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Digital PCR for Quantifying Circulating MicroRNAs in Acute Myocardial Infarction and Cardiovascular Disease
Published on: July 3, 2018
Circulating miRNAs Correlate With rIPC-Induced Cardioprotection and Its Impairment in Diabetic Myocardial Infarction
Yeyi Bai1, Bang'e Zhao1, Tingting Liu1
1Department of Anesthesiology, Shanghai University of Medicine & Health Sciences Affiliated Zhoupu Hospital, Shanghai, China.
Abstract:
Remote ischemic preconditioning (rIPC) has shown potential in protecting myocardial tissue against acute myocardial infarction (AMI), primarily through anti-apoptotic, anti-inflammatory, and anti-hypoxic mechanisms. However, its effectiveness is compromised in the presence of metabolic comorbidities such as diabetes. Circulating microRNAs (miRNAs), which act as intercellular communicators, have been implicated in the systemic effects of rIPC, but their profiles and underlying mechanisms in diabetic conditions remain unclear. We constructed AMI models in both diabetic and non-diabetic rats and performed rIPC treatment. Plasma samples were collected for miRNA sequencing to identify differentially expressed circulating miRNAs. We observed that rIPC significantly altered the expression of several circulating miRNAs, including miR-19a-3p, miR-221-5p and miR-210-5p, which were associated with improved cardiomyocyte survival under ischemic conditions. Conversely, miR-34a-3p, miR-532-5p and miR-410-5p were found to be up-regulated in diabetic rats and were associated with enhanced cardiomyocyte apoptosis, inflammation and impaired rIPC efficacy. These miRNAs may be downstream of AMPK signalling, suggesting a potential molecular association between rIPC and metabolic status. This study identifies a panel of circulating miRNAs that are associated with the beneficial effects of rIPC and those that are linked to its impairment under diabetic conditions. Our findings highlight circulating miRNAs as candidate modulators that may influence myocardial responses under comorbid AMI. Nevertheless, the cellular source and upstream regulation of these miRNAs, as well as their effects on non-cardiac organs, warrant further investigation.
Insights
Remote ischemic preconditioning (rIPC) protects heart tissue but is less effective in diabetes. Specific microRNAs (miRNAs) in the blood are linked to rIPC
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Metabolic Disease Research
Background:
- Remote ischemic preconditioning (rIPC) offers cardioprotection via anti-apoptotic and anti-inflammatory pathways.
- Diabetes mellitus impairs the efficacy of rIPC, necessitating investigation into underlying mechanisms.
- Circulating microRNAs (miRNAs) are key intercellular communicators, but their role in rIPC under diabetic conditions is not fully understood.
Purpose of the Study:
- To identify circulating miRNAs affected by rIPC in diabetic and non-diabetic rats with acute myocardial infarction (AMI).
- To elucidate the role of specific miRNAs in mediating or hindering the cardioprotective effects of rIPC in diabetes.
Main Methods:
- Construction of AMI models in diabetic and non-diabetic rats.
- Application of rIPC treatment to experimental groups.
- Plasma miRNA sequencing to identify differentially expressed circulating miRNAs.
Main Results:
- rIPC modulated specific circulating miRNAs (e.g., miR-19a-3p, miR-221-5p, miR-210-5p) associated with improved cardiomyocyte survival.
- Diabetic rats showed upregulation of miRNAs (e.g., miR-34a-3p, miR-532-5p, miR-410-5p) linked to increased apoptosis, inflammation, and reduced rIPC efficacy.
- Potential downstream regulation by AMPK signaling suggests a link between rIPC, miRNAs, and metabolic status.
Conclusions:
- Specific circulating miRNAs are associated with both the beneficial effects and the impairment of rIPC in diabetic conditions.
- These miRNAs represent potential modulators of myocardial response in patients with comorbid AMI and diabetes.
- Further research is needed to explore miRNA cellular origins, upstream regulation, and effects on non-cardiac organs.
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