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Updated: Jan 7, 2026

Mutagenesis and Functional Analysis of Ion Channels Heterologously Expressed in Mammalian Cells
Published on: October 1, 2010
[Functional analysis of the mutant channels associated with skeletal muscle channelopathies]
Tomoya Kubota1, Yuna Sakakibara1
1Department of Clinical Laboratory and Biomedical Sciences, Division of Health Sciences, Osaka University Graduate School of Medicine.
Abstract:
Skeletal muscle channelopathies are rare genetic disorders caused by mutations in voltage-gated ion channel genes that regulate sarcomere excitability, including the CLCN1 gene encoding ClC-1, the KCNJ2 gene encoding Kir2.1, the SCN4A gene encoding Nav1.4, and the CACNA1S gene encoding Cav1.1. More than one hundred heterozygous missense mutations have been identified in SCN4A, representing a broad spectrum of clinical phenotypes, including sodium channel myotonia (SCM), paramyotonia congenita (PMC), hyperkalemic periodic paralysis (HyperPP) and hypokalemic periodic paralysis (HypoPP). In addition, recent case reports have shown that compound heterozygous mutations or homozygous mutations in SCN4A are associated with congenital myopathy or congenital myasthenic syndrome. Regarding the pathological mechanisms of SCM/PMC and HyperPP, a large number of electrophysiological analyses have shown an association between the functional alteration of the mutant Nav1.4 and the clinical phenotype. On the other hand, HypoPP has long been a mysterious disorder. In 2007, the recent discovery of aberrant leak currents, called "gating pore currents", brought a breakthrough in the field of HypoPP research and contributed to the elucidation of the structure-function relationship of the voltage sensing domain of voltage-gated ion channels. However, there has been little progress in the discovery of the therapeutics. Recently, we have generated HEK293T-based HypoPP model cell lines aiming to establish the in vitro platform for the high-throughput drug screening. Our HypoPP model cells would provide new insight into the development of novel therapeutics for channelopathies.
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