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Endothelial deletion of murine Jag1 leads to valve calcification and congenital heart defects associated with Alagille syndrome

机译:鼠Jag1的内皮细胞缺失导致与Alagille综合征相关的瓣膜钙化和先天性心脏缺陷

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摘要

The Notch signaling pathway is an important contributor to the development and homeostasis of the cardiovascular system. Not surprisingly, mutations in Notch receptors and ligands have been linked to a variety of hereditary diseases that impact both the heart and the vasculature. In particular, mutations in the gene encoding the human Notch ligand jagged 1 result in a multisystem autosomal dominant disorder called Alagille syndrome, which includes tetralogy of Fallot among its more severe cardiac pathologies. Jagged 1 is expressed throughout the developing embryo, particularly in endothelial cells. Here, we demonstrate that endothelial-specific deletion of Jag1 leads to cardiovascular defects in both embryonic and adult mice that are reminiscent of those in Alagille syndrome. Mutant mice display right ventricular hypertrophy, overriding aorta, ventricular septal defects, coronary vessel abnormalities and valve defects. Examination of mid-gestational embryos revealed that the loss of Jag1, similar to the loss of Notch1, disrupts endothelial-to-mesenchymal transition during endocardial cushion formation. Furthermore, adult mutant mice exhibit cardiac valve calcifications associated with abnormal matrix remodeling and induction of bone morphogenesis. This work shows that the endothelium is responsible for the wide spectrum of cardiac phenotypes displayed in Alagille Syndrome and it demonstrates a crucial role for Jag1 in valve morphogenesis.
机译:Notch信号通路是心血管系统发育和体内平衡的重要因素。毫不奇怪,Notch受体和配体的突变与影响心脏和脉管系统的多种遗传疾病有关。特别是,编码人Notch配体锯齿状1的基因中的突变会导致称为Alagille综合征的多系统常染色体显性遗传疾病,其中包括法洛氏四联症,其中包括更严重的心脏疾病。锯齿状1在整个发育中的胚胎中表达,特别是在内皮细胞中。在这里,我们证明了Jag1的内皮细胞特异性缺失导致胚胎小鼠和成年小鼠的心血管缺陷,使人联想到Alagille综合征。突变的小鼠表现出右室肥大,主动脉压迫,室间隔缺损,冠状动脉异常和瓣膜缺损。妊娠中期胚胎的检查显示,Jag1的缺失与Notch1的缺失相似,会破坏心内膜垫形成过程中的内皮向间充质过渡。此外,成年突变小鼠表现出与异常基质重塑和骨形态发生诱导相关的心脏瓣膜钙化。这项工作表明内皮细胞负责Alagille综合征中显示的广泛的心脏表型,并且证明Jag1在瓣膜形态发生中起关键作用。

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