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Updated: Apr 22, 2026

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Redox signalling and cardioprotection: translatability and mechanism
1Department of Clinical and Biological Sciences, University of Torino, 10043, Orbassano, Turin, Italy.
Insights
Coronary artery disease (CAD) causes significant mortality. Ischaemia/reperfusion (I/R) injury, driven by redox stress, complicates treatment, necessitating novel cardioprotective strategies.
Area of Science:
- Cardiovascular Science
- Biochemistry
- Cellular Biology
Background:
- Coronary artery disease (CAD) remains a leading cause of global morbidity and mortality.
- While acute myocardial infarction treatments have improved, early reperfusion paradoxically causes additional ischaemia/reperfusion (I/R) injury.
- Currently, no effective therapies exist for I/R injury, where redox stress is a key factor.
Purpose of the Study:
- To review the pivotal role of the redox environment in both I/R injury and cardioprotection.
- To explore the mechanisms of conditioning strategies (pre- and post-conditioning) in reducing infarct size.
- To investigate the emerging roles of nitrosative signalling and cysteine redox modifications in cardioprotection.
Main Methods:
- Literature review of studies on redox signalling in I/R injury and cardioprotection.
- Analysis of evidence for the role of redox and nitrosative signalling in conditioning protocols.
- Examination of factors influencing the switch between protective and deleterious redox signalling.
Main Results:
- The redox environment critically influences I/R injury and cardioprotection.
- Conditioning strategies significantly reduce infarct size in animal models, with redox signalling playing a paramount role.
- Nitrosative signalling and cysteine redox modifications are key mechanisms in conditioning-induced cardioprotection.
Conclusions:
- Understanding the switch from protective to deleterious redox signalling is crucial for developing effective I/R injury therapies.
- Complex regulation of this switch may explain diminished cardioprotection in aging, comorbidities, and humans.
- Novel, mechanistic therapeutic strategies are needed to protect the heart from I/R injury and improve CAD patient outcomes.
Abstract:
The morbidity and mortality from coronary artery disease (CAD) remain significant worldwide. The treatment for acute myocardial infarction has improved over the past decades, including early reperfusion of culprit coronary arteries. Although it is mandatory to reperfuse the ischaemic territory as soon as possible, paradoxically this leads to additional myocardial injury, namely ischaemia/reperfusion (I/R) injury, in which redox stress plays a pivotal role and for which no effective therapy is currently available. In this review, we report evidence that the redox environment plays a pivotal role not only in I/R injury but also in cardioprotection. In fact, cardioprotective strategies, such as pre- and post-conditioning, result in a robust reduction in infarct size in animals and the role of redox signalling is of paramount importance in these conditioning strategies. Nitrosative signalling and cysteine redox modifications, such as S-nitrosation/S-nitrosylation, are also emerging as very important mechanisms in conditioning cardioprotection. The reasons for the switch from protective oxidative/nitrosative signalling to deleterious oxidative/nitrosative/nitrative stress are not fully understood. The complex regulation of this switch is, at least in part, responsible for the diminished or lack of cardioprotection induced by conditioning protocols observed in ageing animals and with co-morbidities as well as in humans. Therefore, it is important to understand at a mechanistic level the reasons for these differences before proposing a safe and useful transition of ischaemic or pharmacological conditioning. Indeed, more mechanistic novel therapeutic strategies are required to protect the heart from I/R injury and to improve clinical outcomes in patients with CAD.
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