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Published on: August 2, 2019
Future perspective of cardioplegic protection in cardiac surgery
Yuji Maruyama1, David J Chambers, Masami Ochi
1Department of Cardiovascular Surgery, Graduate School of Medicine, Nippon Medical School.
Insights
Hyperkalemic cardioplegia is standard for cardiac surgery but causes ionic imbalance. Alternative methods like magnesium and esmolol cardioplegia show promise for improved myocardial protection and safety.
Area of Science:
- Cardiovascular Surgery
- Cardiology
- Biochemistry
Background:
- Hyperkalemic cardioplegia induces "depolarized arrest" for temporary cardiac arrest during surgery.
- While effective, it can lead to detrimental ionic imbalances, including sodium and calcium overload.
- Safer and more effective alternatives are needed to enhance myocardial protection.
Purpose of the Study:
- To review the disadvantages of "depolarized arrest" using hyperkalemic cardioplegia.
- To assess the potential of "non-depolarized arrest" strategies.
- To evaluate alternative cardioplegic solutions and conditioning techniques for myocardial protection.
Main Methods:
- Review of existing literature on hyperkalemic cardioplegia.
- Analysis of studies on magnesium and esmolol cardioplegia.
- Examination of endogenous cardioprotective strategies like ischemic preconditioning and postconditioning.
Main Results:
- Magnesium and esmolol cardioplegia demonstrate superior myocardial protection with comparable safety to hyperkalemic solutions.
- Ischemic preconditioning and postconditioning offer potential benefits but their clinical application in cardiac surgery is controversial.
- Pharmacological approaches to preconditioning and postconditioning may overcome limitations.
Conclusions:
- "Non-depolarized arrest" using magnesium or esmolol cardioplegia presents a viable alternative to hyperkalemic cardioplegia.
- Further research is required to validate these alternative methods.
- While promising, the routine use of ischemic conditioning techniques in surgery faces challenges, but pharmacological strategies hold potential.
Abstract:
"Depolarized arrest", induced by hyperkalemic (moderately increased extracellular potassium) cardioplegia is the gold standard to achieve elective temporary cardiac arrest in cardiac surgery. Hyperkalemic cardioplegic solutions provide good myocardial protection, which is relatively safe and easily and rapidly reversible. However, this technique has detrimental effects associated with ionic imbalance involving sodium and calcium overload of the cardiac cell induced by depolarization of the cell membrane. Hence, the development of an improved cardioplegic solution that enhances myocardial protection would be expected as an alternative to hyperkalemic cardioplegia. In this review, we assess the potential disadvantages of "depolarized arrest" and the suitability and clinical potential of "non-depolarized arrest". "Magnesium cardioplegia" and "esmolol cardioplegia" has been shown to exert superior protection with comparable safety profiles to that of hyperkalemic cardioplegia. These alternative techniques require further examination and investigation to challenge the traditional view that hyperkalemic arrest is best. Endogenous cardioprotective strategies, termed "ischemic preconditioning" and "ischemic postconditioning", may have a role in cardiac surgery to provide additional protection. The elective nature of cardiac surgery, with the known onset of ischemia and reperfusion, lends it to the potential of these strategies. However, the benefit of preconditioning and postconditioning during cardiac surgery is controversial, particularly in the context of cardioplegia. The clinical application of these strategies is unlikely to become routine during cardiac surgery because of the necessity for repeated aortic crossclamping with consequent potential for embolic events, but offers considerable potential especially if "pharmacological" preconditioning and postconditioning could be established.
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