doses simply induced decreases in LVSP and HR. After both 0.6 and 1.4 mg doses the decreases were accompanied by increases in left ventricular diastolic pressure. In addition to these mechanical effects, transient increases in HR with atrio-ventricular blocks, ventricular extrasystoles and tachycardia were observed after each dose. In the left atrium the 2 micrograms/ml venom concentration produced an increase, followed by a decrease, in the maximum tension developed, which was only seen to decrease with higher concentrations of 20 and 200 micrograms/ml of venom. A dose dependent significant reduction in the action potential duration was observed for the doses of 0.6 and 1.4 mg in the ventricle and for all three concentrations in the atrium.

Action Potentials↗

Acidotic effect of gaboon viper (Bitis gabonica) venom in the urethane-anaesthetized rat.

1. Intravenous venom (4 mg/kg) caused a non-compensated metabolic acidosis. 2. Bicarbonate concentration, base excess, standard base excess and pH all fell dramatically. 3. A respiratory impairment occurred characterized by pulmonary oedema and a fall in arterial pO2. 4. Acidosis occurred soon after venom when pO2 was still normal, indicating that changes in tissue metabolism contributed to the acidosis independently of reduced oxygen availability.

Acid-Base Equilibrium↗

The haemodynamic effect of Bitis nasicornis (rhinoceros horned viper) venom.

1. Intravenous venom (0.0625 mg/kg) in the dog caused an immediate increase in coronary blood flow due to a fall in coronary vascular resistance (CVR). 2. Subsequently, total peripheral resistance (TPR) fell causing a significant reduction in aortic blood pressure (ABP). 3. CVR and TPR returned to normal after 20 min but ABP did not recover completely. 4. The failure of ABP to recover was due to decreased stroke volume and cardiac output (CO). 5. Animals died after four doubling doses of venom following irreversible reductions in CO, ABP and coronary flow.

Animals↗

The mechanical effects of rhinoceros horned viper (Bitis nasicornis) venom on the isolated perfused guinea-pig heart.

In the guinea-pig Langendorff heart preparation, addition of 0.1 mg Bitis nasicornis venom to the perfusion solution caused transient increases in heart rate (HR) and left ventricular systolic pressure (LVSP) with peak increases at 2 min. With higher doses (0.6 and 1.4 mg), these increases were followed by the return of HR to normal, significant decreases in LVSP below control values and marked increases in left ventricular diastolic pressure. Histaminergic blockade with ranitidine reduced the positive responses. The results suggest that a venom component, possibly acting on intracellular calcium movement, could be responsible for both positive and negative effects.

Animals↗

Coronary response to transient increases in transmural pressure.

Previous studies have shown that transient increases in aortic blood pressure obtained by occlusion of the descending thoracic aorta, in anesthetized dogs with beta-blockade and vagal section, did not affect coronary vascular resistance apart from a non-significant increase just after release of the constriction. The present study examined whether this response also occurred in the normally innervated heart. Experiments were carried out in six anesthetized dogs, in which pressure in the aortic root and in the left ventricle, as well as flow in the left circumflex coronary artery, were recorded. Coronary vascular resistance was calculated as the ratio of the difference between aortic pressure and left ventricular pressure to coronary circumflex flow during the slow inflow phase. Before occlusion coronary vascular resistance was significantly lower than during the same period in the previous studies using animals with beta-blockade and vagal section. During the occlusion, in contrast with the previous investigation, the increase in aortic pressure caused a significant increase in coronary vascular resistance 10 seconds after the beginning of the occlusion. Coronary vascular resistance was further increased immediately after release of the occlusion, concomitantly with the decrease in aortic pressure, which fell abruptly below the control level. The increase immediately after the release of the constriction was qualitatively similar, but greater in extent, to that observed in the animals with vagal section and beta-blockade. These differences are assumed to depend on a lower vasomotor tone in the normally innervated hearts.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Coronary myogenic responses to abrupt changes in aortic blood pressure in anaesthetized dogs.

A transient increase in coronary transmural pressure was produced in anaesthetized dogs by occlusion of the descending thoracic aorta. Aortic blood pressure (ABP), left ventricular pressure and coronary flow were measured; coronary vascular resistance (CVR) was calculated. Results were similar in innervated and denervated hearts. Occlusion for 10 and 20 s resulted in no change in CVR for 15 s, followed by a metabolic dilatation attributable to enhanced oxygen demand; after release the fall in ABP resulted in an immediate increase in CVR, caused by vascular elastic recoil, followed by hyperaemia.

Anesthesia↗

Acid-base, plasma lactate and glucose changes in the rabbit following administration of Gaboon viper (Bitis gabonica) venom.

The acid-base and metabolic effects of Bitis gabonica venom administered intravenously to the anaesthetised rabbit were studied. Doubling doses of venom from 0.125 mg/kg to 1.0 mg/kg were used. Venom caused progressive and significant increases in plasma glucose and plasma lactate levels although oxygen consumption only became significantly lower after the fourth dose. Standard base excess (SBE) became significantly more negative after the third dose of venom and the fall in pH became significant at the same point. The results indicate that venom induces a metabolic acidosis in the rabbit and because the acidosis occurs in the absence of any fall in arterial PO2, it cannot be considered a consequence of impaired pulmonary ventilation. The reduction in oxygen uptake is likely to occur at a cellular level with a shift from aerobic to anaerobic metabolism hence the increase in plasma lactate levels. However, the magnitude of the acidosis is unlikely to be the principal cause of death under experimental conditions.

Acid-Base Equilibrium↗

Mesangiolysis and endothelial lesions due to peroxidative damage in rabbits.

There is much evidence that oxygen free radicals (OFR) may be the final mediators of biochemical and molecular damage in many kidney diseases of different etiology (toxic, ischemic and immunologically mediated), involving mainly endothelium, basement membrane and tubular cells, but direct demonstration of a role in inducing mesangiolysis is lacking. An experimental model of renal damage caused by OFR was carried out in 6 rabbits using a mixture of xanthine-oxidase and xanthine, which produces a large amount of the radical superoxide anion. Both enzyme (0.0150 and 0.150 U/ml) and substrate (0.2 and 2 mM) were simultaneously infused in one kidney, while the controlateral kidneys perfused with buffer only were used as controls. Treated kidneys were compared to controls by light and electron microscopy. A further experiment was carried out in 4 other rabbits to evaluate the protection afforded by superoxide dismutase, the specific enzyme-scavenging superoxide anion. Microscopic studies showed dose-related ingravescent damage in the treated kidneys: capillary enlargement, subendothelial swelling, detachment of the endothelium from the basement membrane, mesangiolysis and microaneurysms. Control kidneys appeared to be normal. No significant differences were observed in the kidneys treated with addition of superoxide dismutase. These results are the first direct demonstration of a role of superoxide anion in the induction of mesangiolysis in rabbits. The lack of a protective effect by superoxide dismutase could mean that the superoxide anion triggers a chain of other OFR, further responsible for damage.

Animals↗