Analysis of the Dynamic Behavior of the Inner Hair Cell Stereocilia by the Finite Element Method

T. Matsui, C. Nakajima, Yui Yamamoto, M. Andoh, Koji Iida, M. Murakoshi, S. Kumano, H. Wada
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引用次数: 6

Abstract

The motion of the inner hair cell (IHC) stereocilia, which results in tension in the tip links connected to mechanically gated ion channels, mediates the auditory transduction process. However, it is difficult to directly observe the motion of the stereocilia because of their minute dimensions and complex structure. In this study, to investigate such motion, a finite element method model of the tall, middle and short IHC stereocilia, including the tip and lateral links extending between the stereocilia, was constructed. By applying an analytically estimated fluid force caused by a stimulus of 60dB SPL at 500Hz to the model, the dynamic behavior of the stereocilia was analyzed. Numerical results showed that the stereocilia moved in phase and that the maximum tensions of 2.5fN and 2.1fN occurred in the tip link connecting the tall and middle stereocilia and in the tip link connecting the middle and short stereocilia, respectively. By contrast, under the condition in which the lateral links were removed, maximum tension in the former increased to 11.6fN, while that in the latter only increased to 2.3fN. It was therefore suggested that the lateral links protect the MET channels located at taller stereocilia against large stimuli and subject the channels located in the same IHC to forces of similar size.
内毛细胞立体纤毛动力学行为的有限元分析
内毛细胞(IHC)立体纤毛的运动,导致与机械门控离子通道相连的尖端链接的张力,介导听觉转导过程。然而,由于纤毛的微小尺寸和复杂的结构,很难直接观察到它们的运动。在本研究中,为了研究这种运动,构建了高、中、短IHC立体纤毛的有限元方法模型,包括尖端和在立体纤毛之间延伸的侧链。通过对模型施加60dB声压级500Hz的解析估计流体力,分析了立体纤毛的动力学行为。数值结果表明,立体纤毛是同步运动的,2.5fN和2.1fN的最大张力分别出现在连接高、中立体纤毛的尖端环节和连接中、短立体纤毛的尖端环节。相反,在去除侧链的情况下,前者的最大张力增加到11.6fN,而后者的最大张力仅增加到2.3fN。因此,这表明侧连接保护位于较高的立体纤毛的MET通道免受大的刺激,并使位于相同IHC的通道受到类似大小的力。
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