Vibration modes of three-dimensional spiral cochlea covering the organ of Corti.

IF 1.7 4区 医学 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Mianzhi Wang, Jiakun Wang, Junyi Liang, Wenjuan Yao
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引用次数: 0

Abstract

So far, explaining the mechanism on active phonosensitive amplification in the cochlea is a major and difficult medical question. Among them, one of the key problems is that the motion pattern of the organ of Corti (OC) is still unknown. To this end, a multi-scale cochlear model including a three-dimensional spiral OC was established based on CT data and light source imaging experimental data, which complete combined the macroscopic and microscopic structure. On the basis of verifying the reliability of the model, acoustic-solid coupling calculation and modal analysis were performed on the model, and the vibration modes of basilar membrane (BM) and structures of the OC at different characteristic frequencies were discussed. The results show that tectorial membrane (TM) exhibits completely different vibration modes from BM at low frequencies, while the two movements gradually synchronize as the frequency increases. The amplitude position of OC's motion moves laterally with increasing frequency from Deiters' cells to Hensen's cells and then back to Deiters' cells. The OC exhibits longitudinal vibrations following BM when BM's displacement is large, while it manifests more as lateral movement of Deiters' cells when BM's displacement is small. This model can well simulate the motion process of BM and OC in the lymphatic fluid, which provides theoretical support and a numerical simulation computational platform to explore the interaction between macroscopic and microscopic tissue structures of the overall cochlea.

覆盖柯蒂器官的三维螺旋耳蜗的振动模式。
迄今为止,解释耳蜗主动感音放大的机制是一个重大而困难的医学问题。其中,关键问题之一是柯蒂器官(OC)的运动模式尚不清楚。为此,我们基于 CT 数据和光源成像实验数据,建立了一个包括三维螺旋状 OC 的多尺度耳蜗模型,完整地结合了宏观和微观结构。在验证模型可靠性的基础上,对模型进行了声固耦合计算和模态分析,讨论了基底膜(BM)和 OC 结构在不同特征频率下的振动模式。结果表明,胸膜(TM)在低频时表现出与基底膜完全不同的振动模式,而随着频率的增加,两者的运动逐渐同步。随着频率的增加,OC 运动的振幅位置从 Deiters 细胞向 Hensen 细胞横向移动,然后又回到 Deiters 细胞。当 BM 的位移较大时,OC 表现为跟随 BM 的纵向振动,而当 BM 的位移较小时,OC 更多表现为 Deiters 细胞的横向移动。该模型能很好地模拟 BM 和 OC 在淋巴液中的运动过程,为探讨整个耳蜗的宏观和微观组织结构之间的相互作用提供了理论支持和数值模拟计算平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.10
自引率
6.20%
发文量
179
审稿时长
4-8 weeks
期刊介绍: The primary aims of Computer Methods in Biomechanics and Biomedical Engineering are to provide a means of communicating the advances being made in the areas of biomechanics and biomedical engineering and to stimulate interest in the continually emerging computer based technologies which are being applied in these multidisciplinary subjects. Computer Methods in Biomechanics and Biomedical Engineering will also provide a focus for the importance of integrating the disciplines of engineering with medical technology and clinical expertise. Such integration will have a major impact on health care in the future.
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