Hua Lisa L, Vedantham Vasanth, Barnes Ralston M, Hu Jianxin, Robinson Ashley S, Bressan Michael, Srivastava Deepak, Black Brian L
Cardiovascular Research Institute, University of California, San Francisco, CA 94158-2517, USA.
Cardiovascular Research Institute, University of California, San Francisco, CA 94158-2517, USA; Gladstone Institute of Cardiovascular Disease, University of California, San Francisco, CA 94158-2517, USA; Department of Medicine, University of California, San Francisco, CA 94158-2517, USA.
Dev Biol. 2014 Sep 15;393(2):245-254. doi: 10.1016/j.ydbio.2014.07.008. Epub 2014 Jul 19.
Coordinated contraction of the heart is essential for survival and is regulated by the cardiac conduction system. Contraction of ventricular myocytes is controlled by the terminal part of the conduction system known as the Purkinje fiber network. Lineage analyses in chickens and mice have established that the Purkinje fibers of the peripheral ventricular conduction system arise from working myocytes during cardiac development. It has been proposed, based primarily on gain-of-function studies, that Endothelin signaling is responsible for myocyte-to-Purkinje fiber transdifferentiation during avian heart development. However, the role of Endothelin signaling in mammalian conduction system development is less clear, and the development of the cardiac conduction system in mice lacking Endothelin signaling has not been previously addressed. Here, we assessed the specification of the cardiac conduction system in mouse embryos lacking all Endothelin signaling. We found that mouse embryos that were homozygous null for both ednra and ednrb, the genes encoding the two Endothelin receptors in mice, were born at predicted Mendelian frequency and had normal specification of the cardiac conduction system and apparently normal electrocardiograms with normal QRS intervals. In addition, we found that ednra expression within the heart was restricted to the myocardium while ednrb expression in the heart was restricted to the endocardium and coronary endothelium. By establishing that ednra and ednrb are expressed in distinct compartments within the developing mammalian heart and that Endothelin signaling is dispensable for specification and function of the cardiac conduction system, this work has important implications for our understanding of mammalian cardiac development.
心脏的协调收缩对于生存至关重要,并由心脏传导系统调节。心室肌细胞的收缩由传导系统的末端部分即浦肯野纤维网络控制。对鸡和小鼠的谱系分析已证实,心脏发育过程中,外周心室传导系统的浦肯野纤维源自工作肌细胞。主要基于功能获得性研究提出,内皮素信号传导负责禽类心脏发育过程中肌细胞向浦肯野纤维的转分化。然而,内皮素信号传导在哺乳动物传导系统发育中的作用尚不清楚,此前也未探讨过缺乏内皮素信号传导的小鼠心脏传导系统的发育情况。在此,我们评估了缺乏所有内皮素信号传导的小鼠胚胎中心脏传导系统的特化情况。我们发现,对于编码小鼠两种内皮素受体的基因ednra和ednrb均为纯合缺失的小鼠胚胎,其出生频率符合孟德尔遗传规律,心脏传导系统特化正常,心电图明显正常,QRS间期正常。此外,我们发现心脏内的ednra表达局限于心肌,而ednrb在心脏中的表达局限于心内膜和冠状动脉内皮。通过确定ednra和ednrb在发育中的哺乳动物心脏内的不同区域表达,以及内皮素信号传导对于心脏传导系统的特化和功能并非必需,这项工作对我们理解哺乳动物心脏发育具有重要意义。