豚鼠基底Corti运动器官的研究,包括内部运动的差异分析。

IF 2.5 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY
Lauren A Chiriboga, C Elliott Strimbu, Elika Fallah, Elizabeth S Olson
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引用次数: 0

摘要

听觉是由听觉器官内部的微机械运动相互作用产生的。光学相干断层扫描(OCT)振动测量技术已被用于检测基底膜(BM)、外毛细胞(OHCs)和网状层(RL)等OC结构的同步运动,并以沙鼠和豚鼠(GP)为常见动物模型。在沙鼠ohc区域内,增强(运动响应大于被动运动)和低于最佳频率(次bf)频率的非线性是一个可靠的观察结果。Fallah等人(2021)比较了沙鼠和GP的基本OC力学,发现GP在次bf频率下的OC运动通常比沙鼠的运动增强更少,非线性也更小。在目前的工作中,我们在同一实验中通过圆窗(RW)和基础耳蜗造口术测量耳蜗内运动来扩展GP测量。我们发现通过RW和耳蜗造口术测量的运动有很大的不同。在OHC/ deiter细胞(DC)区域,通过耳蜗造口术测量存在亚bf非线性和增强,但通过RW不存在。在RW测量中,RL区域存在轻度的亚bf非线性,但在耳蜗造口术中没有。讨论提出了这些差异的假设,包括光学角度依赖和机械摄动。最后,采用复差分析方法提取基于基底运动的基底结构的内部运动。与直接测量的OC运动相比,内部OC运动的刺激水平依赖性在相位响应中降低,在幅度响应中增加,并且在提取的内部OC运动中不存在测量运动中的非单调标度等不规则性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of organ of Corti motion in the guinea pig base including differential analysis of internal motion.

The sensation of hearing arises from the interplay of micromechanical motion within the organ of Corti (OC). Optical coherence tomography (OCT) vibrometry has been used to examine the simultaneous motions of OC structures, including the basilar membrane (BM), outer hair cells (OHCs) and reticular lamina (RL), with gerbil and guinea pig (GP) as common animal models. Boosting (motion responses larger than passive motion), and nonlinearity at frequencies below the best frequency (sub-BF) are a robust observation within the gerbil OHC-region. Fallah et al. (2021) compared basal OC mechanics between gerbil and GP and found that GP OC motions at sub-BF frequencies were generally less boosted and showed less nonlinearity than those in gerbil. In the present work, we expand upon the GP measurements by measuring intra-OC motion through both the round window (RW) and a basal cochleostomy in the same experiment. We found substantial differences in the motions when measured through the RW versus the cochleostomy. In the OHC/Deiters Cell(DC) region, sub-BF nonlinearity and boosting were present in measurements through a cochleostomy, but not through the RW. A mild degree of sub-BF nonlinearity was present in the RL region in RW measurements, but not through the cochleostomy. The discussion proposes hypotheses for these differences, including optical angle dependency and mechanical perturbation. Finally, a complex difference analysis was used to extract the internal motion of OC structures riding on the BM motion. The stimulus-level-dependence of the internal OC motions was reduced in the phase responses and increased in the amplitude responses compared to the directly measured OC motion, and irregularities such as nonmonotonic scaling in the measured motion were not present in the extracted internal motion.

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来源期刊
Hearing Research
Hearing Research 医学-耳鼻喉科学
CiteScore
5.30
自引率
14.30%
发文量
163
审稿时长
75 days
期刊介绍: The aim of the journal is to provide a forum for papers concerned with basic peripheral and central auditory mechanisms. Emphasis is on experimental and clinical studies, but theoretical and methodological papers will also be considered. The journal publishes original research papers, review and mini- review articles, rapid communications, method/protocol and perspective articles. Papers submitted should deal with auditory anatomy, physiology, psychophysics, imaging, modeling and behavioural studies in animals and humans, as well as hearing aids and cochlear implants. Papers dealing with the vestibular system are also considered for publication. Papers on comparative aspects of hearing and on effects of drugs and environmental contaminants on hearing function will also be considered. Clinical papers will be accepted when they contribute to the understanding of normal and pathological hearing functions.
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