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伴有全身强直阵挛发作的难治性儿童癫痫中的钠通道功能障碍。

Sodium channel dysfunction in intractable childhood epilepsy with generalized tonic-clonic seizures.

作者信息

Rhodes Thomas H, Vanoye Carlos G, Ohmori Iori, Ogiwara Ikuo, Yamakawa Kazuhiro, George Alfred L

机构信息

Division of Genetic Medicine, Department of Medicine, 529 Light Hall, Vanderbilt University, 2215 Garland Avenue, Nashville, TN 37232-0275, USA.

出版信息

J Physiol. 2005 Dec 1;569(Pt 2):433-45. doi: 10.1113/jphysiol.2005.094326. Epub 2005 Oct 6.

Abstract

Mutations in SCN1A, the gene encoding the brain voltage-gated sodium channel alpha(1) subunit (Na(V)1.1), are associated with genetic forms of epilepsy, including generalized epilepsy with febrile seizures plus (GEFS+ type 2), severe myoclonic epilepsy of infancy (SMEI) and related conditions. Several missense SCN1A mutations have been identified in probands affected by the syndrome of intractable childhood epilepsy with generalized tonic-clonic seizures (ICEGTC), which bears similarity to SMEI. To test whether ICEGTC arises from molecular mechanisms similar to those involved in SMEI, we characterized eight ICEGTC missense mutations by whole-cell patch clamp recording of recombinant human SCN1A heterologously expressed in cultured mammalian cells. Two mutations (G979R and T1709I) were non-functional. The remaining alleles (T808S, V983A, N1011I, V1611F, P1632S and F1808L) exhibited measurable sodium current, but had heterogeneous biophysical phenotypes. Mutant channels exhibited lower (V983A, N1011I and F1808L), greater (T808S) or similar (V1611F and P1632S) peak sodium current densities compared with wild-type (WT) SCN1A. Three mutations (V1611F, P1632S and F1808L) displayed hyperpolarized conductance-voltage relationships, while V983A exhibited a strong depolarizing shift in the voltage dependence of activation. All mutants except T808S had hyperpolarized shifts in the voltage dependence of steady-state channel availability. Three mutants (V1611F, P1632S and F1808L) exhibited persistent sodium current ranging from approximately 1-3% of peak current amplitude that was significantly greater than WT-SCN1A. Several mutants had impaired slow inactivation, with V983A showing the most prominent effect. Finally, all of the functional alleles exhibited reduced use-dependent channel inhibition. In summary, SCN1A mutations associated with ICEGTC result in a wide spectrum of biophysical defects, including mild-to-moderate gating impairments, shifted voltage dependence and reduced use dependence. The constellation of biophysical abnormalities for some mutants is distinct from those previously observed for GEFS+ and SMEI, suggesting possible, but complex, genotype-phenotype correlations.

摘要

编码脑电压门控钠通道α1亚基(Na(V)1.1)的基因SCN1A发生突变,与多种遗传性癫痫相关,包括伴有热性惊厥附加症的全身性癫痫(GEFS + 2型)、婴儿严重肌阵挛性癫痫(SMEI)及相关病症。在患有全身性强直阵挛性癫痫的难治性儿童癫痫综合征(ICEGTC)的先证者中,已鉴定出多个SCN1A错义突变,该综合征与SMEI有相似之处。为了测试ICEGTC是否由与SMEI相关的分子机制引起,我们通过全细胞膜片钳记录在培养的哺乳动物细胞中异源表达的重组人SCN1A,对8个ICEGTC错义突变进行了表征。两个突变(G979R和T1709I)无功能。其余等位基因(T808S、V983A、N1011I、V1611F、P1632S和F1808L)表现出可测量的钠电流,但具有异质的生物物理表型。与野生型(WT)SCN1A相比,突变通道的峰值钠电流密度更低(V983A、N1011I和F1808L)、更高(T808S)或相似(V1611F和P1632S)。三个突变(V1611F、P1632S和F1808L)表现出超极化的电导 - 电压关系,而V983A在激活电压依赖性方面表现出强烈的去极化偏移。除T808S外,所有突变体在稳态通道可用性的电压依赖性方面均有超极化偏移。三个突变体(V1611F、P1632S和F1808L)表现出持续钠电流,其幅度约为峰值电流幅度的1 - 3%,明显大于WT - SCN1A。几个突变体的慢失活受损,其中V983A表现出最显著的影响。最后,所有功能性等位基因均表现出使用依赖性通道抑制作用降低。总之,与ICEGTC相关的SCN1A突变导致广泛的生物物理缺陷,包括轻度至中度的门控损伤、电压依赖性改变和使用依赖性降低。一些突变体的生物物理异常组合与先前在GEFS +和SMEI中观察到的不同,提示可能存在但复杂的基因型 - 表型相关性。

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