Goddard Lauren M, Duchemin Anne-Laure, Ramalingan Harini, Wu Bingruo, Chen Mei, Bamezai Sharika, Yang Jisheng, Li Li, Morley Michael P, Wang Tao, Scherrer-Crosbie Marielle, Frank David B, Engleka Kurt A, Jameson Stephen C, Morrisey Edward E, Carroll Thomas J, Zhou Bin, Vermot Julien, Kahn Mark L
Department of Medicine and Cardiovascular Institute, University of Pennsylvania, 3400 Civic Center Boulevard, Philadelphia, PA 19104, USA.
Institut de Génétique et de Biologie Moléculaire et Cellulaire, Illkirch 67404, France; Centre National de la Recherche Scientifique, UMR7104, Illkirch 67404, France; Institut National de la Santé et de la Recherche Médicale, U964, Illkirch 67404, France; Université de Strasbourg, Illkirch 67404, France.
Dev Cell. 2017 Nov 6;43(3):274-289.e5. doi: 10.1016/j.devcel.2017.09.023. Epub 2017 Oct 19.
Hemodynamic forces play an essential epigenetic role in heart valve development, but how they do so is not known. Here, we show that the shear-responsive transcription factor KLF2 is required in endocardial cells to regulate the mesenchymal cell responses that remodel cardiac cushions to mature valves. Endocardial Klf2 deficiency results in defective valve formation associated with loss of Wnt9b expression and reduced canonical WNT signaling in neighboring mesenchymal cells, a phenotype reproduced by endocardial-specific loss of Wnt9b. Studies in zebrafish embryos reveal that wnt9b expression is similarly restricted to the endocardial cells overlying the developing heart valves and is dependent upon both hemodynamic shear forces and klf2a expression. These studies identify KLF2-WNT9B signaling as a conserved molecular mechanism by which fluid forces sensed by endothelial cells direct the complex cellular process of heart valve development and suggest that congenital valve defects may arise due to subtle defects in this mechanotransduction pathway.
血流动力学力在心脏瓣膜发育中起着至关重要的表观遗传作用,但其具体作用方式尚不清楚。在此,我们表明,剪切反应转录因子KLF2在内皮细胞中是调节间充质细胞反应所必需的,间充质细胞反应可将心脏垫重塑为成熟瓣膜。内皮细胞Klf2缺陷导致瓣膜形成缺陷,这与Wnt9b表达缺失以及邻近间充质细胞中经典WNT信号传导减少有关,Wnt9b在内皮细胞特异性缺失可重现该表型。对斑马鱼胚胎的研究表明,wnt9b表达同样局限于发育中的心脏瓣膜上方的内皮细胞,并且依赖于血流动力学剪切力和klf2a表达。这些研究确定KLF2-WNT9B信号传导是一种保守的分子机制,通过该机制内皮细胞感知的流体力指导心脏瓣膜发育的复杂细胞过程,并表明先天性瓣膜缺陷可能由于这种机械转导途径中的细微缺陷而产生。