上调的新miR-17通过负靶向Gja1和介导激活PKC/c-Jun信号通路,促进低温再灌注心律失常。

IF 4.9 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS Journal of molecular and cellular cardiology Pub Date : 2024-05-23 DOI:10.1016/j.yjmcc.2024.05.009
Jing Yi , Kaiyuan Chen , Ying Cao , Chunlei Wen , Li An , Rui Tong , Xueyan Wu , Hong Gao
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引用次数: 0

摘要

背景:低体温缺血再灌注心律失常是心肺旁路下心胸手术的常见并发症,但很少有研究关注这类心律失常。我们之前的研究发现,心肌 Cx43 蛋白水平降低可能与低体温再灌注心律失常有关。然而,还需要更详细的分子机制研究:方法:采用实时定量 PCR(RT-qPCR)技术检测心肌组织中 microRNA 和 mRNA 的表达水平。方法:通过实时定量 PCR(RT-qPCR)检测心肌组织中 microRNA 和 microRNA 的表达水平,并通过心电图和心室外膜激活图评估低温再灌注心律失常的发生和心肌电传导的变化。此外,还进行了生物信息学分析、应用 miRNA 拮抗剂、Western 印迹、免疫组织化学、双荧光素酶检测和皮尔逊相关分析,以研究其潜在的分子机制:结果:在低温缺血再灌注心肌组织中,novel-miR-17的表达水平上调。抑制novel-miR-17的上调可改善心肌细胞水肿,减少细胞凋亡,提高心肌电传导速度,缩短再灌注心律失常的持续时间。机制研究表明,new-miR-17 通过直接靶向 Gja1 减少了 Cx43 的表达,同时介导了 PKC/c-Jun 信号通路的激活:结论:上调的novel-miR-17是一种新发现的促心律失常microRNA,可作为低温再灌注心律失常的潜在治疗靶点和生物标志物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Up-regulated novel-miR-17 promotes hypothermic reperfusion arrhythmias by negatively targeting Gja1 and mediating activation of the PKC/c-Jun signaling pathway

Background

Hypothermic ischemia-reperfusion arrhythmia is a common complication of cardiothoracic surgery under cardiopulmonary bypass, but few studies have focused on this type of arrhythmia. Our prior study discovered reduced myocardial Cx43 protein levels may be linked to hypothermic reperfusion arrhythmias. However, more detailed molecular mechanism research is required.

Method

The microRNA and mRNA expression levels in myocardial tissues were detected by real-time quantitative PCR (RT-qPCR). Besides, the occurrence of hypothermic reperfusion arrhythmias and changes in myocardial electrical conduction were assessed by electrocardiography and ventricular epicardial activation mapping. Furthermore, bioinformatics analysis, applying antagonists of miRNA, western blotting, immunohistochemistry, a dual luciferase assay, and pearson correlation analysis were performed to investigate the underlying molecular mechanisms.

Results

The expression level of novel-miR-17 was up-regulated in hypothermic ischemia-reperfusion myocardial tissues. Inhibition of novel-miR-17 upregulation ameliorated cardiomyocyte edema, reduced apoptosis, increased myocardial electrical conduction velocity, and shortened the duration of reperfusion arrhythmias. Mechanistic studies showed that novel-miR-17 reduced the expression of Cx43 by directly targeting Gja1 while mediating the activation of the PKC/c-Jun signaling pathway.

Conclusion

Up-regulated novel-miR-17 is a newly discovered pro-arrhythmic microRNA that may serve as a potential therapeutic target and biomarker for hypothermic reperfusion arrhythmias.

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来源期刊
CiteScore
10.70
自引率
0.00%
发文量
171
审稿时长
42 days
期刊介绍: The Journal of Molecular and Cellular Cardiology publishes work advancing knowledge of the mechanisms responsible for both normal and diseased cardiovascular function. To this end papers are published in all relevant areas. These include (but are not limited to): structural biology; genetics; proteomics; morphology; stem cells; molecular biology; metabolism; biophysics; bioengineering; computational modeling and systems analysis; electrophysiology; pharmacology and physiology. Papers are encouraged with both basic and translational approaches. The journal is directed not only to basic scientists but also to clinical cardiologists who wish to follow the rapidly advancing frontiers of basic knowledge of the heart and circulation.
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Editorial Board PERM1 regulates mitochondrial energetics through O-GlcNAcylation in the heart Corrigendum to "PGE2 protects against heart failure through inhibiting TGF-β1 synthesis in cardiomyocytes and crosstalk between TGF-β1 and GRK2" [Journal of Molecular and Cellular Cardiology. 172(2022) 63-77]. Retraction notice to “The novel antibody fusion protein rhNRG1-HER3i promotes heart regeneration by enhancing NRG1-ERBB4 signaling pathway” [Journal of Molecular and Cellular Cardiology 187 (2023) 26–37] Exercise training attenuates cardiac dysfunction induced by excessive sympathetic activation through an AMPK-KLF4-FMO2 axis
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