3D Computational Modeling of Blast Transmission through the Fluid-Filled Cochlea and Hair Cells

IF 3 2区 医学 Q3 ENGINEERING, BIOMEDICAL Annals of Biomedical Engineering Pub Date : 2024-12-08 DOI:10.1007/s10439-024-03659-x
John J. Bradshaw, Marcus A. Brown, Yijie Jiang, Rong Z. Gan
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Abstract

Purpose

Veterans commonly suffer from blast-induced hearing disabilities. Injury to the sensitive organ of Corti (OC) or hair cells within the cochlea can directly lead to hearing loss, but is very difficult to measure experimentally. Computational finite element (FE) models of the human ear have been used to predict blast wave transmission through the middle ear and cochlea, but these models lack a representation of the OC. This paper reports a recently developed 3D FE model of the OC to simulate the response of hair cells to blast waves and predict possible injury locations.

Methods

Components of the OC model consist of the sensory cells, membranes, and supporting cells with endolymphatic fluid surrounding them inside the scala media. Displacement of the basilar membrane induced by a 31-kPa blast overpressure derived from the macroscale model of the human ear was applied as input to the OC model. The fluid–structure interaction coupled analysis in the time domain was conducted in ANSYS.

Results

Major results derived from the FE model include the strains and displacements of the outer hair cells, stereociliary hair bundles (HBs), reticular lamina, and the tectorial membrane (TcM). The highest structural strain was concentrated around the connecting region of the HBs and the TcM, potentially indicating detachment due to blast exposure. Including the interstitial fluid in the OC created a realistic environment and improved the accuracy of the results compared to the previously published OC model without fluid.

Conclusion

The microscale model of OC was developed in order to simulate blast overpressure transmission through the fluid-filled cochlea and hair cells. This FE model represents a significant advancement in the study of blast wave transmission through the inner ear, and is an important step toward a comprehensive multi-scale model of the human ear that can predict blast-induced injury and hearing loss.

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冲击波通过充满液体的耳蜗和毛细胞传播的三维计算模型。
目的:退伍军人通常患有爆炸引起的听力障碍。耳蜗内敏感器官或毛细胞损伤可直接导致听力损失,但实验测量非常困难。人耳的计算有限元模型已被用于预测冲击波通过中耳和耳蜗的传播,但这些模型缺乏对中耳和耳蜗的表征。本文报道了最近开发的一种用于模拟毛细胞对冲击波的反应并预测可能损伤位置的OC三维有限元模型。方法:OC模型的组成部分由感觉细胞、膜和支持细胞组成,细胞周围有内淋巴液。将由人耳宏观模型导出的31 kpa爆炸超压引起的基底膜位移作为OC模型的输入。在ANSYS中进行了时域流固耦合分析。结果:有限元模型得到的主要结果包括外毛细胞、立体纤毛束(HBs)、网状层和毡膜(TcM)的应变和位移。最高的结构应变集中在HBs和TcM的连接区域周围,可能表明爆炸暴露导致的脱离。与之前发表的无流体OC模型相比,在OC中加入间质液创造了一个真实的环境,提高了结果的准确性。结论:建立了模拟爆炸超压通过充液耳蜗和毛细胞传递的微尺度耳蜗模型。该有限元模型代表了爆炸冲击波内耳传播研究的重大进展,是建立能够预测爆炸损伤和听力损失的人耳综合多尺度模型的重要一步。
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
Annals of Biomedical Engineering
Annals of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
7.50
自引率
15.80%
发文量
212
审稿时长
3 months
期刊介绍: Annals of Biomedical Engineering is an official journal of the Biomedical Engineering Society, publishing original articles in the major fields of bioengineering and biomedical engineering. The Annals is an interdisciplinary and international journal with the aim to highlight integrated approaches to the solutions of biological and biomedical problems.
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