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内源性胆碱能系统控制心脏的电传导。

An endogenous cholinergic system controls electrical conduction in the heart.

作者信息

Xie Duanyang, Xiong Ke, Dong Nianguo, Wang Guanghua, Zou Qicheng, Shao Beihua, Chen Zhiwen, Wang Luxin, Kong Yu, Wang Xu, Su Xuling, Bai Wenli, Yang Jian, Liu Yi, Zhou Bin, Chen Yi-Han

机构信息

State Key Laboratory of Cardiovascular Diseases, Shanghai East Hospital, School of Medicine, Tongji University, Shanghai 200120, China.

Shanghai Arrhythmia Research Center, Shanghai East Hospital, School of Medicine, Tongji University, Shanghai 200120, China.

出版信息

Eur Heart J. 2025 Apr 1;46(13):1232-1246. doi: 10.1093/eurheartj/ehae699.

Abstract

BACKGROUND AND AIMS

The cholinergic system is distributed in the nervous system, mediating electrical conduction through acetylcholine (ACh). This study aims to identify whether the heart possesses an intact endogenous cholinergic system and to explore its electrophysiological functions and relationship with arrhythmias in both humans and animals.

METHODS

The components of the heart's endogenous cholinergic system were identified by a combination of multiple molecular cell biology techniques. The relationship of this system with cardiac electrical conduction and arrhythmias was analysed through electrophysiological techniques.

RESULTS

An intact cholinergic system including ACh, ACh transmitter vesicles, ACh transporters, ACh metabolic enzymes, and ACh receptors was identified in both human and mouse ventricular cardiomyocytes (VCs). The key components of the system significantly regulated the conductivity of electrical excitation among VCs. The influence of this system on electrical excitation conduction was further confirmed both in the mice with α4 or α7 nicotinic ACh receptors (nAChRs) knockouts and in the monolayers of human induced pluripotent stem cell-derived cardiomyocytes. Mechanistically, ACh induced an inward current through nAChRs to reduce the minimum threshold current required to generate an action potential in VCs, thereby enhancing the excitability that acts as a prerequisite for electrical conduction. Importantly, defects in this system were associated with fatal ventricular arrhythmias in both patients and mice.

CONCLUSIONS

This study identifies an integrated cholinergic system inherent to the heart, rather than external nerves that can effectively control cardiac electrical conduction. The discovery reveals arrhythmia mechanisms beyond classical theories and opens new directions for arrhythmia research.

摘要

背景与目的

胆碱能系统分布于神经系统,通过乙酰胆碱(ACh)介导电传导。本研究旨在确定心脏是否拥有完整的内源性胆碱能系统,并探讨其电生理功能以及在人类和动物中与心律失常的关系。

方法

通过多种分子细胞生物学技术相结合的方法鉴定心脏内源性胆碱能系统的组成部分。通过电生理技术分析该系统与心脏电传导及心律失常的关系。

结果

在人类和小鼠心室肌细胞(VCs)中均鉴定出一个完整的胆碱能系统,包括ACh、ACh递质囊泡、ACh转运体、ACh代谢酶和ACh受体。该系统的关键组成部分显著调节了VCs之间电兴奋的传导性。在α4或α7烟碱型ACh受体(nAChRs)敲除的小鼠以及人诱导多能干细胞衍生的心肌细胞单层中,进一步证实了该系统对电兴奋传导的影响。从机制上讲,ACh通过nAChRs诱导内向电流,以降低在VCs中产生动作电位所需的最小阈值电流,从而增强作为电传导前提条件的兴奋性。重要的是,该系统的缺陷与患者和小鼠的致命性室性心律失常有关。

结论

本研究确定了心脏固有的一个完整胆碱能系统,而非可有效控制心脏电传导的外部神经。这一发现揭示了超越经典理论的心律失常机制,并为心律失常研究开辟了新方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ad1/11959186/557e7e7c4a4f/ehae699_sga.jpg

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