分子生物学
IVD分子诊断
细胞培养与分析
蛋白研究
细胞因子
重组蛋白
抗体
高通量测序建库
病原检测UCF系列
生物医药
工具酶
抑制剂激活剂与常用试剂
仪器
耗材

Human PSC-derived sinoatrial node-cardiac plexus assembloids model innervation-associated maturation of pacemaker systems

Tongdong Zhang, Lei Fan, Feibai Yao, Ge Li, Guotong Lin, Yi Yang, Fenglin Qian, Chencheng Liu, Qi Tang, Wendi Wang, Chunfang Xu, Xiaoliang Xu, Yu Chang, Wen Yang, Jiangdong Gong, Yutong Wang, Shichao

Journal:Cell Stem Cell

IF:23.3

DOI:10.1016/j.stem.2026.04.018

PMID:42143017

Published:2026-05-15

research field:分子生物学神经心脏病学干细胞研究心脏病学再生医学发育生物学

Abstract

Heart rhythm and contraction are initiated by electrical impulses generated by the sinoatrial node (SAN) and modulated by intrinsic cardiac neural inputs. Despite its physiological importance, human in vitro systems that recapitulate neural-SAN interactions are lacking. Here, we develop SAN-plexus assembloids by integrating human pluripotent stem cell-derived SAN organoids (SANOs) with cardiac ganglionated plexus organoids (CGPOs), together with atrial-like cardiac organoids, to model pacemaker-to-atrial conduction in a tri-assembloid system. This platform exhibits molecular, structural, and electrophysiological features of human pacemaker activity and enables functional interrogation of neural control over SAN automaticity, including disease-associated conduction dysfunction. By integrating spatial transcriptomics of human SAN tissue with assembloid-based functional analyses, we identify a neuron-to-pacemaker signaling program in which CGPO-derived prosaposin engages the SAN-enriched receptor GPR37 to promote pacemaker maturation. Together, this work establishes SAN-plexus assembloids as a human platform for studying intrinsic neuro-cardiac interactions in pacemaker development and disease.

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