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本文引用的文献

1
Timing of the reticular lamina and basilar membrane vibration in living gerbil cochleae.活体沙鼠耳蜗网状层和基底膜振动的时间。
Elife. 2018 Sep 5;7:e37625. doi: 10.7554/eLife.37625.
2
Vibration hotspots reveal longitudinal funneling of sound-evoked motion in the mammalian cochlea.振动热点揭示了哺乳动物耳蜗中声激发运动的纵向集中。
Nat Commun. 2018 Aug 3;9(1):3054. doi: 10.1038/s41467-018-05483-z.
3
Cochlear amplification and tuning depend on the cellular arrangement within the organ of Corti.耳蜗的放大和调谐取决于耳蜗内细胞的排列。
Proc Natl Acad Sci U S A. 2018 May 29;115(22):5762-5767. doi: 10.1073/pnas.1720979115. Epub 2018 May 14.
4
Non-tip auditory-nerve responses that are suppressed by low-frequency bias tones originate from reticular lamina motion.被低频偏置音抑制的非尖端听觉神经反应源自网状板运动。
Hear Res. 2018 Feb;358:1-9. doi: 10.1016/j.heares.2017.12.008. Epub 2017 Dec 14.
5
Hearing at speech frequencies is different from what we thought.言语频率下的听力与我们之前所想的不同。
J Physiol. 2017 Jul 1;595(13):4123-4124. doi: 10.1113/JP274418. Epub 2017 May 25.
6
Mechanical tuning and amplification within the apex of the guinea pig cochlea.豚鼠耳蜗顶端的机械调谐与放大
J Physiol. 2017 Jul 1;595(13):4549-4561. doi: 10.1113/JP273881. Epub 2017 May 21.
7
Signal competition in optical coherence tomography and its relevance for cochlear vibrometry.光学相干断层扫描中的信号竞争及其与耳蜗振动测量的相关性。
J Acoust Soc Am. 2017 Jan;141(1):395. doi: 10.1121/1.4973867.
8
Hair cell force generation does not amplify or tune vibrations within the chicken basilar papilla.毛细胞的力产生不会放大或调整鸡基底乳头内的振动。
Nat Commun. 2016 Oct 31;7:13133. doi: 10.1038/ncomms13133.
9
Comparative Auditory Neuroscience: Understanding the Evolution and Function of Ears.比较听觉神经科学:了解耳朵的进化与功能
J Assoc Res Otolaryngol. 2017 Feb;18(1):1-24. doi: 10.1007/s10162-016-0579-3. Epub 2016 Aug 18.
10
Reticular lamina and basilar membrane vibrations in living mouse cochleae.活体小鼠耳蜗中的网状板和基底膜振动
Proc Natl Acad Sci U S A. 2016 Aug 30;113(35):9910-5. doi: 10.1073/pnas.1607428113. Epub 2016 Aug 11.

应用体光学相干断层扫描和振动测量法测量完整沙鼠耳蜗中的 Corti 器官振动。

Organ of Corti vibration within the intact gerbil cochlea measured by volumetric optical coherence tomography and vibrometry.

机构信息

VA Loma Linda Healthcare System, Loma Linda, California.

Department of Otolaryngology - Head and Neck Surgery, Loma Linda University Health , Loma Linda, California.

出版信息

J Neurophysiol. 2018 Dec 1;120(6):2847-2857. doi: 10.1152/jn.00702.2017. Epub 2018 Oct 3.

DOI:10.1152/jn.00702.2017
PMID:30281386
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6337041/
Abstract

There is indirect evidence that the mammalian cochlea in the low-frequency apical and the more commonly studied high-frequency basal regions function in fundamentally different ways. Here, we directly tested this hypothesis by measuring sound-induced vibrations of the organ of Corti (OoC) at three turns of the gerbil cochlea using volumetric optical coherence tomography vibrometry (VOCTV), an approach that permits noninvasive imaging through the bone. In the apical turn, there was little frequency selectivity, and the displacement-vs.-frequency curves had low-pass filter characteristics with a corner frequency of ~0.5-0.9 kHz. The vibratory magnitudes increased compressively with increasing stimulus intensity at all frequencies. In the middle turn, responses were similar except for a slight peak in the response at ~2.5 kHz. The gain was ~50 dB at the peak and 30-40 dB at lower frequencies. In the basal turn, responses were sharply tuned and compressively nonlinear, consistent with observations in the literature. These data demonstrated that there is a transition of the mechanical response of the OoC along the length of the cochlea such that frequency tuning is sharper in the base than in the apex. Because the responses are fundamentally different, it is not appropriate to simply frequency shift vibratory data measured at one cochlear location to predict the cochlear responses at other locations. Furthermore, this means that the number of hair cells stimulated by sound is larger for low-frequency stimuli and smaller for high-frequency stimuli for the same intensity level. Thus the mechanisms of central processing of sounds must vary with frequency. NEW & NOTEWORTHY A volumetric optical coherence tomography and vibrometry system was used to probe cochlear mechanics within the intact gerbil cochlea. We found a gradual transition of the mechanical response of the organ of Corti along the length of the cochlea such that tuning at the base is dramatically sharper than that at the apex. These data help to explain discrepancies in the literature regarding how the cochlea processes low-frequency sounds.

摘要

有间接证据表明,哺乳动物耳蜗的低频顶部和更常研究的高频底部区域以根本不同的方式发挥作用。在这里,我们通过使用体相干光断层扫描振动计 (VOCTV) 直接测量了沙鼠耳蜗三个转的 Corti 器官 (OoC) 的声音诱导振动,该方法允许通过骨骼进行非侵入性成像。在顶部转弯处,频率选择性很小,位移与频率曲线具有低通滤波器特性,截止频率约为 0.5-0.9 kHz。在所有频率下,随着刺激强度的增加,振动幅度呈压缩性增加。在中间转弯处,响应相似,除了在约 2.5 kHz 处的响应略有峰值。在峰值处的增益约为 50 dB,在较低频率下为 30-40 dB。在底部转弯处,响应是急剧调谐和压缩非线性的,与文献中的观察结果一致。这些数据表明,OoC 的机械响应沿着耳蜗的长度发生了转变,使得基底的频率调谐比顶部更尖锐。由于响应从根本上不同,因此不适合简单地将在耳蜗一个位置测量的振动数据进行频率移位以预测其他位置的耳蜗响应。此外,这意味着对于相同的强度水平,低频刺激刺激的毛细胞数量比高频刺激大。因此,声音的中枢处理机制必须随频率而变化。新的和值得注意的是,使用体相干光断层扫描和振动计系统来探测完整沙鼠耳蜗内的耳蜗力学。我们发现,Corti 器官的机械响应沿着耳蜗的长度逐渐发生转变,使得基底的调谐明显比顶部更尖锐。这些数据有助于解释文献中关于耳蜗如何处理低频声音的差异。