Dual-Target Cardiac Regeneration: Controllable Nfyb/Nr3c1 Cointervention Spurs Cardiomyocyte Cytokinesis After Myocardial Infarction

BACKGROUND: Myocardial infarction can cause a massive loss of functional cardiomyocytes, yet effective strategies to stimulate cardiac regeneration remain lacking. A key barrier to adult cardiomyocyte proliferation appears to be cytokinesis inhibition. This study aimed to determine whether combining proliferation stimulators with the removal of cytokinesis-inhibitory constraints could unlock regenerative potential after myocardial infarction. METHODS: Transcriptomic profile from 5 regeneration models, including Aurkb -tdTomato cytokinesis reporter mice and Myh6 -MerCreMer;mosaic analysis with double markers (MADM), and cross-species comparative analysis were used to explore the regulatory networks for cardiomyocyte proliferation. MADM mice were used to evaluate cardiac regeneration by quantifying after cytokinesis new cardiomyocytes and clonal clusters. RESULTS: Integrative multimodel analysis revealed a dual regulatory control system for cardiomyocyte proliferation, along with key associated genes and transcriptional regulators. Nfyb was identified as an activator and Nr3c1 as a repressor of cardiomyocyte proliferation. Nfyb overexpression enhanced cardiomyocyte proliferation and post–myocardial infarction cardiac repair through propelling cell-cycle gene transcription. Nr3c1 inhibition promoted cardiomyocyte proliferation, improved cardiac function, and reduced infarct size. A spatiotemporally controlled adeno-associated virus 9 system combining drug-inducible Nfyb overexpression and CRISPR/enOsCas12f1–mediated Nr3c1 deletion efficiently induces cardiomyocyte proliferation. Clonal analysis using MADM mice showed that the dual intervention synergistically increased new cardiomyocyte formation (28% clustered, >28-fold versus control). The enhanced regenerative effect of the dual intervention was demonstrated in post–myocardial infarction mice and human engineered heart tissues. CONCLUSIONS: This work documents a dual-control paradigm of cardiomyocyte proliferation and establishes Nfyb / Nr3c1 cointervention as a putative new therapy to induce and control cardiac regeneration after injury.

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Journal
Circulation
Published
2026-08-25
DOI
https://doi.org/10.1161/circulationaha.125.079049
Primary Topic
Congenital heart defects research
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article
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article

Dual-Target Cardiac Regeneration: Controllable Nfyb/Nr3c1 Cointervention Spurs Cardiomyocyte Cytokinesis After Myocardial Infarction

Jiangcheng Shu, Yanli Guo, Wei Eric Wang, Bingjun Lu et al.
Circulation
Congenital heart defects research
article

Dual-Target Cardiac Regeneration: Controllable Nfyb/Nr3c1 Cointervention Spurs Cardiomyocyte Cytokinesis After Myocardial Infarction

Jiangcheng Shu, Yanli Guo, Wei Eric Wang, Bingjun Lu, Xuemei Chen, Zhen Liu, Lanlan Ma, Jiamin Zou, Zhuo Zhang, Ziyan Ge, Jia Li, Donghui Zhang, Steven R. Houser, Wujian Liu, Sisi Tian, Cong Chen, Juanjuan Zheng, Yidan Xu, Yuyao Liu
article en

Abstract

BACKGROUND: Myocardial infarction can cause a massive loss of functional cardiomyocytes, yet effective strategies to stimulate cardiac regeneration remain lacking. A key barrier to adult cardiomyocyte proliferation appears to be cytokinesis inhibition. This study aimed to determine whether combining proliferation stimulators with the removal of cytokinesis-inhibitory constraints could unlock regenerative potential after myocardial infarction. METHODS: Transcriptomic profile from 5 regeneration models, including Aurkb -tdTomato cytokinesis reporter mice and Myh6 -MerCreMer;mosaic analysis with double markers (MADM), and cross-species comparative analysis were used to explore the regulatory networks for cardiomyocyte proliferation. MADM mice were used to evaluate cardiac regeneration by quantifying after cytokinesis new cardiomyocytes and clonal clusters. RESULTS: Integrative multimodel analysis revealed a dual regulatory control system for cardiomyocyte proliferation, along with key associated genes and transcriptional regulators. Nfyb was identified as an activator and Nr3c1 as a repressor of cardiomyocyte proliferation. Nfyb overexpression enhanced cardiomyocyte proliferation and post–myocardial infarction cardiac repair through propelling cell-cycle gene transcription. Nr3c1 inhibition promoted cardiomyocyte proliferation, improved cardiac function, and reduced infarct size. A spatiotemporally controlled adeno-associated virus 9 system combining drug-inducible Nfyb overexpression and CRISPR/enOsCas12f1–mediated Nr3c1 deletion efficiently induces cardiomyocyte proliferation. Clonal analysis using MADM mice showed that the dual intervention synergistically increased new cardiomyocyte formation (28% clustered, >28-fold versus control). The enhanced regenerative effect of the dual intervention was demonstrated in post–myocardial infarction mice and human engineered heart tissues. CONCLUSIONS: This work documents a dual-control paradigm of cardiomyocyte proliferation and establishes Nfyb / Nr3c1 cointervention as a putative new therapy to induce and control cardiac regeneration after injury.

Circulation
Army Medical University (CN), Xinqiao Hospital (CN), Southwest Hospital (CN), Hubei University (CN), Temple University (US)
Good health and well-being
Openalex Percentile: Top 17%
Congenital heart defects research
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