辅助 β 亚基对人类电压门控钠通道 NaV1.8 的功能调节。

S T Nevin, N Lawrence, A Nicke, R J Lewis, D J Adams
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引用次数: 0

摘要

电压门控钠通道 Nav1.8 在痛觉初级感觉神经元中介导抗河豚毒素(TTX-R)的 Na+ 电流,它在疼痛刺激的传递中起着重要作用。在这里,我们描述了人 Nav1.8 α 亚基在爪蟾卵母细胞中受到辅助 β 亚基的功能调节。我们发现,β3 亚基下调了 hNav1.8 的最大 Na+ 电流幅度,并使其从失活中恢复的速度减慢,而 β1 和 β2 亚基则没有这种影响。β3亚基对Nav1.8的特异性调节构成了初级感觉神经元中TTX-R Na+电流的一种潜在的新型调节机制,对慢性疼痛状态具有潜在的影响。特别是,神经病理性疼痛状态的特点是 Nav1.8 下调,同时 β3 亚基表达增加。我们的研究结果表明,这两种现象可能相互关联,β3 亚基水平的增加可能直接导致 Nav1.8 的下调。为了确定β3亚基的哪个结构域负责对hNav1.8的特定调控,我们创建了β1和β3亚基的嵌合体,并将它们与hNav1.8 α-亚基共同表达在爪蟾卵母细胞中。结果表明,β3 亚基的胞内结构域是下调最大 Nav1.8 电流振幅的原因。相反,β3 亚基的胞外结构域介导了对 hNav1.8 恢复动力学的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Functional modulation of the human voltage-gated sodium channel Na<sub>V</sub>1.8 by auxiliary β subunits.

Functional modulation of the human voltage-gated sodium channel Na<sub>V</sub>1.8 by auxiliary β subunits.

Functional modulation of the human voltage-gated sodium channel Na<sub>V</sub>1.8 by auxiliary β subunits.

Functional modulation of the human voltage-gated sodium channel NaV1.8 by auxiliary β subunits.

The voltage-gated sodium channel Nav1.8 mediates the tetrodotoxin-resistant (TTX-R) Na+ current in nociceptive primary sensory neurons, which has an important role in the transmission of painful stimuli. Here, we describe the functional modulation of the human Nav1.8 α-subunit in Xenopus oocytes by auxiliary β subunits. We found that the β3 subunit down-regulated the maximal Na+ current amplitude and decelerated recovery from inactivation of hNav1.8, whereas the β1 and β2 subunits had no such effects. The specific regulation of Nav1.8 by the β3 subunit constitutes a potential novel regulatory mechanism of the TTX-R Na+ current in primary sensory neurons with potential implications in chronic pain states. In particular, neuropathic pain states are characterized by a down-regulation of Nav1.8 accompanied by increased expression of the β3 subunit. Our results suggest that these two phenomena may be correlated, and that increased levels of the β3 subunit may directly contribute to the down-regulation of Nav1.8. To determine which domain of the β3 subunit is responsible for the specific regulation of hNav1.8, we created chimeras of the β1 and β3 subunits and co-expressed them with the hNav1.8 α-subunit in Xenopus oocytes. The intracellular domain of the β3 subunit was shown to be responsible for the down-regulation of maximal Nav1.8 current amplitudes. In contrast, the extracellular domain mediated the effect of the β3 subunit on hNav1.8 recovery kinetics.

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