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Nitric oxide mitigates leukocyte adhesion and vascular leak after myocardial ischemia
C Kupatt1, S Zahler, C Seligmann
1Department of Physiology, University of Munich, Germany.
Abstract:
Tissue edema is a facet of ischemia/reperfusion injury in many organs, polymorphonuclear leukocytes (PMN) presumably playing a contributory role. We studied the intracoronary adhesion of PMN and its effect on vascular permeability during reperfusion in isolated guinea-pig hearts. After a global ischemia of 15 min duration. PMN (10(7)) were infused into the coronary system during the first minute of reperfusion. PMN adhesion was measured as difference of applied PMN and those recovered in the effluent perfusate. Coronary permeability was assessed by measuring the rate of transudate formation (TF) on the epicardial surface, before as well as 5, 15 and 30 min after ischemia. Experiments were also performed in the presence of the NO-synthase inhibitor nitro-L-arginine (10 microM) and the ACE-inhibitor ramiprilat (2 microM), the latter known to enhance endogenous nitric oxide formation. Furthermore, the radical scavenger uric acid (0.5 mM) was applied either before and during ischemia or starting after PMN application. Ischemia/reperfusion increased coronary PMN adherence from 23 +/- 1% (basal) to 33 +/- 2%. Whereas ischemia alone did not influence TF (about 100 microliters/min during reperfusion), postischemic PMN infusion led to progressive TF. With nitro-L-arginine, PMN adhesion rose to 45 +/- 3%; TF increased to 212 +/- 30 microliters/min. In contrast, ramiprilat caused post-ischemic adhesion and TF to decline to basal values. In the presence of uric acid (UA) PMN adhesion declined to 26 +/- 2%, however, the subsequent increase in TF after withdrawal of UA was not markedly attenuated. On the other hand, infusion of UA after application of PMN caused a significant decrease of TF. The extracellular antioxidants SOD/catalase were without effect. As shown using luminol enhanced chemiluminescence. No was able to scavenge oxygen free radicals released by activated PMN. These findings indicate that enhanced PMN adhesion in reperfusion leads to an increase in coronary permeability. Scavenging of oxygen free radicals with NO or UA appears to mitigate both, postischemic PMN adhesion and PMN-induced vascular injury, even after adhesion.
Insights
Polymorphonuclear leukocytes (PMN) adhesion increases coronary permeability after ischemia/reperfusion. Nitric oxide (NO) or uric acid (UA) can mitigate this PMN-induced vascular injury by scavenging free radicals.
Area of Science:
- Cardiovascular Physiology
- Inflammation and Immunology
Background:
- Tissue edema is a common consequence of ischemia/reperfusion injury in organs.
- Polymorphonuclear leukocytes (PMN) are implicated in contributing to this injury.
Purpose of the Study:
- To investigate intracoronary PMN adhesion and its impact on vascular permeability during reperfusion in isolated guinea-pig hearts.
- To evaluate the effects of NO-synthase inhibition, ACE inhibition, and radical scavenging on PMN adhesion and vascular permeability.
Main Methods:
- Isolated guinea-pig hearts subjected to 15 min global ischemia followed by reperfusion.
- PMN infusion during early reperfusion to measure adhesion and transudate formation (TF).
- Assessment of TF as an indicator of coronary permeability.
- Pharmacological interventions included nitro-L-arginine (NO-synthase inhibitor), ramiprilat (ACE inhibitor), and uric acid (radical scavenger).
Main Results:
- Ischemia/reperfusion increased coronary PMN adherence.
- Postischemic PMN infusion significantly elevated TF, indicating increased vascular permeability.
- Nitro-L-arginine exacerbated PMN adhesion and TF, while ramiprilat reduced both.
- Uric acid mitigated PMN-induced TF, particularly when administered after PMN application.
- Nitric oxide (NO) was shown to scavenge oxygen free radicals released by activated PMN.
Conclusions:
- Enhanced PMN adhesion during reperfusion contributes to increased coronary vascular permeability.
- Scavenging of oxygen free radicals by NO or uric acid can attenuate postischemic PMN adhesion and PMN-induced vascular injury.