沙鼠柯蒂基底器官耳蜗非线性的区域差异

IF 2.5 2区 医学 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY Hearing Research Pub Date : 2024-01-12 DOI:10.1016/j.heares.2024.108951
C. Elliott Strimbu , Lauren A. Chiriboga , Brian L. Frost , Elizabeth S. Olson
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引用次数: 0

摘要

听觉的基础是耳蜗感觉组织--柯蒂复合体器官(OCC)的纳米级振动。通过光学相干断层扫描,现在可以观察到 OCC 内部的运动。在之前的一项研究(Cooper 等人,2018 年)中,观察到包括电运动外毛细胞(OHC)和 Deiters 细胞(DC)的区域比基底膜(BM)和周围区域的运动幅度更大,被称为 "热点"。除了这种数量上的区别外,热点的运动在质量上也与基底膜不同,因为它的运动在所有频率上都与刺激水平呈非线性比例,这证明了亚基底膜活动。亚基频活动会增强非基频运动;因此,OHC/DC 区域的频率调谐相对于 BM 有所减弱。在这项工作中,我们进一步探索了沙鼠基底 OCC 的运动,发现缺乏显著亚 BF 活动的区域包括 BM、内侧和外侧 OCC 以及网状薄层(RL)区域。观察发现,RL 区域在 BF 下活动并不活跃(在 Cho 和 Puria 2022 年的研究中已经观察到),这表明耳蜗基部的毛细胞立体纤毛没有暴露于 BF 下活动。观察到外侧和 RL 区域在 sub-BF 频率下近似线性移动,这表明在 sub-BF 频率下,线性力在这些元件上的基于 OHC 的非线性力中占主导地位。为了揭示 OHC/DC 区域的内部运动,我们进行了复差分析,结果表明,由于 OHC/DC 内部运动破坏性地干扰了 BM 运动,直接测量的 OHC/DC 运动出现了振幅结构和相位偏移。
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Regional differences in cochlear nonlinearity across the basal organ of Corti of gerbil

Auditory sensation is based in nanoscale vibration of the sensory tissue of the cochlea, the organ of Corti complex (OCC). Motion within the OCC is now observable due to optical coherence tomography. In a previous study (Cooper et al., 2018), the region that includes the electro-motile outer hair cells (OHC) and Deiters cells (DC) was observed to move with larger amplitude than the basilar membrane (BM) and surrounding regions and was termed the "hotspot." In addition to this quantitative distinction, the hotspot moved qualitatively differently than the BM, in that its motion scaled nonlinearly with stimulus level at all frequencies, evincing sub-BF activity. Sub-BF activity enhances non-BF motion; thus the frequency tuning of the OHC/DC region was reduced relative to the BM. In this work we further explore the motion of the gerbil basal OCC and find that regions that lack significant sub-BF activity include the BM, the medial and lateral OCC, and the reticular lamina (RL) region. The observation that the RL region does not move actively sub-BF (already observed in Cho and Puria 2022), suggests that hair cell stereocilia are not exposed to sub-BF activity in the cochlear base. The observation that the lateral and RL regions move approximately linearly sub-BF indicates that linear forces dominate non-linear OHC-based forces on these components at sub-BF frequencies. A complex difference analysis was performed to reveal the internal motion of the OHC/DC region and showed that amplitude structure and phase shifts in the directly measured OHC/DC motion emerge due to the internal OHC/DC motion destructively interfering with BM 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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