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Dbh 儿茶酚胺能性心肌细胞有助于小鼠心脏心脏传导系统的结构和功能。

Dbh catecholaminergic cardiomyocytes contribute to the structure and function of the cardiac conduction system in murine heart.

机构信息

Department of Pharmacology, University of Oxford, Mansfield Road, Oxford, OX1 3QT, UK.

Key Laboratory of Medical Electrophysiology of the Ministry of Education, and Medical Electrophysiological Key Laboratory of Sichuan Province, Institute of Cardiovascular Research, Southwest Medical University, Luzhou, Sichuan, 646000, China.

出版信息

Nat Commun. 2023 Nov 28;14(1):7801. doi: 10.1038/s41467-023-42658-9.

Abstract

The heterogeneity of functional cardiomyocytes arises during heart development, which is essential to the complex and highly coordinated cardiac physiological function. Yet the biological and physiological identities and the origin of the specialized cardiomyocyte populations have not been fully comprehended. Here we report a previously unrecognised population of cardiomyocytes expressing Dbhgene encoding dopamine beta-hydroxylase in murine heart. We determined how these myocytes are distributed across the heart by utilising advanced single-cell and spatial transcriptomic analyses, genetic fate mapping and molecular imaging with computational reconstruction. We demonstrated that they form the key functional components of the cardiac conduction system by using optogenetic electrophysiology and conditional cardiomyocyte Dbh gene deletion models. We revealed their close relationship with sympathetic innervation during cardiac conduction system formation. Our study thus provides new insights into the development and heterogeneity of the mammalian cardiac conduction system by revealing a new cardiomyocyte population with potential catecholaminergic endocrine function.

摘要

功能性心肌细胞的异质性在心脏发育过程中产生,这对复杂且高度协调的心脏生理功能至关重要。然而,专门的心肌细胞群体的生物学和生理学特性及其起源尚未完全被理解。在这里,我们报告了在小鼠心脏中表达多巴胺 β-羟化酶的 Dbhgene 编码的心肌细胞的一个以前未被识别的群体。我们通过利用先进的单细胞和空间转录组分析、遗传命运图谱和具有计算重构的分子成像,确定了这些心肌细胞在心脏中的分布情况。我们通过光遗传学电生理学和条件性心肌细胞 Dbh 基因缺失模型证明了它们是心脏传导系统的关键功能组成部分。我们揭示了它们在心脏传导系统形成过程中与交感神经支配的密切关系。因此,我们的研究通过揭示具有潜在儿茶酚胺内分泌功能的新心肌细胞群体,为哺乳动物心脏传导系统的发育和异质性提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac4a/10684617/86c5debd94bc/41467_2023_42658_Fig1_HTML.jpg

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