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Biomedical subjects

V Kékesi

Publications and source records attributed to V Kékesi.

At least 19 recordsLinked to original sources

Biochemical alterations in cerebrospinal fluid during thoracoabdominal aortic cross-clamping in dogs.

Spinal cord damage during and after thoracoabdominal aortic cross-clamping continues to be a major problem. Somatosensory and motor evoked potentials have been used to monitor spinal cord function but their value for predicting paraplegia has been controversial. The aim of this study was to measure biochemical markers in the cerebrospinal fluid (CSF) and correlate changes with spinal cord ischemia. Since neural tissue utilizes only glucose as substrate for its metabolism and energy supply, we measured changes of metabolites of anaerobe glycolysis. In a canine model in which general anesthesia was used, the thoracoabdominal aorta was cross-clamped proximally and distally for 60 min. Hemodynamic parameters, blood gases, and glucose level were monitored continuously. Blood and CSF sampling were performed at baseline, at 15, 30, and 55 min during cross-clamping, and at 5 and 15 min after aortic declamping. Levels of lactate (1.7 +/- 0.1 to 3.2 +/- 0.3 mmol/L), pCO2 (43 +/- 2 to 35 +/- 1.6 mmHg), and neuron-specific enolase (NSE) (5.17 +/- 0.5 to 13.0 +/- 3.5 mg/L) in CSF showed significant changes (p < 0.05) during clamping and reperfusion. Changes in CSF lactate and NSE levels correlate with the duration of spinal cord ischemia. These markers of ischemic metabolism appear suitable to monitor the degree of spinal cord ischemia during thoracoabdominal cross-clamping and may be useful to predict the efficacy of preventive methods.

Animals↗

Coronary metabolic adaptation restricted by endothelin in the dog heart.

Endothelin elicits long-lasting vasoconstriction in the coronary bed. This remarkable spastic response raises the question whether or not the metabolic adaptive mechanisms of the coronaries are activated under endothelin effect. The role of the compensatory mediators adenosine and inosine was investigated before and after intracoronary (i.c.) administration of endothelin-1 (ET-1, 1.0 nmol) using 1-min reactive hyperemia (RH) tests on in situ dog hearts (n=15) with or without blocking the ATP-sensitive potassium (K+(ATP)) channels by glibenclamide (GLIB, 1.0 micromol min(-1), i.c.). The release of adenosine and inosine via the coronary sinus was measured by HPLC during the first minute of RH. Endothelin-1 reduced baseline coronary blood flow (CBF) and RH response (hyperemic excess flow (EF) control vs. ET-1: 81.7+/-13.6 vs. 43.4+/-10.9 ml, P<0.01), while it increased the net nucleoside release (adenosine, control vs. ET-1: 58.9+/-20.4 vs. 113.7+/-39.4 nmol, P<0.05; inosine: 242.1+/-81.8 vs. 786.9+/-190.8 nmol, P<0.05). GLIB treatment alone did not change baseline CBF but also reduced RH significantly and increased nucleoside release (EF control vs. GLIB: 72.1+/-11.7 vs. 31.9+/-5.5 ml, P<0.01; adenosine: 18.8+/-4.6 vs. 63.0+/-24.8 nmol, P<0.05; inosine: 113.0+/-37.2 vs. 328.2+/-127.5 nmol, P<0.05). Endothelin-1 on GLIB-treated coronaries further diminished RH and increased nucleoside release (EF: 21.5+/-8.0 ml, P<0.05 vs. GLIB; adenosine: 75.3+/-28.1 nmol, NS; inosine: 801.9+/-196.6 nmol, P<0.05 vs. GLIB). The data show that ET-1 reduces metabolic adaptive capacity of the coronaries, and this phenomenon is due to decreased vascular responsiveness and not to the blockade of ischemic mediator release from the myocardium. The coronary effect of ET-1 may partially be dependent on K+(ATP) channels.

Adaptation, Physiological↗

Bosentan the mixed endothelin-A- and -B-receptor antagonist suppresses intrapericardial endothelin-1-induced ventricular arrhythmias.

In earlier studies severe ventricular arrhythmias developed during intrapericardial (i.p.) endothelin-1 (ET-1) infusion. Monophasic action potential duration (MAPD90) increase and significant ST segment elevation preceded the onset of arrhythmias. The aim of this study was to test the antiarrhythmic and anti-ischemic efficacy of the mixed endothelin-A- and -B- (ETA/B) receptor antagonist bosentan (BOS) on ET-1-induced arrhythmias on six mongrel dogs. Ten minutes after an intravenous bolus dose of BOS (10 mg/kg), ET-1 (33 pmol/kg/min) was given into the pericardial space for 30min (BOS group). Six control dogs received only ET-1 infusion (control group). Mean arterial blood pressure (MAP), cardiac output, electrocardiograph (ECG), right and left ventricular endo- and epicardial (RVEND, RVEP, LVEND, LVEP) MAPD90s were recorded. MAP and cardiac output did not change significantly in the BOS group. Significant MAPD90 prolongation was found in all investigated regions of the control group (ET start vs ET 20 min: LVEP, 174 +/- 3 vs 208 +/- 10*; RVEND, 206 +/- 9 vs 241 +/- 12* ms, *p < 0.05), while significant MAPD90 alterations were not observed in the BOS group (basic vs ET 20 min: RVEP, 189 +/- 5 vs 196 +/- 5; LVEP, 199 +/- 5 vs 199 +/- 4; RVEND, 194 +/- 5 vs 195 +/- 6; LVEND, 209 +/- 3 vs 213 +/- 5 ms). Early after depolarizations (EADs) were observed in three control dogs. Severe ventricular arrhythmias [incessant nonsustained ventricular tachycardias (nsVTs) in all cases, sustained VTs (sVTs) in four, ventricular fibrillation (VF) in two instances] were present in the control group, whereas nsVTs were observed only in two dogs in the BOS group. ST segment elevation was more pronounced in the control group than in the BOS group (1.01 +/- 0.2 vs 0.41 +/- 0.07 mV, p < 0.05). In summary, bosentan effectively inhibits intrapericardial ET- 1-induced ventricular arrhythmias, moreover it may have a protective effect against epimyocardial ischemia.

Action Potentials↗

[Effect of regional hypothermia on cerebrospinal fluid parameters during thoracoabdominal aorta clamping in dogs].

The most feared complication of thoracoabdominal clamping is the paraplegia or paraparesis following ischemic injury of the spinal cord. Early intraoperative recognition of this complication has not been solved yet. In our earlier experiment we found significant alterations of CSF glucose, lactate, pCO2 and Neuron Specific Enolase (NSE) levels during 60 minutes thoracoabdominal aortic clamping in dogs. The analysis of these parameters proved to be proper to follow metabolism of the spinal cord during this type of surgery. In our present paper we studied protective effect of regional hypothermia using peridural cooling by registration of above parameters. Statistical analysis of our data showed prevention of production of anaerobe metabolites in animals with icy peridural irrigation. The biochemical approach is appropriate for monitoring effectiveness of regional hypothermia of the spinal cord during aortic surgery.

Animals↗

Enhanced accumulation of pericardial fluid adenosine and inosine in patients with coronary artery disease.

Adenosine and inosine are believed to have cardioprotective effects. However, little is known about their possible role in the metabolic autoregulation of human coronaries and in pathologic conditions with supply/demand imbalance of the heart such as coronary artery disease. Since these low molecular weight nucleosides freely diffuse through the monolayer of the visceral pericardium, adenosine and inosine concentrations in pericardial fluid may well reflect the conditions in cardiac interstitium. The pericardial fluid and systemic venous blood adenosine and inosine concentrations were measured in 98 human subjects undergoing heart surgery for coronary artery disease or valvular heart disease. Adenosine and inosine concentrations were measured by HPLC with UV detection. In subjects with coronary artery disease pericardial fluid nucleoside concentrations were significantly higher than in patients with valvular heart disease (adenosine: 1545 (996-3146) nmol/L [median (25th-75th quartiles)] vs. 738 (390-2527) nmol/L, P<0.01; inosine: 658 (321-1331) nmol/L vs. 347 (159-1037) nmol/L, P<0.05), while in both patient groups pericardial fluid nucleoside concentrations were higher by an order of magnitude than in venous plasma. Our results show the enhanced release of adenosine and inosine by the ischemic myocardium as a marker of supply/demand imbalance and support the hypothesis that these cardiac nucleosides may have an important role in the adaptation of coronary blood flow in human coronary artery disease.

Adenosine↗

Intrapericardial infusion of endothelin-1 induces ventricular arrhythmias in dogs.

OBJECTIVES: Recently, extremely high levels of endothelin-1 (ET-1) were detected in the pericardial fluid of patients with heart disease; however, the pathophysiological importance of this finding is not known. The present study was designed to characterize ET-1 levels in canine pericardial fluid and to investigate the effects of local high concentrations of exogenous ET-1 in vivo. METHODS: In anesthetized, open-chest dogs ET-1 (Groups 1 and 2: 11 and 33 pmol.kg-1.min-1; n = 6 and 6, respectively) or physiological saline (Group 3, n = 5) were infused into the closed pericardial sac for 40 min. In serial pericardial fluid and aortic blood plasma samples, ET-1 levels were measured by radioimmunoassay, and analysed by high-performance liquid chromatography (HPLC). Systemic arterial blood pressure, heart rate, cardiac output (CO), standard ECG and right ventricular endocardial monophasic action potentials (MAPs) were recorded. RESULTS: Basal pericardial fluid ET-1 levels were significantly higher than respective plasma levels (342 +/- 210 vs. 8.0 +/- 5.2 pmol.l-1, n = 14, P < 0.001. In HPLC analysis pericardial fluid ET-1 was indistinguishable from ET-1(1-21). Infusion of exogenous ET-1 into the pericardial space induced ventricular arrhythmias in all instances, which were associated with 9.7-fold increase in pericardial fluid ET-1 levels. Ventricular tachycardias developed in 9 of 12 animals. The arrhythmogenic effect of ET-1 was more apparent in dogs with the larger dose. Before the onset of arrhythmias, intrapericardial infusion of ET-1 increased QT time (Group 1: 207 +/- 18 to 230 +/- 23 ms, P < 0.01; Group 2: 220 +/- 12 to 277 +/- 17 ms, P < 0.01) and MAP duration at 90% repolarization (at 300 ms cycle length) (Group 1: 192 +/- 9 to 216 +/- 9 ms, P < 0.01; Group 2: 205 +/- 9 to 255 +/- 9 ms, P < 0.001). Hemodynamic variables did not change significantly prior to the onset of ventricular tachyarrhythmias. In Group 3, arrhythmias were not observed and all electrophysiological and hemodynamic parameters remained unchanged. CONCLUSIONS: Administration of exogenous ET-1 into the pericardial space induces ventricular arrhythmias associated with prolongation of QT time and MAP duration. Whether pericardial fluid ET-1 under pathophysiological conditions can ever reach sufficiently high levels to induce ventricular arrhythmias remains to be elucidated.

Action Potentials↗

Presence of immunoreactive endothelin-1 and atrial natriuretic peptide in human pericardial fluid.

This study was undertaken to characterize endothelin-1 (ET-1) and atrial natriuretic peptide (ANP) concentrations in human pericardial fluid, blood plasma, right atrial appendage and papillary muscle by use of specific radioimmunoassays. In patients undergoing cardiac surgery (n=16) pericardial fluid mean immunoreactive (ir-) ET-1 and ir-ANP levels were 36-fold and 4-fold higher than corresponding plasma levels, respectively. In high performance liquid chromatography (HPLC) pericardial fluid ir-ET-1 was indistinguishable from human ET-1[1-21] and the majority of pericardial fluid ir-ANP coeluted with human ANP[99-126]. Atrial tissue ir-ET-1 and ir-ANP concentrations were 17-fold and 870-fold higher than in ventricular tissue. Our present study demonstrated for the first time the presence of ir-ET-1 in the pericardial fluid in humans. Human pericardial fluid contained far the highest concentrations of ET-1 among all biological fluids tested thus far. The functions of pericardial fluid ET-1 and ANP on cardiac performance and coronary vascular tone require further investigations.

Adult↗

Endothelin does not interact with angiotensin II in the coronary vascular bed of anesthetized dogs.

We postulated that individually subthreshold circulating levels of angiotension II (Ang II) and endothelin-1 (ET-1) might induce fulminant coronary vasoconstriction when both are present. In 16 pentobarbital-anesthetized, open-chest mongrel dogs, blood pressure, heart rate, and standard ECG were registered continuously. Coronary blood flow (CBF) was measured in the left anterior descending coronary artery (LAD) by an electromagnetic flow probe. Drugs were administered into the LAD via an indwelling catheter. Bolus injections of Ang II (7.8 x 10(-13) to 3.9 x 10(-11) M) and ET-1 (10(-12) to 10(-9) M) induced a dose-dependent decrease in CBF (delta CBFmax -82 +/- 10% for Ang II and -91 +/- 8% for ET-1). Simultaneous Ang II and ET-1 boluses had slightly smaller effects on CBF than the calculated additive figure. Five-minute infusions of Ang II (10(-12) to 10(-10) M/min) and ET-1 (5 x 10(-12) to 2 x 10(-10) M/min) induced a slight decrease in CBF (delta CBFmax -12 +/- 9% for Ang II and -19 +/- 9% for ET). Background ET-1 or Ang II infusions did not alter the dose-response curve of the other drug. Simultaneous Ang II and ET-1 infusions at different rates (10(-12) to 10(-10) M/min for Ang II and 5 x 10(-12) to 2 x 10(-10) M/min for ET-1) over 5 min had similar effects on CBF as the calculated additive figure (delta CBFmax -35 +/- 17% for the joint administration of the highest doses). We conclude that after simultaneous administration into the dog coronary artery, Ang II and ET-1 do not interact sufficiently to induce fulminant vasoconstriction.

Anesthesia, General↗

Compensation of endothelin-1-induced coronary vasoconstriction.

The vasodilator capacity of the coronaries was determined by the reactive hyperemia (RH) test in open-chest anesthetized dogs. The myocardial release of adenine nucleosides (adenosine and inosine) was measured by the HPLC-UV method. In group I (n = 9) after the control RH test, a bolus injection of endothelin-1 (ET-1; 1.0 nmol i.c.) was administered and was followed by a second RH test. In group II (n = 9), glibenclamide (GLIB) was infused continuously (1.0 mumol/min i.c.) and RH tests were performed during the control period and then before and after bolus injection of ET-1. In contrast to the significant reduction of the RH response after ET-1 in group I and after GLIB in group II, the nucleoside release into the coronary sinus during the first minute of the RH test was significantly higher (adenosine release 0.05 +/- 0.02 vs. 0.10 +/- 0.04 mumol, and 0.02 +/- 0.00 vs. 0.08 +/- 0.02 mumol; p < 0.05). Injection of ET-1 did not result in further RH reduction in GLIB-pretreated dogs (group II) but significantly increased nucleoside release. High doses of ET-1 activated the metabolic compensatory mechanisms of the myocardium and thereby increased the release of adenine nucleosides into the venous blood of the heart. However, whether these metabolites can exert any significant compensatory vasodilator effects appears doubtful.

Adenosine↗

Verapamil reduces the arrhythmogenic effect of endothelin.

In a previous study we established that endothelin-1 (ET-1) can induce characteristic ventricular tachycardias (VT) with significant prolongation of QT and QTc time. In this investigation we studied the role of CA2+ channels in the pro-arrhythmic effects of ET-1. In 24 anesthetized, open-chest mongrel dogs, ET-1 was administered into the left anterior descending coronary artery at a comparatively low dose (60 pmol/min) for 30 min. Twelve dogs received the Ca(2+)-channel blocker verapamil (0.4 mg/kg) before ET-1 application. The following parameters were recorded continuously over the infusion period: systemic arterial blood pressure, coronary blood flow, surface ECG leads, epicardial atrial and ventricular electrograms, and right and left ventricular endocardial monophasic action potentials (MAP). Electrophysiologic studies were performed by programmed electrical stimulation of the heart. Blockade of myocardial Ca2+ channels attenuated the arrhythmogenic action of ET-1. After verapamil administration to ET-1-treated dogs, sustained VT did not appear and ventricular fibrillation (VF) developed only in two dogs. In the control group serious and sustained VT and VF developed in nine animals. It is noteworthy that verapamil did not prevent ET-1-induced prolongation of QT time. The results appear to prove that myocardial Ca2+ channels are involved in the proarrhythmic effect of ET-1.

Animals↗

Potential pathophysiologic role of endothelin-1 in canine pericardial fluid.

Recently, extremely high levels of endothelin-1 (ET-1) were detected in the pericardial fluid of patients undergoing cardiac surgery. This study was designed to assess the pathophysiologic importance of this finding by infusing ET-1 into the closed pericardial sac of anesthetized dogs. Systemic arterial blood pressure, heart rate, and standard ECG were recorded. Intrapericardial infusion of ET-1 (11 and 33 pmol/kg/min; n = 4/4) for 40 min induced ventricular arrhythmias in all instances. The lower dose of ET-1 induced a substantial number of ventricular extrasystoles, couplets, and triplets. In one instance, ventricular extrasystoles accelerated into nonsustained ventricular tachycardia (VT). In animals receiving the higher dose, nonsustained VTs occurred regularly, whereas sustained VTs were detected in two of four animals. Before the onset of arrhythmias, QT time was significantly prolonged [ET-1 (11 pmol/kg/min) 180 +/- 12 to 198 +/- 10 ms, p < 0.05; ET-1 (33 pmol/kg/min) 192 +/- 15 to 233 +/- 13 ms, p < 0.01]. Hemodynamic variables did not change significantly before the onset of ventricular arrhythmias. Our results show that administration of exogenous ET-1 into the pericardial space induces ventricular arrhythmias associated with prolongation of QT time.

Anesthesia↗

Bradycardia increases the arrhythmogenic effect of endothelin.

The effect of permanent bradycardia on the proarrhythmic action of endothelin-1 (ET) was investigated in 24 open-chest anesthetized mongrel dogs. In 12 dogs, permanent bradycardia was induced by radiofrequency ablation of the AV node and the hearts were paced at 70 beats/min. ET (60 pmol/min) was infused into the left anterior descending coronary artery. Blood pressure, coronary blood flow (CBF), and atrial and ventricular epicardial surface ECG were recorded continuously. Polymorphous ventricular tachycardia developed in every dog with permanent bradycardia, and ventricular fibrillation terminated the experiments in 11 cases. Bradycardia prolonged the basal QT but there was no difference in the frequency corrected QTc time between the two groups. ET prolonged the QT time in a similar fashion in both groups. In the control group, six dogs developed sustained ventricular tachycardias and ventricular fibrillation occurred in nine cases. EADP was found in six cases of eight registered. Signs of myocardial ischemia did not accompany the development of arrhythmias. We conclude that permanent bradycardia augments the direct proarrhythmic effect of ET in dogs.

Animals↗

Increased monophasic action potential dispersion in endothelin-1-induced ventricular arrhythmias.

The aim of this study was to investigate the changes in monophasic action potentials (MAP) from different sites in the heart and to determine MAP dispersion during endothelin-1 (ET-1) infusion. Standard ECG, left ventricular anterior, right ventricular lateral, right ventricular septal, and right ventricular apical MAPs and intra-arterial blood pressure were monitored in seven anesthetized open-chest mongrel dogs. After radiofrequency atrioventricular node ablation, ventricular pacing (70/min) was performed and intracoronary ET-1 (60 pmol/min) was administered into the left anterior descending coronary artery. Both MAPd90 and MAPd90 dispersion increased significant during ET-1 infusion. The onset of spontaneous monomorphic and polymorphic sustained ventricular tachycardias (sVT) was observed in five dogs (around 40 min), and nonsustained VTs (nsVT) developed in another two dogs. The increases in MAP and MAP dispersion lasted until the appearance of polymorphic nsVTs and sVTs, but at the time of these VTs this difference decreased. At the termination of the experiments, ventricular fibrillation occurred in six cases. In four cases third-phase early afterdepolarizations were recorded. Our results suggest that increased MAP dispersion and development of EAD contribute to the arrhythmogenic action of ET-1, and these phenomena might explain the pathogenesis of a wide variety of ventricular arrhythmias with different morphology observed in this study.

Action Potentials↗

Mechanism of endothelin-induced malignant ventricular arrhythmias in dogs.

The development of ventricular tachyarrhythmias caused by low-dose intracoronary infusion of endothelin-1 (ET-1) has recently been observed in dogs. The aim of the present study was to investigate the pathomechanism of ET-1-induced ventricular arrhythmias in 32 anesthetized, open-chest mongrel dogs in group A (n = 14) without, in group B (n = 14), and in group C (n = 4 control) with atrioventricular node ablation. The coronary blood flow (CBF) was measured in the left anterior descending (LAD) coronary artery by an electromagnetic flowmeter. Standard ECG, atrial and ventricular electrograms, and in groups B and C endocardial and epicardial monophasic action potentials (MAPs) were recorded. ET-1 was administered into the LAD at a low dose (30-60 pmol/min). At the time of the appearance of premature beats, CBF was only slightly decreased. The effective ventricular refractory period did not change significantly. Onset of spontaneous polymorphic and monomorphic sustained ventricular tachycardia (sVT) was observed in five dogs without bradycardia and in nine dogs with bradycardia. VTs in dogs with complete AV block were longer and slower. In most of the cases, ventricular fibrillation occurred. ET-1 treatment resulted in a significant increase in MAP 90% duration (255 +/- 9 vs. 290 +/- 8 ms endocardial, 244 +/- 10 vs. 292 +/- 12 epicardial; p < 0.05) at 70 beats/min ventricular pacing. In eight cases (group B), third-phase early afterdepolarization could be recorded. According to our results, the mechanism of ET-1-induced arrhythmias appears to be based on prolongation of MAP duration and development of afterdepolarizations.

Action Potentials↗

Characterization and stimuli for production of pericardial fluid atrial natriuretic peptide in dogs.

Recently high immunoreactive atrial natriuretic peptide (ir-ANP) levels have been found in the pericardial fluid of patients undergoing cardiac surgery. The present study was designed to characterize pericardial fluid ANP in anesthetized dogs. Pericardial fluid ir-ANP levels were 3.4-fold higher than plasma levels and the molecular form, revealed by high performance liquid chromatography, was indistinguishable from ANP[99-126]. Elimination of [125I]ANP was 5-fold slower in the pericardial space than in plasma. Activity of the major ANP degrading enzyme, neutral endopeptidase (NEP, EC 3.4.24.11), was 15-times higher in the pericardial fluid than in plasma. Right atrial balloon distension and rapid right ventricular pacing induced maximally 2.3-fold and 1.5-fold increases of pericardial fluid ir-ANP, respectively. Pericardial fluid ir-ANP concentrations and right atrial pressure values showed significant correlation during the stimuli. Our present results show that high concentrations of ir-ANP can be found in the dog pericardial fluid even under unstimulated conditions. Slow elimination of ANP from the pericardial fluid compartment may contribute to the high peptide levels. However this slow elimination cannot be attributed to a lower NEP activity. High basal levels of ANP in the pericardial fluid could be further increased by atrial balloon stretch and rapid ventricular pacing. The increase of pericardial fluid ir-ANP appeared to be a stretch-dependent response. ANP released into the pericardial fluid may be involved in the regulation of cardiac function and coronary vascular tone.

Animals↗

Direct renovascular effect of somatostatin in the dog.

Recently, effects of somatostatin on the renal function have been described and the vasoactive properties of the peptide were proposed to contribute to this action. However, the available data on its effect in the renal vascular bed are very controversial. Therefore, we investigated the effect of local intaarterial somatostatin boluses in a wide range of doses (5 x 10(-11) - 5 x 10(-5) g) on the renal blood flow (RBF) in anesthetized dogs. RBF was measured by an electromagnetic flow probe. Somatostatin did not influence blood pressure or heart rate. RBF exhibited a significant, dose-dependent fall (ranging from 11.6 +/- 11.9% to 31.9 +/- 17.3%), with a threshold at a dose of 5 x 10(-10) g. These results offer conclusive evidence for the contribution of somatostatin-induced direct renal vasoconstriction to its renal effects, in addition to the demonstrated modulation of other vasoactive systems and tubular functions.

Animals↗