MED-EL Research Center, Hannover, Germany.
Department of Otolaryngology, Helios Clinic Hildesheim, Hildesheim, Germany.
Hear Res. 2021 Apr;403:108166. doi: 10.1016/j.heares.2020.108166. Epub 2021 Jan 5.
The human cochlea has a highly individual microanatomy. Cochlear implantation therefore requires an evaluation of the individual cochlear anatomy to reduce surgical risk of implantation trauma. However, in-vivo cochlear imaging is limited in resolution. To overcome this issue, cochlear models based on exact anatomical data have been developed. These models can be fitted to the limited parameters available from clinical imaging to provide a prediction of the precise cochlear microanatomy. Recently, models have become available with improved precision that additionally allow predicting the 3D form of an individual cochlea. The present study has further improved the precision of modelling by incorporating microscopic details of a large set of 108 human cochleae from corrosion casts. The new model provides a more flexible geometric shape that can better predict local variations like vertical dips and jumps and provides an approximation of frequency allocation in the cochlea. The outcome of this and five other models have been quantified (validated) on an independent set of 20 µCTs of human cochleae. The new model outperformed previous models and is freely available for download and use.
人类耳蜗具有高度个体微观解剖结构。因此,耳蜗植入需要评估个体耳蜗解剖结构,以降低植入创伤的手术风险。然而,体内耳蜗成像的分辨率有限。为了克服这个问题,已经开发了基于精确解剖数据的耳蜗模型。这些模型可以拟合临床成像中有限的参数,以提供对精确耳蜗微观解剖结构的预测。最近,模型的精度得到了提高,还可以预测个体耳蜗的 3D 形态。本研究通过纳入来自腐蚀铸件的 108 个人类耳蜗的大量微观细节,进一步提高了模型的精度。新模型提供了更灵活的几何形状,可以更好地预测垂直凹陷和跳跃等局部变化,并提供耳蜗中频率分配的近似值。该模型和其他五个模型的结果已经在一组 20 个人类耳蜗的独立 µCT 上进行了量化(验证)。新模型的表现优于以前的模型,并且可以免费下载和使用。