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Published on: January 26, 2024
Circulating blood cells and extracellular vesicles in acute cardioprotection
Sean M Davidson1, Ioanna Andreadou2, Lucio Barile3
1The Hatter Cardiovascular Institute, University College London, 67 Chenies Mews, London, UK.
Insights
Circulating factors like erythrocytes and platelets, along with vesicles and microRNAs, significantly impact ischemia-reperfusion injury in ST-elevation myocardial infarction (STEMI). Targeting these non-cardiomyocyte elements offers novel therapeutic strategies for heart protection.
Area of Science:
- Cardiovascular Research
- Cellular and Molecular Medicine
- Ischemia-Reperfusion Injury
Background:
- ST-elevation myocardial infarction (STEMI) involves prolonged cardiac ischemia, where reperfusion therapy, while essential, can exacerbate injury.
- Traditional research focused on cardiomyocytes, but non-cardiomyocyte cells and circulating factors are increasingly recognized for their roles in myocardial damage.
- Understanding these non-myocyte contributions is crucial for developing advanced cardioprotective strategies.
Purpose of the Study:
- To explore the role of non-cardiomyocyte cells and circulating factors in ischemia-reperfusion (IR) injury during STEMI.
- To identify potential therapeutic targets beyond cardiomyocytes for limiting cardiac damage.
- To discuss the influence of comorbidities like diabetes on IR injury and therapeutic approaches.
Main Methods:
- Review of experimental evidence on circulating cells (erythrocytes, platelets) and their secreted factors (nitric oxide, S1P, PAF, cytokines).
- Analysis of the impact of circulating vesicles (microvesicles, exosomes) and microRNAs (miRNAs) on IR injury.
- Discussion of potential therapeutic strategies involving synthetic miRNAs and other circulating factor modulation.
Main Results:
- Erythrocytes protect the heart via nitric oxide export.
- Platelets release factors (S1P, PAF, cytokines) that modulate IR injury, relevant to anti-platelet therapy.
- Circulating vesicles and miRNAs can mediate both beneficial and detrimental effects on IR injury.
- Comorbidities like diabetes influence IR injury outcomes.
Conclusions:
- Non-cardiomyocyte cells and circulating factors are critical players in myocardial IR injury.
- Modulating these elements, including erythrocytes, platelets, vesicles, and miRNAs, presents promising therapeutic avenues.
- Future strategies should consider the broader cellular and molecular milieu, including patient comorbidities, for effective cardioprotection in STEMI.
Abstract:
During an ST-elevation myocardial infarction (STEMI), the myocardium undergoes a prolonged period of ischaemia. Reperfusion therapy is essential to minimize cardiac injury but can paradoxically cause further damage. Experimental procedures to limit ischaemia and reperfusion (IR) injury have tended to focus on the cardiomyocytes since they are crucial for cardiac function. However, there is increasing evidence that non-cardiomyocyte resident cells in the heart (as discussed in a separate review in this Spotlight series) as well as circulating cells and factors play important roles in this pathology. For example, erythrocytes, in addition to their main oxygen-ferrying role, can protect the heart from IR injury via the export of nitric oxide bioactivity. Platelets are well-known to be involved in haemostasis and thrombosis, but beyond these roles, they secrete numerous factors including sphingosine-1 phosphate (S1P), platelet activating factor, and cytokines that can all strongly influence the development of IR injury. This is particularly relevant given that most STEMI patients receive at least one type of platelet inhibitor. Moreover, there are large numbers of circulating vesicles in the blood, including microvesicles and exosomes, which can exert both beneficial and detrimental effects on IR injury. Some of these effects are mediated by the transfer of microRNA (miRNA) to the heart. Synthetic miRNA molecules may offer an alternative approach to limiting the response to IR injury. We discuss these and other circulating factors, focussing on potential therapeutic targets relevant to IR injury. Given the prevalence of comorbidities such as diabetes in the target patient population, their influence will also be discussed. This article is part of a Cardiovascular Research Spotlight Issue entitled 'Cardioprotection Beyond the Cardiomyocyte', and emerged as part of the discussions of the European Union (EU)-CARDIOPROTECTION Cooperation in Science and Technology (COST) Action, CA16225.
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