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使用四电极反射系数技术测量耳蜗结构的电阻抗。

Electrical impedance measurements of cochlear structures using the four-electrode reflection-coefficient technique.

机构信息

Department of Otolaryngology - Head and Neck Surgery, Northwestern University, Feinberg School of Medicine, Chicago, Illinois 60611-3008, USA.

出版信息

Hear Res. 2010 Jan;259(1-2):86-94. doi: 10.1016/j.heares.2009.10.010. Epub 2009 Oct 24.

Abstract

In individuals with severe-to-profound hearing loss, cochlear implants (CIs) bypass normal inner ear function by applying electrical current directly into the cochlea, thereby stimulating surviving auditory nerve fibers. Although cochlear implants are able to restore some auditory sensation, they are far from providing normal hearing. It has been estimated that up to 75% of the current injected via a CI is shunted along scala tympani and is not available to stimulate auditory neurons. The path of the injected current and the consequent population of stimulated spiral ganglion cells are dependent upon the positions of the electrode contacts within the cochlea and the impedances of cochlear structures. However, characterization of the current path remains one of the most critical, yet least understood, aspects of cochlear implantation. In particular, the impedances of cochlear structures, including the modiolus, are either unknown or based upon estimates derived from circuit models. Impedance values for many cochlear structures have never been measured. By combining the hemicochlea preparation, a cochlea cut in half along its mid-modiolar plane, and the four-electrode reflection-coefficient technique, impedances can be measured for cochlear tissues in a cochlear cross section including the modiolus. Advantages and disadvantages of the method are discussed in detail and electrical impedance measurements obtained in the gerbil hemicochlea are presented. The resistivity values for the cochlear wall in Omegacm are, 528 (range: 432-708) for scala media 3rd turn, 502 (range: 421-616) for scala tympani 3rd turn and scala vestibuli 2nd turn, 627 (range: 531-759) for scala media 2nd turn, 434 (range: 353-555) for scala tympani 2nd turn and scala vestibuli basal turn, 434 (range: 373-514) for scala media basal turn, and 590 (range: 546-643) for scala tympani basal turn. The resistivity was 455Omegacm (range: 426-487) for the modiolus.

摘要

在重度至极重度听力损失的个体中,通过将电流直接施加到耳蜗来绕过内耳功能,从而刺激残存的听神经纤维。尽管耳蜗植入物能够恢复一些听觉感觉,但它们远非提供正常听力。据估计,高达 75%的通过 CI 注入的电流沿着鼓阶分流,而无法刺激听觉神经元。注入电流的路径以及由此产生的刺激螺旋神经节细胞群体取决于耳蜗内电极接触的位置和耳蜗结构的阻抗。然而,电流路径的特征仍然是耳蜗植入物最关键但理解最少的方面之一。特别是,耳蜗结构的阻抗,包括中轴,要么未知,要么基于来自电路模型的估计。许多耳蜗结构的阻抗值从未被测量过。通过结合半耳蜗制备,即沿着中轴平面将耳蜗切成两半的耳蜗,以及四电极反射系数技术,可以测量包括中轴在内的耳蜗横切面上的耳蜗组织的阻抗。详细讨论了该方法的优缺点,并介绍了在沙鼠半耳蜗中获得的电阻抗测量结果。在 Omegacm 中,耳蜗壁的电阻率值为:第三转鼓阶中的中阶 528(范围:432-708),第三转鼓阶和前庭阶中的鼓阶 502(范围:421-616),第二转中阶 627(范围:531-759),第二转鼓阶和前庭阶基底转中的鼓阶 434(范围:353-555),基底转中的中阶 434(范围:373-514),以及基底转中的鼓阶 590(范围:546-643)。中轴的电阻率为 455Ωmega(范围:426-487)。

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