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首页> 外文期刊>The Journal of Physiology >Mechanisms underlying a life-threatening skeletal muscle Na channel disorder.
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Mechanisms underlying a life-threatening skeletal muscle Na channel disorder.

机译:威胁生命的骨骼肌钠通道异常的机制。

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Myotonia is an intrinsic muscular disorder caused by muscle fibre hyperexcitability, which produces a prolonged time for relaxation after voluntary muscle contraction or internal mechanical stimulation. Missense mutations in skeletal muscle genes encoding Cl- or Na+ channels cause non-dystrophic myotonias.Mutations of the SCN4A gene that encodes the skeletal voltage-gated Na+ channel Nav1.4 can produce opposing phenotypes leading to hyperexcitable or inexcitable muscle fibres. Nav1.4 mutations result in different forms of myotonias that can be found in adults. However, the recently reported myotonic manifestations in infants have been shown to be lethal. This was typically the case for children suffering from severe neonatal episodic laryngospasm (SNEL). A novel Nav1.4 channel missense mutation was found in these children that has not yet been analysed. In this study, we characterize the functional consequences of the new A799S Na+ channel mutation that is associated with sodium channel myotonia in newborn babies. We have used mammalian cell expression and patch-clamp techniques to monitor the channel properties.We found that the A799S substitution changes several biophysical properties of the channel by causing a hyperpolarizing shift of the steady-state activation, and slowing the kinetics of fast inactivation and deactivation. In addition, the single channel open probability was dramatically increased, contributing hence to a severe phenotype. We showed that substitutions at position 799 of the Nav1.4 channel favoured the channel open state with sustained activity leading to hyperexcitability of laryngeal muscles that could be lethal during infancy.
机译:肌强直是由肌纤维过度兴奋引起的一种内在的肌肉疾病,其在自愿的肌肉收缩或内部机械刺激后产生延长的放松时间。编码Cl-或Na +通道的骨骼肌基因的错义突变会引起非营养不良性肌强直。编码骨骼肌电压门控Na +通道Nav1.4的SCN4A基因突变会产生相反的表型,导致过度兴奋或不兴奋的肌肉纤维。 Nav1.4突变会导致成年人体内出现不同形式的肌强直。但是,最近报道的婴儿肌强直表现已显示出致命性。对于患有严重的新生儿发作性喉痉挛(SNEL)的儿童来说,通常就是这种情况。在这些儿童中发现了一个尚未分析的新型Nav1.4通道错义突变。在这项研究中,我们表征了新生A799S Na +通道突变与新生儿钠通道肌强直相关的功能后果。我们已经使用哺乳动物细胞表达和膜片钳技术来监测通道特性。我们发现,A799S取代通过引起稳态激活的超极化位移,减慢快速灭活和动力学的速度而改变了通道的几种生物物理特性。停用。此外,单通道开放的可能性大大增加,从而导致严重的表型。我们显示,Nav1.4通道799位的取代有利于通道开放状态,并具有持续的活性,导致喉部肌肉过度兴奋,在婴儿期可能致命。

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