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Biomedical subjects

G Heusch

Publications and source records attributed to G Heusch.

At least 91 records · Page 5Linked to original sources

Prevention of ischemic preconditioning only by combined inhibition of protein kinase C and protein tyrosine kinase in pigs.

In rabbits, inhibition of either protein kinase C or protein tyrosine kinase abolishes the infarct size reduction achieved by ischemic preconditioning. In pigs, however, inhibition of protein kinase C does not attenuate ischemic preconditioning. The present study tested whether inhibition of protein tyrosine kinase alone or in combination with inhibition of protein kinase C interferes with ischemic preconditioning in pigs. In 29 enflurane-anesthetized pigs, the LAD was cannulated and perfused from an extracorporeal circuit. Protein tyrosine kinase and protein kinase C were inhibited by continuous intracoronary infusion of genistein (5x10(-6) mol/l) and staurosporine (10(-7) mol/l), respectively. Subendocardial blood flow (ENDO) was measured with microspheres. Infarct size was analysed by TTC staining (% of LV area at risk) following 90 min low-flow ischemia and 120 min reperfusion. In the presence of genistein, 90 min ischemia at an ENDO of 0.06+/-0.01 (+/-s.e.m.) ml/min/g resulted in an infarct size of 16.7+/-4.2% (n=8). With genistein, ischemic preconditioning by 10 min ischemia and 15 min reperfusion still reduced infarct size to 6.5+/-2.7% (ENDO: 0.05+/-0. 01 ml/min/g, n=7, P<0.05). In the presence of both genistein and staurosporine, infarct size following 90 min ischemia was 14.1+/-3. 6% (ENDO: 0.06+/-0.01 ml/min/g, n=7). With genistein and staurosporine, ischemic preconditioning no longer reduced infarct size significantly (11.5+/-3.1%, ENDO: 0.06+/-0.01 ml/min/g, n=7). The effective attenuation of ischemic preconditioning only by simultaneous inhibition of both, protein kinase C and protein tyrosine kinase, suggests a complex signal cascade involving both protein kinases.

Animals↗

Calcium responsiveness in canine pacing-induced heart failure.

The specific lesion(s) and potential compensatory alterations of excitation-contraction coupling in heart failure are not clear in detail. We therefore subjected five dogs to 2-5 weeks of rapid ventricular pacing until heart failure developed. Data obtained from these five dogs with pacing-induced heart failure were compared to data from six healthy controls. Under anesthesia, in situ steady state responses of regional contractile function to intracoronary calcium infusion were established. Maximal calcium-activated regional contractile function in dogs with heart failure was 46% less than in controls; calcium sensitivity was unchanged [pCa50 2.55+/-0.31 v 2.82+/-0.17 (+/-s.d.)]. Our data point to a decrease in maximal calcium-activated force and an unchanged calcium sensitivity if an unchanged calcium transient is assumed, or a compensatory increase in calcium sensitivity of failing myocardium if a decreased calcium transient is assumed.

Animals↗

Cerebral vasoconstriction during sustained ventricular tachycardia induces an ischemic stress response of brain tissue in rats.

Arterial hypotension can cause cerebral ischemia when the autoregulation of the cerebral circulation is exhausted. We hypothesized that sudden cerebral vasoconstriction induced by moderate hypotensive, but hemodynamically stable, sustained ventricular tachycardias (MHT-VT) further compromises cerebral blood flow (CBF) and induces an ischemic stress response of the brain. CBF-measurements and morphological studies were performed without and with blockade of alpha-adrenergic receptors in order to determine the impact of MHT-VF on brain perfusion and brain tissue. Using a model of MHT-VT, CBF was measured with colored microspheres in 71 rats during control conditions. after the onset of MHT-VT, after the onset of moderate hypotensive hypovolemia (MHH), and after additional non- selective (alpha-blockade with phentolamine and selective alpha1-blockade with prazosin, respectively (0.2-0.4 mg/kg body weight). Plasma catecholamine concentrations were measured in 18 additional rats during control conditions. during MHT-VT and during MHH. The occurrence of heat shock protein (hsp) 72 and activated microglia in the brain was analysed in 18 additional rats in controls, after MHT-VT and MHH. After 20 min of the respective induced hypotension, control conditions were restored for a period of 8 h, by stopping VT or by infusion of isotonic saline solution. CBF was 0.98+/-0.16 (mean+/-S.D.) ml/g/min during control conditions at an arterial pressure of 118+/-13 mmHg, 0.50+/-0.05 ml/g/min (P<0.05 v control) during MHT-VT (76+/-4 mm Hg) and 0.75+/-0.14 ml/g/min (P<0.05 v control and v MHT-VT ) during MHH (71 +/- 8 mm Hg). CBF was better preserved with non-selective alpha-blockade during MHT-VT (0.78+/-0.15 ml/g/min, P<0.05 v MHT-VT and control) as well as with selective alpha1-blockade (0.67+/-0.08 ml/g/min, P<0.05 v MHT-VT and control). Plasma catecholamines were elevated during MHT-VT (P<0.05 v control) but not during MHH (P = N.S. v control). hsp 72 and activated microglia were found in hippocampal regions only after MHT-VT (P<0.05 v control and MHH). These morphological changes were prevented by non-selective alpha-blockade. Stable sustained MHT-VT further reduce the already compromised CBF leading to morphological alterations in the brain which are characteristic of an early ischemic stress response. alpha-Blockade prevents alpha1-adrenergic vasoconstriction and attenuates cerebral hypoperfusion.

Adrenergic alpha-Antagonists↗

Impact of resting and ischemic blood flow on infarct probability in ischemic preconditioning--a new approach to infarct size-blood flow data by logistic regression.

The linear regression analysis of infarct size (IS) v ischemic myocardial blood flow (MBF) does not account for the heterogeneity of MBF and infarcted tissue; moreover, it cannot assess a blood flow threshold for infarction (MBFT) accurately, as with ischemic preconditioning (IP) the close relationship between ischemic MBF and IS otherwise observed is lost. Finally, the impact of resting blood flow on myocardial infarction cannot be considered in such analysis. Therefore, in a retrospective data analysis of 32 enflurane-anaesthetized swine undergoing 90 min severe ischemia and 120 min reperfusion without (CON, n = 12) or with IP induced by either 3 (IP3, n = 8) or 10 min ischemia (IP10, n = 12) and 15 min reperfusion, a MBFT was assessed by logistic regression (LR) in individual tissue pieces. MBFT was arbitrarily defined as that ischemic MBF (microspheres) at which infarct probability was 0.2, derived from the ratio of infarcted (n = 141, TTC) to all tissue samples (n = 684). The duration of the preconditioning ischemia and MBF both at rest and during the sustained ischemia were significant predictors of infarct probability. Ischemic MBFT at an infarct probability of 0.2, was 0.089 +/- 0.023 ml/min/g in CON. MBFT was decreased to 0.051 +/- 0.03 ml/min/g with IP3 (P < 0.05 v CON) and further to 0.004 +/- 0.037 ml/min/g with IP10 (P < 0.05 v CON, IP3). Corresponding to the leftward shift of MBFT, the relationships between infarct probability and MBF were shifted in parallel by IP with no change in their slopes.

Animals↗

[Short-term hibernating myocardium: circulation, function and metabolism in sustained regional myocardial ischemia].

During moderate prolonged myocardial ischemia, the myocardium is dysfuctional but can remain viable. In such ischemic and dysfunctional myocardium, contractile function is reduced in proportion to the reduction in regional myocardial blood flow, i.e., a state of "perfusion-contraction matching" exists. The metabolic status of such myocardium improves over the first few hours, as myocardial lactate production is attenuated and creatine phosphate, after an initial reduction, returns to control values. Ischemic myocardium, characterized by perfusion-contraction matching, metabolic recovery and lack of necrosis, has been termed "short-term hibernating myocardium". "Short-term hibernating" myocardium can respond to an inotropic stimulation with increased contractile function, however, at the expense of a renewed worsening of the metabolic status. A role for endogenous adenosine in the development of hibernation has been excluded, since neither contractile function, metabolic parameters, nor viability are altered by increased catabolism of endogenous adenosine by infusion of adenosine deaminase. Also activation of ATP-dependent potassium channels is not responsible for "short-term hibernation". "Short-term hibernating" myocardium has, however, reduced calcium responsiveness.

Animals↗

The relationship between regional blood flow and contractile function in normal, ischemic, and reperfused myocardium.

During normoperfusion, both myocardial blood flow and contractile function are heterogeneously distributed throughout the left ventricle, in that midwall segment shortening is higher at the apex than at the base of the left ventricle, and greater in the anterior than in the posterior wall. Also, transmural heterogeneity of myocardial deformation exists with greater segment shortening and wall thickening occurring in inner than in outer myocardial layers. A transmural heterogeneity of myocardial blood flow-with greater inner as compared to outer wall perfusion-exists which is not simply related to temporal fluctuations since the heterogeneous flow pattern is stable over at least a few minutes. While an increase in myocardial contractile function will lead to a metabolically mediated increase in myocardial blood flow, an increase in regional coronary perfusion within or above the autoregulatory range does not increase regional myocardial contractile function. During hypoperfusion, the reduction in subendocardial blood flow is more pronounced than that in subepicardial blood flow, and contractile function in the inner myocardial layers ceases more rapidly than in the outer myocardial layers. The reduced regional myocardial contractile function is closely matched to the reduced regional myocardial blood flow; however, such a coupling between reduced flow and function is lost when ischemia is prolonged for several hours in that function for a given flow is further reduced. During reperfusion, regional myocardial contractile function remains depressed for a prolonged period of time, depending on the severity, duration, and location of the preceding ischemic episode, while regional myocardial blood flow is restored to almost normal. Recovery of contractile function in the outer myocardial layers is faster than in the inner myocardial layers.

Animals↗

AT1 receptor blockade in experimental myocardial ischemia/reperfusion.

The renin-angiotensin system is activated during myocardial ischemia, and local angiotensin II formation occurs in ischemic hearts. At least two angiotensin II receptor subtypes, the AT1 and AT2 receptor, have been identified. The cardiovascular effects of angiotensin II have been largely attributed to activation of AT1 receptors. In ventricular preparations from normal rat and pig hearts, the density of AT1 receptors is higher than that of AT2 receptors, whereas data on the AT receptor subtype density and its distribution in human hearts remain controversial. AT1 receptor blockade increases coronary blood flow during ischemia in dogs and during reperfusion in rats. It also reduces the incidence of ischemia-related arrhythmias in rats and guinea pigs, limits infarct size in pigs, improves functional and metabolic recovery following myocardial ischemia, and attenuates ventricular remodelling post-myocardial infarction in rats. The potential mechanisms responsible for the cardioprotection by AT1 receptor blockade remain to be elucidated in detail, but appear to involve AT2 receptor activation and the subsequent action of bradykinin, prostaglandins, and/or nitric oxide. Patients under treatment with AT1 receptor antagonists for indications such as hypertension and ventricular dilatation after myocardial infarction are likely to have improved prognosis when suffering an acute myocardial infarction.

Angiotensin Receptor Antagonists↗

Ischaemic preconditioning: present position and future directions.

Preconditioning the myocardium using short episodes of sublethal ischaemia will delay the onset of necrosis during a subsequent lethal ischaemic insult. This powerful protective adaptation of the myocyte has also been observed in other cell types. The potential for clinical application to benefit patients with a variety of pathological conditions has led to an expansion in our knowledge concerning the pathophysiology of ischemia-reperfusion injury and the regulatory mechanisms underlying cellular metabolism. We feel it is timely to assess the current position in this field and provide a critical appraisal to facilitate future research.

Animals↗

Expression of calcium regulatory proteins in short-term hibernation and stunning in the in situ porcine heart.

BACKGROUND: Myocardial hibernation and stunning are characterised by a reversible contractile dysfunction during and after ischaemia, respectively. Calcium homeostasis might be disturbed in hibernation and stunning due to altered expression of cardiac proteins involved in calcium handling. METHODS: In enflurane-anaesthetised swine the coronary blood flow through the left anterior descending coronary artery was decreased to reduce regional contractile function (microsonometry) by approximately 50%. In transmural biopsies obtained during ischaemia and reperfusion creatine phosphate as well as the expression of sarcoplasmic reticulum calcium ATPase (SERCA), phospholamban (PLB), calsequestrin (CSQ), and troponin inhibitor (TnI) were determined. RESULTS: During ischaemia creatine phosphate, after an initial reduction, recovered back to control values, and necrosis was absent (hibernation). After 90 min of ischaemia the myocardium was reperfused for 120 min but regional contractile function continued to be depressed (stunning). PLB, SERCA, CSQ, and TnI proteins were unchanged during ischaemia as well as reperfusion. Likewise, levels of PLB and SERCA mRNAs were unchanged. CONCLUSION: It is concluded that other mechanisms than altered expression of these regulating proteins underlie the contractile dysfunction observed during acute ischaemia, short-term hibernation and stunning.

Animals↗

Characterization of excitation-contraction coupling in conscious dogs with pacing-induced heart failure.

OBJECTIVE: In isolated cardiac preparations of non-failing hearts from different species, including man, there is a positive force-frequency relation which is reversed into a negative relation in preparation from failing hearts. Whether or not such relations between ventricular function and heart rate hold true in the in situ heart is not clear at present. Mechanical restitution and postextrasystolic potentiation might serve as alternative measures of excitation-contraction coupling. METHODS: Eleven dogs were instrumented with a left ventricular micromanometer, ultrasonic crystals for the measurement of regional wall thickness, two hydraulic occluders around the descending aorta and the inferior caval vein, and left atrial and ventricular pacing leads with a subcutaneous pacemaker. Left ventricular dP/dtmax, as an isovolumic phase index, and systolic wall thickening, as an ejection phase index, were plotted versus heart rate, and heart rate was increased by left atrial pacing from rest to 200 min-1 in increments of 25 min-1. In a subset of dogs, left ventricular filling was controlled and the frequency range expanded by the bradycardic agent UL-FS 49. Measurements were performed in the presence and absence of autonomic blockade (hexamethonium, atropine). Mechanical restitution and postextrasystolic potentiation were determined as normalized dP/dtmax and systolic wall thickening, respectively, of the extra- and postextrasystolic beat versus defined variations of the extrasystolic time interval (250-550 ms). Following control studies, heart failure was induced by rapid left ventricular pacing at 250 min-1 for 20 days +/- 6 (SD) and measurements repeated. Isolated left ventricular trabeculae from non-failing and failing hearts were studied during stimulation at 0.2-4 Hz. RESULTS: Only with filling control and in the absence of autonomic blockade, was there a slightly positive relation between dP/dtmax and heart rate in the control state. Otherwise, the relation of dP/dtmax to heart rate was flat both in the control state and in heart failure. The relation between systolic wall thickening and heart rate in the control state was negative, unless filling was controlled, and it was flat in heart failure. In contrast, the time constants of mechanical restitution and postextrasystolic potentiation were increased significantly with heart failure from 91 +/- 25 (SD) to 164 +/- 13 ms and from 107 +/- 18 to 156 +/- 4 ms, respectively, for dP/dtmax and from 76 +/- 22 to 162 +/- 10 ms and from 101 +/- 17 to 160 +/- 17 ms, respectively, for systolic wall thickening. These time constants were, however, insensitive to UL-FS 49 and autonomic blockade. There was a negative force-frequency relation in left ventricular trabeculae from non-failing hearts at higher calcium concentrations, where it was flat in trabeculae from failing hearts. CONCLUSION: Time constants of mechanical restitution and postextrasystolic potentiation are more sensitive than the steady state relation of ventricular function and heart rate to characterize the impairment of excitation-contraction coupling in heart failure.

Animals↗

Inorganic phosphate content and free energy change of ATP hydrolysis in regional short-term hibernating myocardium.

OBJECTIVE: Short-term myocardial hibernation is characterized by an adaptation of contractile function to the reduced blood flow, the recovery of creatine phosphate content and lactate balance back towards normal, whereas ATP content remains reduced at a constant level. We examined the hypothesis that, despite the absence of ATP recovery, the short-term hibernating myocardium regains an energetic balance. METHODS: An enzymatic method was modified for the measurement of inorganic phosphate (Pi) in transmural myocardial drill biopsies (about 5 mg). In 12 anaesthetized swine, moderate ischemia was induced by reduction of coronary inflow into the cannulated left anterior descending coronary artery to decrease regional myocardial function (sonomicrometry) by 50%. RESULTS: The development of short-term hibernation was verified by the recovery of creatine phosphate content, the persistence of inotropic reserve in response to dobutamine and the absence of necrosis (triphenyl tetrazolium chloride). At 5-min ischemia, Pi was increased from 3.6 +/- 0.3 (SD) to 8.1 +/- 1.1 mumol/gwet wt (p < 0.05). The free energy of ATP hydrolysis (delta GATP) was decreased from -57.8 +/- 0.8 to -52.2 +/- 1.4 kJ/mol (p < 0.05). The relationships between function and Pi (r = -0.81) and delta GATP (r = -0.83), respectively, during control and at 5-min ischemia became invalid at 90-min ischemia, as myocardial blood flow and function remained reduced at a constant level, but Pi decreased back to 4.9 +/- 0.9 mumol/g (p < 0.05 vs. control and 5-min ischemia), and delta GATP fully recovered back to -57.2 +/- 1.3 kJ/mol (p < 0.05 vs. 5-min ischemia). CONCLUSIONS: In short-term hibernating myocardium, myocardial inorganic phosphate content recovers partially and the free energy change of ATP hydrolysis returns to control values. Contractile function remains reduced by mechanisms other than an energetic deficit.

Adenosine Triphosphate↗

Pathophysiology of hibernation, stunning, and ischemic preconditioning.

Analyses of regional myocardial blood flow, function, metabolism, and morphology in ischemic and reperfused myocardium has led to the identification of important phenomena, i.e. myocardial hibernation, myocardial stunning, and ischemic preconditioning. Hibernation is a condition of sustained reduction of contractile function in hypoperfused but viable myocardium, which improves upon reperfusion. Stunning is characterized by spontaneously reversible postischemic dysfunction despite completely restored perfusion. Ischemic preconditioning refers to a delay of myocardial infarction resulting from sustained ischemia, when the myocardium is subjected to one or more preceding short cycles of ischemia/reperfusion. Whereas stunning is a reversible manifestation of myocardial injury, hibernation and ischemic preconditioning are forms of endogenous myocardial protection against ischemia. With better understanding of the underlying mechanisms of hibernation and ischemic preconditioning, these mechanisms might be exploited for pharmacological cardioprotection.

Animals↗

Hibernating myocardium.

Decreased myocardial contraction occurs as a consequence of a reduction in blood flow. The concept of hibernation implies a downregulation of contractile function as an adaptation to a reduction in myocardial blood flow that serves to maintain myocardial integrity and viability during persistent ischemia. Unequivocal evidence for this concept exists in scenarios of myocardial ischemia that lasts for several hours, and sustained perfusion-contraction matching, recovery of energy and substrate metabolism, the potential for recruitment of inotropic reserve at the expense of metabolic recovery, and lack of necrosis are established criteria of short-term hibernation. The mechanisms of short-term hibernation, apart from reduced calcium responsiveness, are not clear at present. Experimental studies with chronic coronary stenosis lasting more than several hours have failed to continuously monitor flow and function. Nevertheless, a number of studies in chronic animal models and patients have demonstrated regional myocardial dysfunction at reduced resting blood flow that recovered upon reperfusion, consistent with chronic hibernation. Further studies are required to distinguish chronic hibernation from cumulative stunning. With a better understanding of the mechanisms underlying short-term hibernation, it is hoped that these adaptive responses can be recruited and reinforced to minimize the consequences of acute myocardial ischemia and delay impending infarction. Patients with chronic hibernation must be identified and undergo adequate reperfusion therapy.

Adaptation, Physiological↗

Features of short-term myocardial hibernation.

When severe ischemia, such as that resulting from a sudden and complete coronary artery occlusion, is prolonged for more than 20-40 min, myocardial infarction develops, and there is irreversible loss of contractile function. When myocardial ischemia is less severe but nevertheless prolonged, the myocardium is dysfunctional but can remain viable. In such ischemic and dysfunctional myocardium, contractile function is reduced in proportion to the reduction in regional myocardial blood flow; i.e. a state of 'perfusion-contraction matching' exists. The metabolic status of such myocardium improves over the first few hours, as myocardial lactate production is attenuated and creatine phosphate, after an initial reduction, returns towards control values. Ischemic myocardium, characterized by perfusion-contraction matching, metabolic recovery and lack of necrosis, has been termed 'short-term hibernating myocardium'. Short-term hibernating myocardium can respond to inotropic stimulation with increased contractile function, although at the expense of renewed worsening of the metabolic status. This occurrence of increased regional contractile function at the expense of metabolic recovery during inotropic stimulation can be used to identify short-term hibernating myocardium. When inotropic stimulation is prolonged, short-term hibernation is impaired and myocardial infarction develops. The mechanisms responsible for the development of short-term myocardial hibernation remain unclear at present. Significant involvement of adenosine and activation of ATP-dependent potassium channels have been excluded. The role of triggering events and acidosis is controversial. Short-term hibernating myocardium is, however, characterized by reduced calcium responsiveness.

Acidosis↗

Endogenous protective mechanisms in myocardial ischemia: hibernation and ischemic preconditioning.

Myocardial ischemia, even if it persists for a prolonged period of time, does not inevitably induce irreversible damage. Recent studies have identified 2 phenomena that are characterized by endogenous cardioprotective features, i.e., myocardial hibernation and ischemic preconditioning. Myocardial hibernation is characterized by chronic contractile dysfunction during persistent ischemia. The myocardium remains viable, and function is restored upon reperfusion. Ischemic preconditioning is characterized by delayed development of infarct size when prolonged and severe myocardial ischemia is preceded > or = 1 short-lasting episodes of ischemia and reperfusion. While ischemic preconditioning involves the activation of the adenosine A1 receptor, the bradykinin receptor, and activation of adenosine triphosphate (ATP)-dependent potassium channels, the mechanisms underlying myocardial hibernation are still unclear.

Adaptation, Physiological↗