Díez-Sampedro Ana, Silverman William R, Bautista Jocelyn F, Richerson George B
Department of Neurology, Yale University School of Medicine, New Haven, CT 06520-8018, USA.
J Neurophysiol. 2006 Sep;96(3):1507-16. doi: 10.1152/jn.00461.2006. Epub 2006 May 31.
A missense mutation (D434G) has recently been identified in the alpha subunit of the human large-conductance calcium-activated potassium (BK) channel. Interestingly, although the mutation causes an increase in open probability, individuals that carry the mutation have epilepsy and/or paroxysmal dyskinesia, disorders of increased brain excitability. To define the mechanisms of the mutation, we have used recordings from single channels and measurement of macroscopic conductances to examine the gating of the alpha subunit, modulation by the regulatory beta4 subunit, and the effect of Mg2+ on channel properties. Although there was relatively little difference in open dwell times for the mutant and wild-type alpha subunits, the mutant channel spent less time in a long-lived closed state. Co-expression of the beta4 subunit caused the wild-type channel to be less sensitive to calcium at low Ca2+ concentrations but had little effect on the mutant channel, further accentuating the difference between the wild-type and the mutant channels. In the absence of Ca2+, there was no difference in Mg2+ or voltage sensitivity of the mutant and wild-type channels, whereas in 2 mM Ca2+, the mutant channel had greater open probability at every Mg2+ concentration tested. We conclude that the D434G mutation modifies Ca2+ -dependent activation, but we find no evidence of a direct effect on activation by Mg2+ or voltage. The resulting enhancement of BK channel function leads to an increase in brain excitability, possibly due to more rapid repolarization of action potentials.
最近在人类大电导钙激活钾(BK)通道的α亚基中发现了一种错义突变(D434G)。有趣的是,尽管该突变导致开放概率增加,但携带该突变的个体患有癫痫和/或发作性运动障碍,即大脑兴奋性增加的疾病。为了确定该突变的机制,我们使用了单通道记录和宏观电导测量来研究α亚基的门控、调节性β4亚基的调节作用以及Mg2+对通道特性的影响。尽管突变型和野生型α亚基的开放驻留时间差异相对较小,但突变通道在长寿命关闭状态下花费的时间较少。β4亚基的共表达使野生型通道在低Ca2+浓度下对钙的敏感性降低,但对突变通道影响不大,进一步加剧了野生型和突变通道之间的差异。在没有Ca2+的情况下,突变型和野生型通道的Mg2+或电压敏感性没有差异,而在2 mM Ca2+中,突变通道在每个测试的Mg2+浓度下都有更高的开放概率。我们得出结论,D434G突变改变了Ca2+依赖性激活,但我们没有发现Mg2+或电压对激活有直接影响的证据。BK通道功能的增强导致大脑兴奋性增加,可能是由于动作电位的复极化更快。