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K Przyklenk

Publications and source records attributed to K Przyklenk.

99 records · Page 6Linked to original sources

Infarct size reduction: a review of the clinical trials.

The most important finding to emerge from this review of experimental and clinical studies is that the earlier therapy is begun after the onset of symptoms of acute MI, the greater the potential for reduction of infarct size and possibly mortality. It is difficult to define a precise time after which therapy would not have an effect, since the clinical trials for each drug group vary significantly in respect to time of therapy initiation. In experimental studies, major salvage of ischemic myocardium occurs when the drug is given within two hours of coronary artery occlusion. If drug therapy is begun four to six hours postocclusion, then only minor or no reductions in infarct size will occur. The ability of any drug or intervention to reduce infarct size in humans would be optimized if therapy were begun less than four hours of onset of symptoms. With the realization of the wavefront phenomenon and the potential salvage of myocardium at risk with reperfusion, the introduction of reperfusion in the clinical setting with thrombolytic agents or other procedures becomes highly desirable. Clot-selective thrombolytic agents, such as tissue plasminogen activator, diminish the adverse effects and high costs of intracoronary thrombolytic therapy or PTCA. Consequently, it is probable that the initial procedure of choice would be the use of clot-selective thrombolytic therapy. Thrombolytic therapy only lyses thrombi and does not affect the underlying causes of the coronary artery occlusion. Therefore, therapy to reduce the chances of reinfarction and death must also be initiated. Percutaneous transluminal coronary angioplasty, in selected patients, should reduce the reocclusion rate. Beta-adrenoceptor blocking agents appear to be an excellent therapy for reducing mortality when administered chronically; these agents reduce myocardial oxygen consumption and reverse the imbalance between oxygen supply and oxygen demand caused by activation of the sympathetic nervous system and actions of catecholamines. Since thrombus formation has occurred at least once in patients who survive an MI, it is probable that the conditions for thrombus formation still exist. Therefore, institution of antiplatelet aggregating drugs, such as aspirin, would seem to be an appropriate prophylactic regimen. Beta blockers and possibly nitroglycerin have desirable effects when thrombolysis is unavailable. The efficacy of calcium-channel blocking agents on reduction of infarct size appears to be limited, although in the setting of stable and unstable angina postinfarction, these agents can play an important role.(ABSTRACT TRUNCATED AT 400 WORDS)

Adrenergic beta-Antagonists↗

Transient pre-ischemic acidosis protects the isolated rabbit heart subjected to 30 minutes, but not 60 minutes, of global ischemia.

Adenosine released during brief episodes of ischemia, due to the breakdown of ATP, is thought to be an endogenous mediator of ischemic preconditioning. In this study we sought to determine whether protons, also released from ATP during ischemia, may protect the heart from sustained ischemic insult. Experiments were performed in isolated Langendorff-perfused rabbit hearts. Proton release was simulated by a brief transient episode of preischemic acidosis. Before ischemia all hearts underwent 15 min of preischemic perfusion. Control hearts received 15 min perfusion with normal Krebs-Henseleit buffer (KHB; pH 7.39) while the short-term acidosis (STA) group received 5 min of perfusion with normal KHB followed by 5 min of perfusion with acidic buffer (pH 5.97), and then 5 min of perfusion with normal KHB. Both control and STA groups then underwent 30 min of global ischemia. A second pair of control and STA groups were subjected to 60 min of global ischemia. After global ischemia all hearts received 60 min of reperfusion. The time course of functional recovery after 30 min of ischemia was accelerated in the STA group (i.e., developed pressure in the control and STA groups at 15 min into reperfusion averaged 57 +/- 9 and 74 +/- 3 mmHg, respectively; p < 0.05), and a strong trend towards lower release of creatine kinase after 30 min of global ischemia was observed in the STA group (43 +/- 7 U/g dry tissue in the STA group vs. 76 +/- 15 U/g dry tissue in the control group). However, after 60 min of global ischemia no differences in cardiac function at reperfusion were observed between control and STA groups. Our results indicate that in the isolated rabbit heart, brief acidosis affords protection against 30 min but not against 60 min of global ischemia.

Acidosis↗

Reduction of infarct size in vivo with ischemic preconditioning: mathematical evidence for protection via non-ischemic tissue.

We constructed a mathematical model of ischemic preconditioning based on experimental data obtained from rat hearts. In this animal model of low collateral blood flow, we found that infarct size in preconditioned hearts, expressed as a percentage of area at risk, increased as the size of the area at risk increased (r = 0.76, p = 0.0007). In contrast, infarct size in control hearts appeared independent of changes in area at risk. Similarly, the lateral distance between the edge of the area at risk and the edge of the area of necrosis did not vary with risk region in control hearts, but in preconditioned hearts, lateral distance decreased as the size of the area at risk increased (r = -0.67, p = 0.0046). We used these findings to develop a simple model which provided mathematical relationships between lateral distance and area at risk and between infarct size and area at risk for both control and preconditioned hearts that were consistent with the experimental data. These relationships led us to propose that in preconditioned hearts 1) a protective substance may be produced or activated throughout the heart, and 2) that the protective substance may be transported by diffusion. If we assumed uniform production of protective substance in an amount proportional to the size of the ischemic and non-ischemic areas, we were able to derive, using a simple diffusion model, relationships between the above variables that were consistent with our mathematical model and with the experimental data. Although our model does not identify the protective substance, its implications provide ideas for additional crucial experiments that may enhance our understanding of ischemic preconditioning.

Animals↗

Deterioration in myocardial blood flow following relief of sustained ischemia is not associated with release of endothelin into the coronary sinus.

Numerous studies have described a progressive deterioration in resting myocardial blood flow following relief of sustained ischemia in both necrotic and salvaged myocardium (termed "no reflow" and "low reflow", respectively). We sought to determine whether release of the potent vasoconstrictor peptide endothelin-1 may play a role in these phenomena. As part of a previous study in our laboratory, 14 anesthetized open-chest dogs underwent 1 h of coronary artery occlusion and 4 h of reperfusion, while 2 dogs served as time-matched sham-operated controls (artery isolated but not occluded). Regional myocardial blood flow was measured by injection of radiolabeled microspheres at 30 min and 4 h post reflow; endothelin-1 concentrations in the coronary sinus were determined by radioimmunoassay at baseline, during coronary occlusion and at 30 min and 4 h after reperfusion; and the extent of myocardial necrosis was delineated by post-mortem tetrazolium staining. As expected, in dogs subjected to ischemia/reperfusion, regional myocardial blood flow deteriorated between 30 min and 4 h post reflow in both the subendocardium (1.40 +/- 0.30 versus 0.48 +/- 0.06 ml/min/g; p = 0.003; reflecting a mixture of no reflow and low reflow) and subepicardium (0.84 +/- 0.08 versus 0.64 +/- 0.07 ml/min/g; p = 0.03; due to low reflow). However, endothelin levels showed only a modest and nonsignificant increase during the protocol (4.1 +/- 0.5, 4.7 +/- 0.2 and 4.9 +/- 0.6 pg/ml plasma at baseline, 30 min and 4 h post reflow; p = NS), and regression analysis revealed no correlation between release of endothelin and deterioration in blood flow in either myocardial layer. Moreover, the sham-operated controls showed a similar modest increase in endothelin levels, with no change in myocardial perfusion during the course of the protocol. We therefore conclude that deterioration in myocardial blood flow following relief of sustained ischemia in the anesthetized open-chest dog is not associated with release of endothelin-1 into the coronary sinus.

Animals↗

Effect of oxygen-derived free radical scavengers on infarct size following six hours of permanent coronary artery occlusion: salvage or delay of myocyte necrosis?

Oxygen-derived free radicals (O-2 and .OH) have been implicated in myocardial injury associated with coronary artery occlusion followed by reperfusion. While these cytotoxic oxygen species are predominantly produced upon reintroduction of molecular oxygen to previously ischemic tissue, they may also be generated throughout coronary occlusion in species (such as dog and man) in which native collateral vessels permit residual blood flow into the ischemic bed. To test this theory, 20 anesthetized, open-chest dogs underwent 6 h of permanent left anterior descending coronary artery occlusion: ten dogs were treated with the potent free radical scavenging enzymes superoxide dismutase (SOD: 5 mg/kg per hour) plus catalase (5 mg/kg per hour), while the remaining ten animals received saline. Infusion of drug or saline solution was begun 15 min prior to occlusion, and maintained throughout occlusion. Infusion of SOD + catalase did not significantly affect the extent of the area at risk of infarction (19.5 +/- 1.8% vs 24.0 +/- 1.4% of the left ventricle for the treated vs control group; P = NS), did not reduce myocardial oxygen demand (heart rate and arterial pressures were comparable for both groups), and did not alter collateral blood flow to the ischemic myocardium. However, mean infarct size in dogs treated with SOD + catalase (39.6 +/- 6.6% of the area at risk; 8.4 +/- 2.1% of the left ventricle) was significantly smaller than that observed in the saline controls (73.0 +/- 6.3% of the area at risk, P less than 0.01; 19.8 +/- 2.2% of the left ventricle, P less than 0.01). Thus, infusion of SOD + catalase prior to and during 6 h of coronary occlusion significantly reduced infarct size assessed at 6 h postocclusion. To determine whether this reduction in infarct size represented long-term salvage of ischemic myocardium, an additional 14 dogs (seven treated and seven controls) underwent the same procedure as described above; in this case the artery was reperfused after the 6-hour occlusion period, infusion of the SOD + catalase or saline solution stopped at 5-10 min postreperfusion, and the hearts examined at 30-48 h postocclusion. In contrast to the results at 6 h postocclusion, the necrosis at 30-48 h postocclusion was large, confluent and transmural in all dogs (infarct size = 21.2 +/- 2.5% vs 22.7 +/- 4.4% of the left ventricle for treated vs controls; P = NS). These results suggest that infusion of SOD + catalase in this model may delay, but not prevent, the development of ischemic necrosis.

Acute Disease↗

Ischemic preconditioning: exploring the paradox.

Brief transient episodes of nonlethal myocardial ischemia protect or "precondition" the heart and render the myocardium resistant to a subsequent more sustained ischemic insult. The hallmark of this phenomenon--documented in virtually all species and experimental models evaluated to date in countless laboratories worldwide--is the profound reduction in infarct size seen in preconditioned groups versus time-matched controls. Efforts to identify the cellular mechanisms responsible for this paradoxical ischemia-induced cardioprotection, to expand the definition of ischemic preconditioning beyond infarct size reduction, and, perhaps most importantly, to evaluate the efficacy of preconditioning in disease models and in the clinical setting, are all topics of intensive ongoing investigation.

Animals↗

Pretreatment with the gap junction uncoupler heptanol does not limit infarct size in rabbit heart.

Previous findings indicate that heptanol, an agent well-recognized to disrupt chemical signaling between myocytes by uncoupling of gap junctions, significantly limited infarct size when administered at the time of reperfusion. Our aim was to assess on the potential role of cell--cell communication via gap junctions during ischemia by investigating whether "loading" the soon-to-be ischemic territory with heptanol would limit myocardial necrosis. Five isolated buffer-perfused rabbit hearts were pretreated with heptanol (0.5 mM) for 10 min, while 12 served as controls. In the final 30 s of treatment, a large marginal branch of the left circumflex coronary artery was occluded for 30 min followed by 2 h of reperfusion, and infarct size was delineated by tetrazolium staining. Heptanol had no significant effect on the extent of infarct: area of necrosis (AN, expressed as a percentage of the myocardium at risk) was 75+/-3% and 72+/-8% in vehicle- and heptanol-treated groups (P=.76). Thus, our results suggest that cell-to-cell communication via gap junctions during coronary artery occlusion does not contribute importantly to the development of necrosis in rabbit heart.

Animals↗

Ischemic preconditioning: implications for the geriatric heart.

Ischemic preconditioning is among the most consistent and powerful modes of reducing myocardial infarct size. Although several clinical studies have suggested that the human heart can be preconditioned, controversy exists in both the experimental and clinical literature as to whether the senescent heart can be preconditioned. The authors recently reported that older patients (> or = 60 years of age) in the Thrombolysis in Myocardial Infarction-4 study appeared to benefit from a history of angina prior to acute myocardial infarction. This observation may lead to a clinical counterpart to successful preconditioning in the older heart.

Aged↗