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Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
CIRKIL Exacerbates Cardiac Ischemia/Reperfusion Injury by Interacting With Ku70
Hongwen Xiao1, Mingyu Zhang1, Hao Wu1,2
1Department of Pharmacology, State-Province Key Laboratories of Biomedicine-Pharmaceutics of China, Key Laboratory of Cardiovascular Medicine Research, Ministry of Education (H.X., M.Z., H.W., J.W., X.H., X.P., D.L., L.Z., Q.H., B.M., X.Z., L.P., Z.L., W.Y., Q.Z., Y.Z., Y.L., Z.P.), Harbin Medical University, P.R. China.
Insights
Cardiac ischemia reperfusion associated Ku70 interacting lncRNA (CIRKIL) aggravates heart injury by impairing DNA repair. Reducing CIRKIL may offer a new therapeutic strategy for myocardial infarction and related cardiac conditions.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Ku70 is crucial for DNA double-strand break repair, a process implicated in various pathologies.
- A long noncoding RNA, CIRKIL, was previously identified and found upregulated in myocardial infarction.
- CIRKIL's role in myocardial ischemia/reperfusion (I/R) injury via Ku70 interaction requires investigation.
Purpose of the Study:
- To investigate the role of CIRKIL in myocardial I/R injury.
- To determine if CIRKIL regulates I/R injury by interacting with Ku70.
Main Methods:
- Myocardial I/R models were established in CIRKIL transgenic and knockout mice.
- RNA pull-down and RNA immunoprecipitation assays were employed to confirm CIRKIL-Ku70 interaction.
Main Results:
- CIRKIL expression increased in I/R myocardium and cardiomyocytes exposed to H2O2.
- CIRKIL overexpression exacerbated DNA damage and apoptosis, while CIRKIL knockdown showed protective effects.
- CIRKIL directly binds Ku70, inhibiting its nuclear translocation and impairing DNA repair, thus worsening I/R injury.
Conclusions:
- CIRKIL acts as a detrimental factor in I/R injury by disrupting Ku70-mediated DNA repair.
- CIRKIL presents a potential novel molecular target for treating cardiac I/R injury.
Background:
Ku70 participates in several pathological processes through mediating repair of DNA double-strand breaks. Our previous study has identified a highly conserved long noncoding RNA cardiac ischemia reperfusion associated Ku70 interacting lncRNA (CIRKIL) that was upregulated in myocardial infarction. The study aims to investigate whether CIRKIL regulates myocardial ischemia/reperfusion (I/R) through binding to Ku70.
Methods:
CIRKIL transgenic and knockout mice were subjected to 45-minute ischemia and 24-hour reperfusion to establish myocardial I/R model. RNA pull-down and RNA immunoprecipitation assay were used to detect the interaction between CIRKIL and Ku70.
Results:
The expression of CIRKIL was increased in I/R myocardium and H2O2-treated cardiomyocytes. Overexpression of CIRKIL increased the expression of γH2A.X, a specific marker of DNA double-strand breaks and aggravated cardiomyocyte apoptosis, whereas knockdown of CIRKIL produced the opposite changes. Transgenic overexpression of CIRKIL aggravated cardiac dysfunction, enlarged infarct area, and worsened cardiomyocyte damage in I/R mice. Knockout of CIRKIL alleviated myocardial I/R injury. Mechanistically, CIRKIL directly bound to Ku70 to subsequently decrease nuclear translocation of Ku70 and impair DNA double-strand breaks repair. Concurrent overexpression of Ku70 mitigated CIRKIL overexpression-induced myocardial I/R injury. Furthermore, knockdown of human CIRKIL significantly suppressed cell damage induced by H2O2 in adult human ventricular cardiomyocytes and human induced pluripotent stem cell-derived cardiomyocytes.
Conclusions:
CIRKIL is a detrimental factor in I/R injury acting via regulating nuclear translocation of Ku70 and DNA double-strand breaks repair. Thus, CIRKIL might be considered as a novel molecular target for the treatment of cardiac conditions associated with I/R injury.
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