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Dual role of miR-1 in the development and function of sinoatrial cells.miR-1在窦房结细胞发育和功能中的双重作用。
J Mol Cell Cardiol. 2021 Aug;157:104-112. doi: 10.1016/j.yjmcc.2021.05.001. Epub 2021 May 6.
2
MiR-23a Is Involved in Myocardial Ischemia/Reperfusion Injury by Directly Targeting CX43 and Regulating Mitophagy.miR-23a 通过直接靶向 CX43 并调节线粒体自噬参与心肌缺血/再灌注损伤。
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Inhibiting microRNA-155 attenuates atrial fibrillation by targeting CACNA1C.抑制 microRNA-155 通过靶向 CACNA1C 减轻心房颤动。
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MicroRNA Biophysically Modulates Cardiac Action Potential by Direct Binding to Ion Channel.MicroRNA 通过直接与离子通道结合来调节心肌动作电位的生物物理特性。
Circulation. 2021 Apr 20;143(16):1597-1613. doi: 10.1161/CIRCULATIONAHA.120.050098. Epub 2021 Feb 16.
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Heart Disease and Stroke Statistics-2021 Update: A Report From the American Heart Association.心脏病与中风统计-2021 更新:美国心脏协会报告。
Circulation. 2021 Feb 23;143(8):e254-e743. doi: 10.1161/CIR.0000000000000950. Epub 2021 Jan 27.
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Gene regulation by long non-coding RNAs and its biological functions.长非编码 RNA 的基因调控及其生物学功能。
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MIR448 antagomir reduces arrhythmic risk after myocardial infarction by upregulating the cardiac sodium channel.MIR448 反义寡核苷酸通过上调心脏钠离子通道降低心肌梗死后的心律失常风险。
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Identification of Key Small Non-Coding MicroRNAs Controlling Pacemaker Mechanisms in the Human Sinus Node.鉴定控制人心房结起博机制的关键微小非编码 miRNAs。
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MicroRNAs: roles in cardiovascular development and disease.微小 RNA:在心血管发育和疾病中的作用。
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Position-specific oxidation of miR-1 encodes cardiac hypertrophy.miR-1的位点特异性氧化编码心肌肥大。
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微小RNA对心脏电生理学的多层调控

Multilayer control of cardiac electrophysiology by microRNAs.

作者信息

Yang Dandan, Deschênes Isabelle, Fu Ji-Dong

机构信息

The Dorothy M. Davis Heart and Lung Research Institute, Frick Center for Heart Failure and Arrhythmia, Department of Physiology and Cell Biology, The Ohio State University, 333 W. 10(th) Avenue, Columbus, OH 43210, USA.

The Dorothy M. Davis Heart and Lung Research Institute, Frick Center for Heart Failure and Arrhythmia, Department of Physiology and Cell Biology, The Ohio State University, 333 W. 10(th) Avenue, Columbus, OH 43210, USA.

出版信息

J Mol Cell Cardiol. 2022 May;166:107-115. doi: 10.1016/j.yjmcc.2022.02.007. Epub 2022 Mar 3.

DOI:10.1016/j.yjmcc.2022.02.007
PMID:35247375
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9035102/
Abstract

The electrophysiological properties of the heart include cardiac automaticity, excitation (i.e., depolarization and repolarization of action potential) of individual cardiomyocytes, and highly coordinated electrical propagation through the whole heart. An abnormality in any of these properties can cause arrhythmias. MicroRNAs (miRs) have been recognized as essential regulators of gene expression through the conventional RNA interference (RNAi) mechanism and are involved in a variety of biological events. Recent evidence has demonstrated that miRs regulate the electrophysiology of the heart through fine regulation by the conventional RNAi mechanism of the expression of ion channels, transporters, intracellular Ca-handling proteins, and other relevant factors. Recently, a direct interaction between miRs and ion channels has also been reported in the heart, revealing a biophysical modulation by miRs of cardiac electrophysiology. These advanced discoveries suggest that miR controls cardiac electrophysiology through two distinct mechanisms: immediate action through biophysical modulation and long-term conventional RNAi regulation. Here, we review the recent research progress and summarize the current understanding of how miR manipulates the function of ion channels to maintain the homeostasis of cardiac electrophysiology.

摘要

心脏的电生理特性包括心脏自动节律性、单个心肌细胞的兴奋(即动作电位的去极化和复极化)以及通过整个心脏的高度协调的电传导。这些特性中的任何一个出现异常都可能导致心律失常。微小RNA(miR)已被公认为通过传统的RNA干扰(RNAi)机制对基因表达进行关键调控,并参与多种生物学事件。最近的证据表明,miR通过传统RNAi机制对离子通道、转运体、细胞内钙处理蛋白及其他相关因子的表达进行精细调控,从而调节心脏的电生理。最近,心脏中也报道了miR与离子通道之间的直接相互作用,揭示了miR对心脏电生理的生物物理调节作用。这些新发现表明,miR通过两种不同机制控制心脏电生理:通过生物物理调节的即时作用和长期的传统RNAi调节。在此,我们综述了最近的研究进展,并总结了目前对miR如何操纵离子通道功能以维持心脏电生理稳态的理解。