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Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Involvement of Oxidative Stress and Antioxidants in Modification of Cardiac Dysfunction Due to Ischemia-Reperfusion
Naranjan S Dhalla1, Petr Ostadal2, Paramjit S Tappia3
1St. Boniface Hospital Albrechtsen Research Centre, Institute of Cardiovascular Sciences, Department of Physiology & Pathophysiology, Max Rady College of Medicine, University of Manitoba, Winnipeg, MB R2H 2A6, Canada.
Abstract:
Delayed reperfusion of the ischemic heart (I/R) is known to impair the recovery of cardiac function and produce a wide variety of myocardial defects, including ultrastructural damage, metabolic alterations, subcellular Ca2+-handling abnormalities, activation of proteases, and changes in cardiac gene expression. Although I/R injury has been reported to induce the formation of reactive oxygen species (ROS), inflammation, and intracellular Ca2+ overload, the generation of oxidative stress is considered to play a critical role in the development of cardiac dysfunction. Increases in the production of superoxide, hydroxyl radicals, and oxidants, such as hydrogen peroxide and hypochlorous acid, occur in hearts subjected to I/R injury. In fact, mitochondria are a major source of the excessive production of ROS in I/R hearts due to impairment in the electron transport system as well as activation of xanthine oxidase and NADPH oxidase. Nitric oxide synthase, mainly present in the endothelium, is also activated due to I/R injury, leading to the production of nitric oxide, which, upon combination with superoxide radicals, generates nitrosative stress. Alterations in cardiac function, sarcolemma, sarcoplasmic reticulum Ca2+-handling activities, mitochondrial oxidative phosphorylation, and protease activation due to I/R injury are simulated upon exposing the heart to the oxyradical-generating system (xanthine plus xanthine oxidase) or H2O2. On the other hand, the activation of endogenous antioxidants such as superoxide dismutase, catalase, glutathione peroxidase, and the concentration of a transcription factor (Nrf2), which modulates the expression of various endogenous antioxidants, is depressed due to I/R injury in hearts. Furthermore, pretreatment of hearts with antioxidants such as catalase plus superoxide dismutase, N-acetylcysteine, and mercaptopropionylglycerine has been observed to attenuate I/R-induced subcellular Ca2+ handling and changes in Ca2+-regulatory activities; additionally, it has been found to depress protease activation and improve the recovery of cardiac function. These observations indicate that oxidative stress is intimately involved in the pathological effects of I/R injury and different antioxidants attenuate I/R-induced subcellular alterations and improve the recovery of cardiac function. Thus, we are faced with the task of developing safe and effective antioxidants as well as agents for upregulating the expression of endogenous antioxidants for the therapy of I/R injury.
Insights
Delayed reperfusion (I/R) impairs heart function by causing oxidative stress. Antioxidants can protect the heart by reducing this damage and improving recovery from I/R injury.
Area of Science:
- Cardiology
- Biochemistry
- Pathology
Background:
- Delayed reperfusion after ischemia (I/R) significantly impairs cardiac function and causes myocardial damage.
- Oxidative stress, driven by reactive oxygen species (ROS) and nitrosative stress, is a key factor in I/R-induced cardiac dysfunction.
- Mitochondria, xanthine oxidase, and NADPH oxidase are major sources of ROS in I/R hearts, while nitric oxide synthase contributes to nitrosative stress.
Purpose of the Study:
- To investigate the role of oxidative stress in myocardial defects following I/R injury.
- To evaluate the therapeutic potential of antioxidants in mitigating I/R-induced cardiac damage.
- To explore strategies for upregulating endogenous antioxidant defenses for I/R injury therapy.
Main Methods:
- Induction of I/R injury in cardiac models.
- Simulation of I/R injury effects using oxyradical-generating systems (e.g., xanthine/xanthine oxidase, H2O2).
- Administration of exogenous antioxidants (e.g., catalase, superoxide dismutase, N-acetylcysteine) and assessment of endogenous antioxidant levels (e.g., Nrf2).
Main Results:
- I/R injury leads to increased ROS and nitrosative stress, affecting cardiac function, calcium handling, and protease activity.
- Exogenous antioxidants attenuated I/R-induced subcellular damage, improved calcium handling, reduced protease activation, and enhanced cardiac function recovery.
- I/R injury was found to depress endogenous antioxidant systems, including superoxide dismutase, catalase, glutathione peroxidase, and Nrf2.
Conclusions:
- Oxidative stress is critically involved in the pathophysiology of I/R injury.
- Antioxidant interventions show promise in protecting the heart against I/R-induced damage and improving functional recovery.
- Developing novel antioxidants and strategies to boost endogenous antioxidant defenses is crucial for treating I/R injury.
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