Bhakta Minoti, Padanad Mahesh S, Harris John P, Lubczyk Christina, Amatruda James F, Munshi Nikhil V
Department of Internal Medicine - Cardiology, UT Southwestern Medical Center, Dallas, Texas.
Department of Pediatrics, UT Southwestern Medical Center, Dallas, Texas.
Dev Dyn. 2019 Feb;248(2):173-188. doi: 10.1002/dvdy.2. Epub 2018 Dec 10.
Many human gene mutations have been linked to congenital heart disease (CHD), yet CHD remains a major health issue worldwide due in part to an incomplete understanding of the molecular basis for cardiac malformation.
Here we identify the orthologous mouse Pou6f1 and zebrafish pouC as POU homeodomain transcription factors enriched in the developing heart. We find that pouC is a multi-functional transcriptional regulator containing separable activation, repression, protein-protein interaction, and DNA binding domains. Using zebrafish heart development as a model system, we demonstrate that pouC knockdown impairs cardiac morphogenesis and affects cardiovascular function. We also find that levels of pouC expression must be fine-tuned to enable proper heart formation. At the cellular level, we demonstrate that pouC knockdown disrupts atrioventricular canal (AVC) cardiomyocyte maintenance, although chamber myocyte specification remains intact. Mechanistically, we show that pouC binds a bmp4 intronic regulatory element to mediate transcriptional activation.
Taken together, our study establishes pouC as a novel transcriptional input into the regulatory hierarchy that drives AVC morphogenesis in zebrafish. We anticipate that these findings will inform future efforts to explore functional conservation in mammals and potential association with atrioventricular septal defects in humans. Developmental Dynamics 248:173-188, 2019. © 2018 Wiley Periodicals, Inc.
许多人类基因突变与先天性心脏病(CHD)有关,但CHD仍是全球主要的健康问题,部分原因是对心脏畸形的分子基础了解不全面。
在此,我们鉴定出直系同源的小鼠Pou6f1和斑马鱼pouC为在发育中的心脏中富集的POU同源域转录因子。我们发现pouC是一种多功能转录调节因子,包含可分离的激活、抑制、蛋白质-蛋白质相互作用和DNA结合结构域。以斑马鱼心脏发育为模型系统,我们证明敲低pouC会损害心脏形态发生并影响心血管功能。我们还发现必须对pouC的表达水平进行微调以实现正常的心脏形成。在细胞水平上,我们证明敲低pouC会破坏房室管(AVC)心肌细胞的维持,尽管心室肌细胞的特化保持完整。从机制上讲,我们表明pouC结合bmp4内含子调控元件以介导转录激活。
综上所述,我们的研究确定pouC是驱动斑马鱼AVC形态发生的调控层级中的一种新型转录输入。我们预计这些发现将为未来探索哺乳动物中的功能保守性以及与人类房室间隔缺损的潜在关联提供信息。《发育动力学》248:173 - 188, 2019。© 2018威利期刊公司。