The Effects of Middle-ear Stiffness on the Auditory Brainstem Neural Encoding of Phase.

Jordan M Racca, Rafael E Delgado, René H Gifford, Ramnarayan Ramachandran, Linda J Hood
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Abstract

The middle-ear system relies on a balance of mass and stiffness characteristics for transmitting sound from the external environment to the cochlea and auditory neural pathway. Phase is one aspect of sound that, when transmitted and encoded by both ears, contributes to binaural cue sensitivity and spatial hearing. The study aims were (i) to investigate the effects of middle-ear stiffness on the auditory brainstem neural encoding of phase in human adults with normal pure-tone thresholds and (ii) to investigate the relationships between middle-ear stiffness-induced changes in wideband acoustic immittance and neural encoding of phase. The auditory brainstem neural encoding of phase was measured using the auditory steady-state response (ASSR) with and without middle-ear stiffness elicited via contralateral activation of the middle-ear muscle reflex (MEMR). Middle-ear stiffness was quantified using a wideband acoustic immittance assay of acoustic absorbance. Statistical analyses demonstrated decreased ASSR phase lag and decreased acoustic absorbance with contralateral activation of the MEMR, consistent with increased middle-ear stiffness changing the auditory brainstem neural encoding of phase. There were no statistically significant correlations between stiffness-induced changes in wideband acoustic absorbance and ASSR phase. The findings of this study may have important implications for understanding binaural cue sensitivity and horizontal plane sound localization in audiologic and otologic clinical populations that demonstrate changes in middle-ear stiffness, including cochlear implant recipients who use combined electric and binaural acoustic hearing and otosclerosis patients.

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中耳僵硬度对听觉脑干相位神经编码的影响。
中耳系统依靠质量和刚度特性的平衡将声音从外部环境传递到耳蜗和听觉神经通路。相位是声音的一个方面,当双耳传递和编码时,有助于双耳线索敏感性和空间听力。本研究的目的是:(i)研究中耳硬度对具有正常纯音阈值的成年人听觉脑干相位神经编码的影响;(ii)研究中耳硬度引起的宽带声阻抗变化与相位神经编码之间的关系。通过对侧中耳肌肉反射(MEMR)引起中耳僵硬和不僵硬的听觉稳态反应(ASSR)来测量听觉脑干的相位神经编码。使用声吸收的宽带声阻抗测定来量化中耳刚度。统计分析表明,对侧激活MEMR会减少ASSR相位滞后和声吸收,这与中耳僵硬度增加改变听觉脑干神经编码相一致。刚度引起的宽带声吸光度变化与ASSR相位之间无统计学意义的相关性。这项研究的发现可能对理解中耳僵硬变化的听力学和耳科学临床人群的双耳线索敏感性和水平面声音定位具有重要意义,包括使用电声和双耳联合听觉的人工耳蜗受者和耳硬化患者。
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来源期刊
CiteScore
4.10
自引率
12.50%
发文量
57
审稿时长
6-12 weeks
期刊介绍: JARO is a peer-reviewed journal that publishes research findings from disciplines related to otolaryngology and communications sciences, including hearing, balance, speech and voice. JARO welcomes submissions describing experimental research that investigates the mechanisms underlying problems of basic and/or clinical significance. Authors are encouraged to familiarize themselves with the kinds of papers carried by JARO by looking at past issues. Clinical case studies and pharmaceutical screens are not likely to be considered unless they reveal underlying mechanisms. Methods papers are not encouraged unless they include significant new findings as well. Reviews will be published at the discretion of the editorial board; consult the editor-in-chief before submitting.
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