Endothelial deletion of PTBP1 disrupts ventricular chamber development

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作者
Hongyu Liu
Ran Duan
Xiaoyu He
Jincu Qi
Tianming Xing
Yahan Wu
Liping Zhou
Lingling Wang
Yujing Shao
Fulei Zhang
Huixing Zhou
Xingdong Gu
Bowen Lin
Yuanyuan Liu
Yan Wang
Yi Liu
Li Li
Dandan Liang
Yi-Han Chen
机构
[1] Shanghai East Hospital,Department of Cardiology
[2] Tongji University School of Medicine,Key Laboratory of Arrhythmias of the Ministry of Education of China
[3] Shanghai East Hospital,Research Units of Origin and Regulation of Heart Rhythm
[4] Tongji University School of Medicine,Department of Pathology and Pathophysiology
[5] Jinzhou Medical University,undefined
[6] Chinese Academy of Medical Sciences,undefined
[7] Tongji University School of Medicine,undefined
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Nature Communications | / 14卷
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摘要
The growth and maturation of the ventricular chamber require spatiotemporally precise synergy between diverse cell types. Alternative splicing deeply affects the processes. However, the functional properties of alternative splicing in cardiac development are largely unknown. Our study reveals that an alternative splicing factor polypyrimidine tract-binding protein 1 (PTBP1) plays a key role in ventricular chamber morphogenesis. During heart development, PTBP1 colocalizes with endothelial cells but is almost undetectable in cardiomyocytes. The endothelial-specific knockout of Ptbp1, in either endocardial cells or pan-endothelial cells, leads to a typical phenotype of left ventricular noncompaction (LVNC). Mechanistically, the deletion of Ptbp1 reduces the migration of endothelial cells, disrupting cardiomyocyte proliferation and ultimately leading to the LVNC. Further study shows that Ptbp1 deficiency changes the alternative splicing of β-arrestin-1 (Arrb1), which affects endothelial cell migration. In conclusion, as an alternative splicing factor, PTBP1 is essential during ventricular chamber development, and its deficiency can lead to congenital heart disease.
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