Vestibular primary afferent responses to sound and vibration in the guinea pig

被引:0
|
作者
Ian S. Curthoys
Vedran Vulovic
机构
[1] The University of Sydney,Vestibular Research Laboratory, School of Psychology, A 18
[2] NSW,undefined
来源
Experimental Brain Research | 2011年 / 210卷
关键词
Vestibular; Utricular; Saccular; Otolithic; Bone conduction; Sound; Vibration;
D O I
暂无
中图分类号
学科分类号
摘要
This study tested whether air-conducted sound and bone-conducted vibration activated primary vestibular afferent neurons and whether, at low levels, such stimuli are specific to particular vestibular sense organs. In response to 500 Hz bone-conducted vibration or 500 Hz air-conducted sound, primary vestibular afferent neurons in the guinea pig fall into one of two categories––some neurons show no measurable change in firing up to 2 g peak-to-peak or 140 dB SPL. These are semicircular canal neurons (regular or irregular) and regular otolith neurons. In sharp contrast, otolith irregular neurons show high sensitivity: a steep increase in firing as stimulus intensity is increased. These sensitive neurons typically, but not invariably, were activated by both bone-conducted vibration and air-conducted sound, they originate from both the utricular and saccular maculae, and their sensitivity underpins new clinical tests of otolith function.
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页码:347 / 352
页数:5
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