Brigham and Women's Hospital/Harvard Medical School, Cardiovascular Division, 75 Francis Street, Thorn 11, Boston, Massachusetts 02115, USA.
Nature. 2010 Aug 12;466(7308):874-8. doi: 10.1038/nature09249. Epub 2010 Jul 25.
Electrical gradients are critical for many biological processes, including the normal function of excitable tissues, left-right patterning, organogenesis and wound healing. The fundamental mechanisms that regulate the establishment and maintenance of such electrical polarities are poorly understood. Here we identify a gradient of electrical coupling across the developing ventricular myocardium using high-speed optical mapping of transmembrane potentials and calcium concentrations in the zebrafish heart. We excluded a role for differences in cellular excitability, connexin localization, tissue geometry and mechanical inputs, but in contrast we were able to demonstrate that non-canonical Wnt11 signals are required for the genesis of this myocardial electrical gradient. Although the traditional planar cell polarity pathway is not involved, we obtained evidence that Wnt11 acts to set up this gradient of electrical coupling through effects on transmembrane Ca(2+) conductance mediated by the L-type calcium channel. These data reveal a previously unrecognized role for Wnt/Ca(2+) signalling in establishing an electrical gradient in the plane of the developing cardiac epithelium through modulation of ion-channel function. The regulation of cellular coupling through such mechanisms may be a general property of non-canonical Wnt signals.
电梯度对于许多生物过程至关重要,包括可兴奋组织的正常功能、左右模式形成、器官发生和伤口愈合。调节这种电极性的建立和维持的基本机制知之甚少。在这里,我们使用斑马鱼心脏的细胞膜电位和钙浓度的高速光学映射,确定了发育中的心室心肌中的电偶联梯度。我们排除了细胞兴奋性、连接蛋白定位、组织几何形状和机械输入差异的作用,但相反,我们能够证明非经典 Wnt11 信号对于这种心肌电梯度的产生是必需的。尽管不涉及传统的平面细胞极性途径,但我们获得的证据表明,Wnt11 通过 L 型钙通道介导的跨膜 Ca(2+)电导来发挥作用,从而建立这种电偶联梯度。这些数据揭示了 Wnt/Ca(2+)信号在通过调节离子通道功能在心脏上皮细胞的平面上建立电梯度方面的先前未被认识的作用。通过这种机制调节细胞偶联可能是非经典 Wnt 信号的普遍特性。