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Sensory Processing: ACh-induced hyperpolarization and decreased resistance in mammalian type II vestibular hair cells

机译:感觉加工:乙酰胆碱诱导的超极化和降低的哺乳动物II型前庭毛细胞的抵抗力。

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摘要

In the mammalian vestibular periphery, electrical activation of the efferent vestibular system (EVS) has two effects on afferent activity: 1) it increases background afferent discharge and 2) decreases afferent sensitivity to rotational stimuli. Although the cellular mechanisms underlying these two contrasting afferent responses remain obscure, we postulated that the reduction in afferent sensitivity was attributed, in part, to the activation of α9- containing nicotinic acetylcholine (ACh) receptors (α9*nAChRs) and small-conductance potassium channels (SK) in vestibular type II hair cells, as demonstrated in the peripheral vestibular system of other vertebrates. To test this hypothesis, we examined the effects of the predominant EVS neurotransmitter ACh on vestibular type II hair cells from wild-type (wt) and α9-subunit nAChR knockout (α9−/−) mice. Immunostaining for choline acetyltransferase revealed there were no obvious gross morphological differences in the peripheral EVS innervation among any of these strains. ACh application onto wt type II hair cells, at resting potentials, produced a fast inward current followed by a slower outward current, resulting in membrane hyperpolarization and decreased membrane resistance. Hyperpolarization and decreased resistance were due to gating of SK channels. Consistent with activation of α9*nAChRs and SK channels, these ACh-sensitive currents were antagonized by the α9*nAChR blocker strychnine and SK blockers apamin and tamapin. Type II hair cells from α9−/− mice, however, failed to respond to ACh at all. These results confirm the critical importance of α9nAChRs in efferent modulation of mammalian type II vestibular hair cells. Application of exogenous ACh reduces electrical impedance, thereby decreasing type II hair cell sensitivity.>NEW & NOTEWORTHY Expression of α9 nicotinic subunit was crucial for fast cholinergic modulation of mammalian vestibular type II hair cells. These findings show a multifaceted efferent mechanism for altering hair cell membrane potential and decreasing membrane resistance that should reduce sensitivity to hair bundle displacements.
机译:在哺乳动物前庭外围,传出前庭系统(EVS)的电激活对传入活动有两个影响:1)增加背景传入放电; 2)降低传入对旋转刺激的敏感性。尽管这两种不同传入反应的细胞机制仍然不清楚,但我们推测传入敏感性的降低部分归因于含α9的烟碱乙酰胆碱(ACh)受体(α9* nAChRs)和小电导钾的激活通道(SK)在前庭II型毛细胞中,如在其他脊椎动物的外周前庭系统中所证实的。为了验证这一假设,我们研究了主要的EVS神经递质ACh对野生型(wt)和α9亚基nAChR基因敲除(α9-/-)小鼠的前庭II型毛细胞的影响。胆碱乙酰基转移酶的免疫染色显示,这些菌株中的任何一种在外周EVS神经支配方面均没有明显的总体形态学差异。在静止电位下,将ACh施加到wt型II毛细胞上会产生快速的内向电流,然后是较慢的外向电流,从而导致膜超极化并降低膜电阻。超极化和降低的电阻归因于SK通道的门控。与α9* nAChRs和SK通道的激活相一致,这些对ACh敏感的电流被α9* nAChR阻滞剂士的宁和SK阻滞剂apamin和tamapin拮抗。然而,来自α9-/-小鼠的II型毛细胞完全无法响应ACh。这些结果证实了α9nAChR在传代调节哺乳动物II型前庭毛细胞中的至关重要性。外源性ACh的使用会降低电阻抗,从而降低II型毛细胞的敏感性。>新的和值得注意的α9烟碱亚基的表达对于哺乳动物前庭II型毛细胞的快速胆碱能调节至关重要。这些发现表明,改变毛细胞膜电位和降低膜阻力的多面性传出机制应降低对发束移位的敏感性。

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