Sugawara M, Wada H
Department of Mechanical Engineering, Tohoku University, Aoba-yama 01, Sendai 980-8579, Japan.
Hear Res. 2001 Oct;160(1-2):63-72. doi: 10.1016/s0378-5955(01)00343-4.
In this study, the mechanical properties of the lateral wall of the outer hair cell (OHC) are determined theoretically. First, the cell is modeled as a cylindrical two-layer shell consisting of the plasma membrane and the cortical lattice. When the stiffness of the plasma membrane is set to be 1.0 mN/m based on the estimated value of Tolomeo et al. [Biophys. J. 71 (1996) 421-429], and Poisson's ratio of the plasma membrane is assumed to be 0.90, the relationships between the stiffness, Poisson's ratio and the orthotropism of the cortical lattice are obtained by comparing the measurement results of cell inflation by Iwasa and Chadwick [J. Acoust. Soc. Am. 92 (1992) 3169-3173] with the numerical ones obtained with our model. Next, the obtained relationships between these mechanical properties of the cell are applied to the model, and the result of the cell length change due to the axial compression measured by Hallworth [J. Neurophysiol. 74 (1995) 2319-2329] is compared with that obtained from our numerical analysis. As a result, the axial and circumferential stiffnesses of the cortical lattice are evaluated to be 4.6 mN/m and 13 mN/m, respectively. Then, the contribution of the cortical lattice to the stiffness of the OHC lateral wall is examined. When the stiffness of the plasma membrane is less than 1.0 mN/m, the mechanical properties of the cortical lattice obtained from the two-layer shell model are nearly the same as those of the cell lateral wall obtained from the one-layer orthotropic shell model. Therefore, it is concluded that the stiffness of the cortical lattice is responsible for that of the whole lateral wall of the OHC. Moreover, the mechanical properties of the OHC obtained in this study are compared with those reported previously, and it is suggested that the one-layer orthotropic shell model is sufficient for further analyses of the motility and force production of the OHC.
在本研究中,从理论上确定了外毛细胞(OHC)侧壁的力学特性。首先,将细胞建模为一个由质膜和皮质晶格组成的圆柱形双层壳。根据托洛梅奥等人[《生物物理杂志》71 (1996) 421 - 429]的估计值,将质膜的刚度设定为1.0 mN/m,并假设质膜的泊松比为0.90,通过将岩佐和查德威克[《美国声学学会杂志》92 (1992) 3169 - 3173]的细胞膨胀测量结果与我们模型得到的数值结果进行比较,得出皮质晶格的刚度、泊松比和正交各向异性之间的关系。接下来,将所得到的细胞这些力学特性之间的关系应用于模型,并将霍尔沃思[《神经生理学杂志》74 (1995) 2319 - 2329]测量的轴向压缩导致的细胞长度变化结果与我们数值分析得到的结果进行比较。结果,皮质晶格的轴向和周向刚度分别评估为4.6 mN/m和13 mN/m。然后,研究了皮质晶格对OHC侧壁刚度的贡献。当质膜的刚度小于1.0 mN/m时,从双层壳模型得到的皮质晶格的力学特性与从单层正交各向异性壳模型得到的细胞侧壁的力学特性几乎相同。因此,可以得出结论,皮质晶格的刚度决定了OHC整个侧壁的刚度。此外,将本研究中获得的OHC的力学特性与先前报道的进行了比较,结果表明单层正交各向异性壳模型足以用于进一步分析OHC的运动性和力的产生。