Dib-Hajj S D, Tyrrell L, Black J A, Waxman S G
Department of Neurology, LCI 707, Yale University School of Medicine, 333 Cedar Street, New Haven, CT 06510, USA.
Proc Natl Acad Sci U S A. 1998 Jul 21;95(15):8963-8. doi: 10.1073/pnas.95.15.8963.
Although physiological and pharmacological evidence suggests the presence of multiple tetrodotoxin-resistant (TTX-R) Na channels in neurons of peripheral nervous system ganglia, only one, SNS/PN3, has been identified in these cells to date. We have identified and sequenced a novel Na channel alpha-subunit (NaN), predicted to be TTX-R and voltage-gated, that is expressed preferentially in sensory neurons within dorsal root ganglia (DRG) and trigeminal ganglia. The predicted amino acid sequence of NaN can be aligned with the predicted structure of known Na channel alpha-subunits; all relevant landmark sequences, including positively charged S4 and pore-lining SS1-SS2 segments, and the inactivation tripeptide IFM, are present at predicted positions. However, NaN exhibits only 42-53% similarity to other mammalian Na channels, including SNS/PN3, indicating that it is a novel channel, and suggesting that it may represent a third subfamily of Na channels. NaN transcript levels are reduced significantly 7 days post axotomy in DRG neurons, consistent with previous findings of a reduction in TTX-R Na currents. The preferential expression of NaN in DRG and trigeminal ganglia and the reduction of NaN mRNA levels in DRG after axonal injury suggest that NaN, together with SNS/PN3, may produce TTX-R currents in peripheral sensory neurons and may influence the generation of electrical activity in these cells.
尽管生理学和药理学证据表明,外周神经系统神经节的神经元中存在多种抗河豚毒素(TTX-R)钠通道,但迄今为止,在这些细胞中仅鉴定出一种,即SNS/PN3。我们已经鉴定并测序了一种新的钠通道α亚基(NaN),预计它是抗河豚毒素且电压门控的,该亚基在背根神经节(DRG)和三叉神经节内的感觉神经元中优先表达。NaN的预测氨基酸序列可以与已知钠通道α亚基的预测结构比对;所有相关的标志性序列,包括带正电荷的S4和构成孔道的SS1-SS2片段,以及失活三肽IFM,都出现在预测位置。然而,NaN与其他哺乳动物钠通道(包括SNS/PN3)的相似性仅为42%-53%,这表明它是一种新的通道,并提示它可能代表钠通道的第三个亚家族。在DRG神经元中,轴突切断术后7天,NaN转录水平显著降低,这与之前关于抗河豚毒素钠电流减少的研究结果一致。NaN在DRG和三叉神经节中的优先表达以及轴突损伤后DRG中NaN mRNA水平的降低表明,NaN与SNS/PN3一起,可能在外周感觉神经元中产生抗河豚毒素电流,并可能影响这些细胞中电活动的产生。