Liao Zhijie, Popel Aleksander S, Brownell William E, Spector Alexander A
Department of Biomedical Engineering, Johns Hopkins University, Baltimore, Maryland 21205, USA.
J Acoust Soc Am. 2005 Apr;117(4 Pt 1):2147-57. doi: 10.1121/1.1863732.
Cochlear outer hair cells (OHC) are critically important for the amplification and sharp frequency selectivity of the mammalian ear. The microchamber experiment has been an effective tool to analyze the OHC high-frequency performance. In this study, the OHC electrical stimulation in the microchamber is simulated. The model takes into account the inertial and viscous properties of fluids inside and outside the cell as well as the viscoelastic and piezoelectric properties of the cell composite membrane (wall). The closed ends of the cylindrical cell were considered as oscillatory rigid plates. The final solution was obtained in terms of Fourier series, and it was checked against the available results of the microchamber experiment. The conditions of the interaction between the cell and pipette was analyzed, and it was found that the amount of slip along the contact surface has a significant effect on the cell electromotile response. The cell's length changes were computed as a function of frequency, and their dependence on the viscosities of both fluids and the cell wall was analyzed. The distribution of the viscous losses inside the fluids was also estimated. The proposed approach can help in a better understanding of the high-frequency OHC electromotility under experimental and physiological conditions.
耳蜗外毛细胞(OHC)对于哺乳动物耳朵的放大功能和敏锐的频率选择性至关重要。微腔实验一直是分析OHC高频性能的有效工具。在本研究中,模拟了微腔内OHC的电刺激。该模型考虑了细胞内外流体的惯性和粘性特性以及细胞复合膜(壁)的粘弹性和压电特性。圆柱形细胞的封闭端被视为振荡刚性板。最终解通过傅里叶级数得到,并与微腔实验的现有结果进行了核对。分析了细胞与移液管之间的相互作用条件,发现沿接触面的滑移量对细胞电运动反应有显著影响。计算了细胞长度随频率的变化,并分析了其对两种流体和细胞壁粘度的依赖性。还估计了流体内部粘性损失的分布。所提出的方法有助于更好地理解实验和生理条件下OHC的高频电运动。