Department of Neurology and Neurotherapeutics, UT Southwestern Medical Center, Dallas, Texas 75390-8813, USA.
J Clin Invest. 2011 Oct;121(10):4082-94. doi: 10.1172/JCI57398. Epub 2011 Sep 1.
Hypokalemic periodic paralysis (HypoPP) is an ion channelopathy of skeletal muscle characterized by attacks of muscle weakness associated with low serum K+. HypoPP results from a transient failure of muscle fiber excitability. Mutations in the genes encoding a calcium channel (CaV1.1) and a sodium channel (NaV1.4) have been identified in HypoPP families. Mutations of NaV1.4 give rise to a heterogeneous group of muscle disorders, with gain-of-function defects causing myotonia or hyperkalemic periodic paralysis. To address the question of specificity for the allele encoding the NaV1.4-R669H variant as a cause of HypoPP and to produce a model system in which to characterize functional defects of the mutant channel and susceptibility to paralysis, we generated knockin mice carrying the ortholog of the gene encoding the NaV1.4-R669H variant (referred to herein as R669H mice). Homozygous R669H mice had a robust HypoPP phenotype, with transient loss of muscle excitability and weakness in low-K+ challenge, insensitivity to high-K+ challenge, dominant inheritance, and absence of myotonia. Recovery was sensitive to the Na+/K+-ATPase pump inhibitor ouabain. Affected fibers had an anomalous inward current at hyperpolarized potentials, consistent with the proposal that a leaky gating pore in R669H channels triggers attacks, whereas a reduction in the amplitude of action potentials implies additional loss-of-function changes for the mutant NaV1.4 channels.
低钾周期性麻痹(HypoPP)是一种骨骼肌离子通道病,其特征是肌肉无力发作,伴有血清 K+水平降低。HypoPP 是由于肌纤维兴奋性一过性丧失所致。在 HypoPP 家族中已发现编码钙通道(CaV1.1)和钠通道(NaV1.4)的基因突变。NaV1.4 的突变导致一组异质性的肌肉疾病,其功能获得性缺陷导致肌强直或高钾周期性麻痹。为了解决编码 NaV1.4-R669H 变异体等位基因作为 HypoPP 病因的特异性问题,并产生一种用于表征突变通道功能缺陷和易发性麻痹的模型系统,我们生成了携带编码 NaV1.4-R669H 变异体基因的同源敲入小鼠(此处称为 R669H 小鼠)。纯合 R669H 小鼠表现出强烈的 HypoPP 表型,在低钾挑战时表现出短暂的肌肉兴奋性丧失和无力、对高钾挑战不敏感、显性遗传和无肌强直。恢复对 Na+/K+-ATP 酶泵抑制剂哇巴因敏感。受影响的纤维在超极化电位下具有异常内向电流,这与 R669H 通道中的漏电流门控孔触发发作的假说一致,而动作电位幅度的降低意味着突变型 NaV1.4 通道的其他功能丧失变化。