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Simulation of motor-driven cochlear outer hair cell electromotility.

机译:电机驱动的人工耳蜗外毛细胞电动力的模拟。

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摘要

We propose a three-dimensional (3D) model to simulate outer hair cell electromotility. In our model, the major components of the composite cell wall are explicitly represented. We simulate the activity of the particles/motor complexes in the plasma membrane by generating active strains inside them and compute the overall response of the cell. We also consider the constrained wall and compute the generated active force. We estimate the parameters of our model by matching the predicted longitudinal and circumferential electromotile strains with those observed in the microchamber experiment. In addition, we match the earlier estimated values of the active force and cell wall stiffness. The computed electromotile strains in the plasma membrane and other components of the wall are in agreement with experimental observations in trypsinized cells and in nonmotile cells transfected with Prestin. We discover several features of the 3D mechanism of outer hair cell electromotilty. Because of the constraints under which the motors operate, the motor-related strains have to be 2-3 times larger than the observable strains. The motor density has a strong effect on the electromotile strain. Such effect on the active force is significantly lower because of the interplay between the active and passive properties of the cell wall.
机译:我们提出了三维(3D)模型来模拟外部毛细胞电动力。在我们的模型中,复合细胞壁的主要成分被明确表示。我们通过在质膜内部产生活性应变来模拟质膜中的颗粒/运动复合物的活性,并计算细胞的总体响应。我们还考虑了约束墙并计算了产生的作用力。我们通过将预测的纵向和周向电动势与微腔实验中观察到的相匹配来估计模型的参数。另外,我们匹配主动力和细胞壁刚度的早期估计值。质膜和壁的其他成分中计算出的电动势与在胰蛋白酶消化的细胞和Prestin转染的非动力细胞中的实验观察结果一致。我们发现外部毛细胞电动力的3D机制的几个功能。由于电动机工作的限制,与电动机有关的应变必须比可观察到的应变大2-3倍。电机密度对电动势有很大影响。由于单元壁的主动和被动特性之间的相互作用,因此对主动力的这种影响要低得多。

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