...
首页> 外文期刊>Scientific reports. >Sodium-activated potassium channels shape peripheral auditory function and activity of the primary auditory neurons in mice
【24h】

Sodium-activated potassium channels shape peripheral auditory function and activity of the primary auditory neurons in mice

机译:钠激活的钾通道塑造小鼠的外周听觉功能和初级听觉神经元活动

获取原文
           

摘要

Potassium (K+) channels shape the response properties of neurons. Although enormous progress has been made to characterize K+ channels in the primary auditory neurons, the molecular identities of many of these channels and their contributions to hearing in vivo remain unknown. Using a combination of RNA sequencing and single molecule fluorescent in situ hybridization, we localized expression of transcripts encoding the sodium-activated potassium channels KNa1.1 (SLO2.2/Slack) and KNa1.2 (SLO2.1/Slick) to the primary auditory neurons (spiral ganglion neurons, SGNs). To examine the contribution of these channels to function of the SGNs in vivo, we measured auditory brainstem responses in KNa1.1/1.2 double knockout (DKO) mice. Although auditory brainstem response (wave I) thresholds were not altered, the amplitudes of suprathreshold responses were reduced in DKO mice. This reduction in amplitude occurred despite normal numbers and molecular architecture of the SGNs and their synapses with the inner hair cells. Patch clamp electrophysiology of SGNs isolated from DKO mice displayed altered membrane properties, including reduced action potential thresholds and amplitudes. These findings show that KNa1 channel activity is essential for normal cochlear function and suggest that early forms of hearing loss may result from physiological changes in the activity of the primary auditory neurons.
机译:钾(K +)通道塑造神经元的响应特性。尽管在表征原发性听觉神经元中的K +通道方面已取得了巨大进展,但许多这些通道的分子身份及其对体内听觉的贡献仍然未知。使用RNA测序和单分子荧光原位杂交的组合,我们将编码钠激活钾通道KNa1.1(SLO2.2 / Slack)和KNa1.2(SLO2.1 / Slick)的转录本的表达定位于原发听神经元(螺旋神经节神经元,SGN)。为了检查这些通道对体内SGNs功能的贡献,我们在KNa1.1 / 1.2双敲除(DKO)小鼠中测量了听觉脑干反应。尽管听觉脑干反应(第一波)的阈值没有改变,但DKO小鼠的阈上反应幅度却降低了。尽管SGN的数目和分子结构正常以及它们与内部毛细胞的突触,振幅仍会降低。从DKO小鼠分离的SGN的膜片钳电生理学显示改变的膜特性,包括降低的动作电位阈值和幅度。这些发现表明,KNa1通道的活动对于正常的耳蜗功能至关重要,并表明早期听力损失的形式可能是初级听觉神经元活动的生理变化所致。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号