Department of Oto-Rhino-Laryngology, Plastic, Aesthetic and Reconstructive Head and Neck Surgery and the Comprehensive Hearing Center, University of Würzburg, Josef-Schneider-Straße 11, 97080, Würzburg, Germany.
Institute for Diagnostic and Interventional Neuroradiology, University Hospital Würzburg, Würzburg, Germany.
HNO. 2021 Jan;69(Suppl 1):24-30. doi: 10.1007/s00106-020-00969-z. Epub 2021 Jan 18.
Since the introduction of cochlear implants into clinical routine, the interest in measuring cochlear parameters, particularly the cochlear duct length (CDL) has increased, since these can have an influence on the correct selection of the electrode. On the one hand, coverage of an optimal frequency band is relevant for a good audiological result, and on the other hand, cochlear trauma due to too deep insertion or displacement of the electrode must be avoided. Cochlear implants stimulate the spiral ganglion cells (SGC). The number of SGC and particularly their distribution can also have an influence on the function of a cochlear implant. In addition, the frequency assignment of each electrode contact can play a decisive role in the postoperative success, since the frequency distribution of the human cochlea with varying CDL shows substantial interindividual differences. The aim of this work is to provide an overview of the methods used to determine the cochlear parameters as well as of relevant studies on the CDL, the number and distribution of SGZ, and the frequency assignment of electrode contacts. Based on this, a concept for individualized cochlear implantation will be presented. In summary, this work should help to promote individualized medicine in the field of cochlear implants in the future, in order to overcome current limitations and optimize audiological outcomes.
自人工耳蜗植入术引入临床常规以来,人们对测量耳蜗参数(尤其是耳蜗管长度 [CDL])的兴趣日益增加,因为这些参数可能会对电极的正确选择产生影响。一方面,覆盖最佳频带对于良好的听力学效果至关重要;另一方面,必须避免因电极插入过深或移位而导致的耳蜗损伤。人工耳蜗刺激螺旋神经节细胞(SGC)。SGC 的数量及其分布也可能会对人工耳蜗的功能产生影响。此外,每个电极触点的频率分配在术后成功中也起着决定性的作用,因为具有不同 CDL 的人类耳蜗的频率分布存在显著的个体间差异。这项工作的目的是提供一种方法,用于确定耳蜗参数以及与 CDL、SGZ 的数量和分布以及电极触点的频率分配相关的研究的概述。在此基础上,提出了一种个性化耳蜗植入的概念。总之,这项工作应该有助于在未来推动耳蜗植入领域的个体化医学,以克服当前的限制并优化听力学效果。