Kanter H L, Beyer E C, Saffitz J E
Department of Medicine, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
Microsc Res Tech. 1995 Aug 1;31(5):357-63. doi: 10.1002/jemt.1070310505.
Electrical activation of the heart requires intercellular transfer of current through gap junctions connecting individual cardiac myocytes. Using a combination of light and electron microscopic techniques and molecular approaches, we have characterized the number, size, and spatial distribution of intercellular connections at gap junctions in cardiac myocytes and have also cloned, sequenced, and elucidated the subcellular distribution of three physiologically distinct gap junction channel proteins. In this review, we present evidence to suggest that the spatial distribution of myocyte interconnections and the molecular composition of gap junction channels may confer distinct conduction properties on specific tissues of the mammalian heart such as atrial and ventricular myocardium, and the nodes and bundles of the cardiac conduction system.
心脏的电激活需要电流通过连接单个心肌细胞的缝隙连接进行细胞间传递。我们结合光学和电子显微镜技术以及分子方法,对心肌细胞缝隙连接处细胞间连接的数量、大小和空间分布进行了表征,还克隆、测序并阐明了三种生理特性不同的缝隙连接通道蛋白的亚细胞分布。在这篇综述中,我们提供证据表明,心肌细胞连接的空间分布和缝隙连接通道的分子组成可能赋予哺乳动物心脏特定组织(如心房和心室心肌以及心脏传导系统的结和束)不同的传导特性。