Kukuljan Manuel, Taylor Alison, Chouinard Hilary, Olguin Patricio, Rojas Cecilia V, Ribera Angeles B
Programa de Fisiología y Biofísica, Instituto de Ciencias Biomédicas, Facultad de Medicina, Universidad de Chile, Independencia 1027 Santiago, Chile.
J Neurophysiol. 2003 Nov;90(5):3352-60. doi: 10.1152/jn.00398.2003. Epub 2003 Jul 16.
Calcium-activated potassium channels regulate excitability of the adult nervous system. In contrast, little is known about the contribution of calcium-activated potassium channels to excitability of the embryonic nervous system when electrical membrane properties and intracellular calcium levels show dramatic changes. Embryonic Xenopus spinal neurons exhibit a well-characterized developmental program of excitability that involves several different currents including calcium-activated ones. Here, we show that a molecular determinant of calcium-activated potassium channels, xSlo, is expressed during Xenopus embryogenesis even prior to differentiation of excitable tissues. Five different xSlo variants are expressed in embryonic tissues as a consequence of alternative exon usage at a single splice site. One of these variants, xSlo59, is neural-specific, and its expression is limited to late stages of neuronal differentiation. However, expression of the four other variants occurs in both muscle and neurons at all stages of development examined. Electrophysiological analysis of recombinant xSlo channels reveals that the xSlo59 exon serves as a gain-of-function module and allows physiologically relevant levels of membrane potential and intracellular calcium to activate effectively the resultant channel. These results suggest that xSlo59 channels play a unique role in sculpting the excitable membrane properties of Xenopus spinal neurons.
钙激活钾通道调节成体神经系统的兴奋性。相比之下,当膜电特性和细胞内钙水平发生显著变化时,关于钙激活钾通道对胚胎神经系统兴奋性的贡献却知之甚少。非洲爪蟾胚胎脊髓神经元表现出一个特征明确的兴奋性发育程序,该程序涉及几种不同的电流,包括钙激活电流。在此,我们表明钙激活钾通道的一个分子决定因素xSlo,在非洲爪蟾胚胎发育过程中甚至在可兴奋组织分化之前就已表达。由于在单个剪接位点的外显子选择性使用,五种不同的xSlo变体在胚胎组织中表达。其中一种变体xSlo⁵⁹是神经特异性的,其表达仅限于神经元分化的后期阶段。然而,其他四种变体的表达在所有检测的发育阶段的肌肉和神经元中均有发生。对重组xSlo通道的电生理分析表明,xSlo⁵⁹外显子作为一个功能增强模块,使生理相关水平的膜电位和细胞内钙能够有效地激活所得通道。这些结果表明,xSlo⁵⁹通道在塑造非洲爪蟾脊髓神经元的可兴奋膜特性方面发挥着独特作用。