Spector A A, Brownell W E, Popel A S
Department of Biomedical Engineering, The Johns Hopkins University University, Baltimore, MD 21205, USA.
Ann Biomed Eng. 1998 Jan-Feb;26(1):157-65. doi: 10.1114/1.87.
We propose a mathematical model for analyses of the elastic properties of the wall of the outer hair cell (OHC) in the inner ear. The model reflects the properties of the major components of the OHC wall: the subsurface cisternae, the cortical lattice, the plasma membrane, and the radial pillars. The wall is treated as a composite consisting of three elastic cylindrical shells. Two inner shells, isotropic and orthotropic/ are adjacent to each other, and the outermost isotropic shell is connected to the combined inner shell by elastic springs. We derive Flugge-type equations for the composite wall and apply the model to the interpretation of the experiments with axial loading and with inflation of the OHC. We derive expressions for the axial stiffness and the wall strains measured in these experiments in terms of the elastic properties of the wall components. We also consider a conceivable experiment with torsion of the OHC and obtain relations between the torque (the axial reaction) and the angle of torsion. These solutions provide necessary information for the future determination of the OHC elastic properties.
我们提出了一个数学模型,用于分析内耳外毛细胞(OHC)壁的弹性特性。该模型反映了OHC壁主要成分的特性:表面下池、皮质晶格、质膜和径向支柱。壁被视为由三个弹性圆柱壳组成的复合材料。两个内壳,一个各向同性,一个正交各向异性,彼此相邻,最外层的各向同性壳通过弹性弹簧与组合内壳相连。我们推导了复合材料壁的弗吕格型方程,并将该模型应用于解释OHC轴向加载和膨胀的实验。我们根据壁成分的弹性特性,推导了这些实验中测量的轴向刚度和壁应变的表达式。我们还考虑了一个可以想象的OHC扭转实验,并得到了扭矩(轴向反应)与扭转角度之间的关系。这些解决方案为未来确定OHC弹性特性提供了必要信息。