首页> 美国卫生研究院文献>Journal of Neurophysiology >Ca2+ toxicity due to reverse Na+/Ca2+ exchange contributes to degeneration of neurites of DRG neurons induced by a neuropathy-associated Nav1.7 mutation
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Ca2+ toxicity due to reverse Na+/Ca2+ exchange contributes to degeneration of neurites of DRG neurons induced by a neuropathy-associated Nav1.7 mutation

机译:由于反向Na + / Ca2 +交换引起的Ca2 +毒性导致神经病相关Nav1.7突变诱导的DRG神经元神经突变性

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摘要

Gain-of-function missense mutations in voltage-gated sodium channel Nav1.7 have been linked to small-fiber neuropathy, which is characterized by burning pain, dysautonomia and a loss of intraepidermal nerve fibers. However, the mechanistic cascades linking Nav1.7 mutations to axonal degeneration are incompletely understood. The G856D mutation in Nav1.7 produces robust changes in channel biophysical properties, including hyperpolarized activation, depolarized inactivation, and enhanced ramp and persistent currents, which contribute to the hyperexcitability exhibited by neurons containing Nav1.8. We report here that cell bodies and neurites of dorsal root ganglion (DRG) neurons transfected with G856D display increased levels of intracellular Na+ concentration ([Na+]) and intracellular [Ca2+] following stimulation with high [K+] compared with wild-type (WT) Nav1.7-expressing neurons. Blockade of reverse mode of the sodium/calcium exchanger (NCX) or of sodium channels attenuates [Ca2+] transients evoked by high [K+] in G856D-expressing DRG cell bodies and neurites. We also show that treatment of WT or G856D-expressing neurites with high [K+] or 2-deoxyglucose (2-DG) does not elicit degeneration of these neurites, but that high [K+] and 2-DG in combination evokes degeneration of G856D neurites but not WT neurites. Our results also demonstrate that 0 Ca2+ or blockade of reverse mode of NCX protects G856D-expressing neurites from degeneration when exposed to high [K+] and 2-DG. These results point to [Na+] overload in DRG neurons expressing mutant G856D Nav1.7, which triggers reverse mode of NCX and contributes to Ca2+ toxicity, and suggest subtype-specific blockade of Nav1.7 or inhibition of reverse NCX as strategies that might slow or prevent axon degeneration in small-fiber neuropathy.
机译:电压门控钠通道Nav1.7的功能获得性错义突变与小纤维神经病有关,小纤维神经病的特征是灼痛,自主神经不全和表皮内神经纤维丢失。但是,尚未完全了解将Nav1.7突变与轴突变性联系起来的机制级联。 Nav1.7中的G856D突变在通道生物物理特性中产生了强大的变化,包括超极化激活,去极化失活以及增强的斜坡和持续电流,这些都有助于包含Nav1.8的神经元表现出的过度兴奋性。我们在此报告,转染G856D的背根神经节(DRG)神经元的细胞体和神经突显示出细胞内Na + 浓度([Na + ])和细胞内[与野生型(WT)Nav1.7表达神经元相比,高[K + ]刺激后的Ca 2 + ]。阻断钠/钙交换剂(NCX)或钠通道的反向模式可减弱表达G856D的DRG中高[K + ]引起的[Ca 2 + ]瞬变细胞体和神经突。我们还表明,用高[K + ]或2-脱氧葡萄糖(2-DG)处理表达WT或G856D的神经突不会引起这些神经突的变性,但是高[K + ]和2-DG共同引起G856D神经突的变性,而不引起WT神经突的变性。我们的结果还表明,当暴露于高[K + ]和2-DG时,0 Ca 2 + 或NCX反向模式的阻断可保护表达G856D的神经突免于变性。这些结果表明在表达突变体G856D Nav1.7的DRG神经元中[Na + ]超载,这会触发NCX的反向模式并导致Ca 2 + 毒性,并提示亚型Nav1.7的特异性阻断或抑制反向NCX作为可能减慢或预防小纤维神经病中轴突变性的策略。

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