生物
神经科学
窦房结
细胞
计算生物学
细胞生物学
表型
遗传学
血压
基因
内分泌学
心率
作者
Kazumasa Kanemaru,James Cranley,Daniele Muraro,Antonio M. A. Miranda,Siew Yen Ho,Anna Wilbrey-Clark,J. Patrick Pett,Krzysztof Polański,Laura Richardson,Monika Litviňuková,Natsuhiko Kumasaka,Yue Qin,Zuzanna Jablonska,Claudia I. Semprich,Lukáš Mach,Monika Dabrowska,Nathan Richoz,Liam Bolt,Lira Mamanova,Rakeshlal Kapuge
出处
期刊:Nature
[Nature Portfolio]
日期:2023-07-12
卷期号:619 (7971): 801-810
被引量:356
标识
DOI:10.1038/s41586-023-06311-1
摘要
The function of a cell is defined by its intrinsic characteristics and its niche: the tissue microenvironment in which it dwells. Here we combine single-cell and spatial transcriptomics data to discover cellular niches within eight regions of the human heart. We map cells to microanatomical locations and integrate knowledge-based and unsupervised structural annotations. We also profile the cells of the human cardiac conduction system1. The results revealed their distinctive repertoire of ion channels, G-protein-coupled receptors (GPCRs) and regulatory networks, and implicated FOXP2 in the pacemaker phenotype. We show that the sinoatrial node is compartmentalized, with a core of pacemaker cells, fibroblasts and glial cells supporting glutamatergic signalling. Using a custom CellPhoneDB.org module, we identify trans-synaptic pacemaker cell interactions with glia. We introduce a druggable target prediction tool, drug2cell, which leverages single-cell profiles and drug-target interactions to provide mechanistic insights into the chronotropic effects of drugs, including GLP-1 analogues. In the epicardium, we show enrichment of both IgG+ and IgA+ plasma cells forming immune niches that may contribute to infection defence. Overall, we provide new clarity to cardiac electro-anatomy and immunology, and our suite of computational approaches can be applied to other tissues and organs.
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