Right ventricular pressure overload disturbs T-tubule maturation via MEF2D’s transcriptional regulation of BIN1

Right ventricular pressure overload (RVPO) is a critical pathophysiological feature of numerous pediatric cardiovascular diseases. Transverse tubules (T-tubules) form the foundation for efficient excitation-contraction coupling in mature cardiomyocytes. We hypothesized that RVPO impairs T-tubule maturation through the regulatory protein bridging integrator 1 (BIN1). In right ventricular samples from children with tetralogy of Fallot, characterized by RVPO, and in a neonatal rat RVPO model induced by pulmonary artery banding (PAB), T-tubule maturation was disrupted. RNA-seq revealed significant downregulation of T-tubule–associated genes, with Bin1 among the most suppressed. Bin1 overexpression restored T-tubule maturation in PAB rats. ATAC-seq showed reduced chromatin accessibility at Bin1 loci; motif analysis identified Mef2d (myocyte enhancer factor 2D) as the top enriched transcription factor. Mef2d knockdown rescued Bin1 expression and T-tubule maturation, and mutation of the Mef2d binding sites within the Bin1 promoter abolished the inhibitory effect of Mef2d on Bin1 promoter activity. This study delineates a phenomenon and a mechanism of cardiomyocyte maturation under pathological stress. The findings not only advance our understanding of this most pivotal event in postnatal cardiac development but also unveil a potential therapeutic direction for pediatric cardiovascular diseases associated with RVPO.

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Publication Details

Journal
JCI Insight
Published
2026-09-21
DOI
https://doi.org/10.1172/jci.insight.204032
Primary Topic
Congenital heart defects research
Type
article
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article

Right ventricular pressure overload disturbs T-tubule maturation via MEF2D’s transcriptional regulation of BIN1

Sixie Zheng, Peisen Ruan, Sijuan Sun, Lincai Ye et al.
JCI Insight
Congenital heart defects research
article

Right ventricular pressure overload disturbs T-tubule maturation via MEF2D’s transcriptional regulation of BIN1

Sixie Zheng, Peisen Ruan, Sijuan Sun, Lincai Ye, Linghui Kong, Hao Chen, Yuqing Hu, Siqi She, Lijun Chen, Yiting Xue, Debao Li, Hao Li, Zheng Wang, Xudong Chen, Kai Wang
article en

Abstract

Right ventricular pressure overload (RVPO) is a critical pathophysiological feature of numerous pediatric cardiovascular diseases. Transverse tubules (T-tubules) form the foundation for efficient excitation-contraction coupling in mature cardiomyocytes. We hypothesized that RVPO impairs T-tubule maturation through the regulatory protein bridging integrator 1 (BIN1). In right ventricular samples from children with tetralogy of Fallot, characterized by RVPO, and in a neonatal rat RVPO model induced by pulmonary artery banding (PAB), T-tubule maturation was disrupted. RNA-seq revealed significant downregulation of T-tubule–associated genes, with Bin1 among the most suppressed. Bin1 overexpression restored T-tubule maturation in PAB rats. ATAC-seq showed reduced chromatin accessibility at Bin1 loci; motif analysis identified Mef2d (myocyte enhancer factor 2D) as the top enriched transcription factor. Mef2d knockdown rescued Bin1 expression and T-tubule maturation, and mutation of the Mef2d binding sites within the Bin1 promoter abolished the inhibitory effect of Mef2d on Bin1 promoter activity. This study delineates a phenomenon and a mechanism of cardiomyocyte maturation under pathological stress. The findings not only advance our understanding of this most pivotal event in postnatal cardiac development but also unveil a potential therapeutic direction for pediatric cardiovascular diseases associated with RVPO.

JCI InsightVol. 11(18)
Ningbo University (CN), Shanghai Jiao Tong University (CN), Shanghai Children's Medical Center (CN), Linyi People's Hospital (CN), Southern California Clinical and Translational Science Institute (US), Institute of Cardiology (PL), Ningbo University Affiliated Hospital (CN), Children's Hospital of Fudan University (CN), Shanghai Children's Hospital (CN)
Good health and well-being
Openalex Percentile: Top 18%
Congenital heart defects research
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