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应用三维重建技术对植入患者的人耳蜗进行形态学线性和角度测量。

Morphometric linear and angular measurements of the human cochlea in implant patients using 3-dimensional reconstruction.

机构信息

UCLA David Geffen School of Medicine Department of Head and Neck Surgery, Los Angeles, CA, 90095, USA.

UCLA David Geffen School of Medicine Department of Neurology, Los Angeles, CA, 90095, USA.

出版信息

Hear Res. 2020 Feb;386:107874. doi: 10.1016/j.heares.2019.107874. Epub 2019 Dec 20.

DOI:10.1016/j.heares.2019.107874
PMID:31893539
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7100312/
Abstract

The present study is the first to evaluate the spiral ganglion neurons (SGNs) and the linear and angular measurements of the cochlea in temporal bones of cochlear implant (CI) recipients. There are no studies evaluating the morphometric measures in subjects after long-term CI use, and this study fills in this gap in current knowledge, greatly important for the design of CI electrodes. Amira based 3-D reconstructions of the cochlea were generated from stained histopathological slides of 15 celloidin-embedded human temporal bones. The SGN angular distance from the round window exhibited a narrow range from 684°-704°, corresponding to linear distances of 17.87 and 34.48 mm along the inner and outer wall of the scala tympani. The first turn measured an average of 14.21 mm along the inner wall and 23.92 mm along the outer wall. The outer wall average for the second turn was 11.11 mm and for the partial third apical turn was only 4.49 mm. The range for cochlear duct angular distance was 876° to 1051°, with a mean of 2.63 turns, corresponding to an average linear distance of 39.53 mm, ranging from 35.44 mm to 43.57 mm 6 out of 15 temporal bones demonstrated better preservation of SGN in the middle and apical segments of Rosenthal's canal. The present study demonstrates that the anatomy of the cochlea of CI patients does not differ significantly from that of normative subjects and establishes measurements using the round window as the 0° reference point, an important surgical landmark. The relevance of the measurements to cochlear implant design are discussed.

摘要

本研究首次评估了人工耳蜗(CI)受者颞骨中的螺旋神经节神经元(SGN)以及耳蜗的线性和角度测量值。目前还没有研究评估长期使用 CI 后的受试者的形态测量值,本研究填补了当前知识的空白,对 CI 电极的设计具有重要意义。Amira 基于 15 个人工耳蜗植入颞骨的细胞素包埋组织学切片生成了耳蜗的 3D 重建。从圆窗到 SGN 的角度距离在 684°-704°之间,这对应于沿鼓阶内、外壁的线性距离为 17.87 和 34.48mm。第一圈平均沿内壁为 14.21mm,沿外壁为 23.92mm。第二圈的外壁平均值为 11.11mm,部分第三圈顶圈仅为 4.49mm。耳蜗管角度距离的范围为 876°至 1051°,平均为 2.63 圈,对应的平均线性距离为 39.53mm,范围为 35.44mm 至 43.57mm。15 个人工耳蜗颞骨中有 6 个人工耳蜗显示 Rosenthal 管的中、顶段 SGN 保存较好。本研究表明,CI 患者的耳蜗解剖结构与正常受试者无显著差异,并建立了以圆窗为 0°参考点的测量方法,这是一个重要的手术标志。讨论了这些测量值与人工耳蜗设计的相关性。

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2
Measuring Cochlear Duct Length - a historical analysis of methods and results.测量蜗管长度——方法与结果的历史分析
J Otolaryngol Head Neck Surg. 2017 Mar 7;46(1):19. doi: 10.1186/s40463-017-0194-2.
3
Post Hybrid Cochlear Implant Hearing Loss and Endolymphatic Hydrops.混合式人工耳蜗植入后听力损失与内淋巴积水
Otol Neurotol. 2016 Dec;37(10):1516-1521. doi: 10.1097/MAO.0000000000001199.
4
Correlation between word recognition score and intracochlear new bone and fibrous tissue after cochlear implantation in the human.人工耳蜗植入术后人类单词识别分数与耳蜗内新骨及纤维组织之间的相关性
Hear Res. 2016 Sep;339:132-41. doi: 10.1016/j.heares.2016.06.015. Epub 2016 Jun 29.
5
Electrode Location and Angular Insertion Depth Are Predictors of Audiologic Outcomes in Cochlear Implantation.电极位置和角度插入深度是人工耳蜗植入听力结果的预测因素。
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Empirical Derivation of Correction Factors for Human Spiral Ganglion Cell Nucleus and Nucleolus Count Units.人类螺旋神经节细胞核与核仁计数单位校正因子的经验推导
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