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建模电活性黏弹性膜。

Modeling electrically active viscoelastic membranes.

机构信息

Department of Biomedical Engineering, Johns Hopkins University, Baltimore, Maryland, United States of America.

出版信息

PLoS One. 2012;7(5):e37667. doi: 10.1371/journal.pone.0037667. Epub 2012 May 31.

Abstract

The membrane protein prestin is native to the cochlear outer hair cell that is crucial to the ear's amplification and frequency selectivity throughout the whole acoustic frequency range. The outer hair cell exhibits interrelated dimensional changes, force generation, and electric charge transfer. Cells transfected with prestin acquire unique active properties similar to those in the native cell that have also been useful in understanding the process. Here we propose a model describing the major electromechanical features of such active membranes. The model derived from thermodynamic principles is in the form of integral relationships between the history of voltage and membrane resultants as independent variables and the charge density and strains as dependent variables. The proposed model is applied to the analysis of an active force produced by the outer hair cell in response to a harmonic electric field. Our analysis reveals the mechanism of the outer hair cell active (isometric) force having an almost constant amplitude and phase up to 80 kHz. We found that the frequency-invariance of the force is a result of interplay between the electrical filtering associated with prestin and power law viscoelasticity of the surrounding membrane. Paradoxically, the membrane viscoelasticity boosts the force balancing the electrical filtering effect. We also consider various modes of electromechanical coupling in membrane with prestin associated with mechanical perturbations in the cell. We consider pressure or strains applied step-wise or at a constant rate and compute the time course of the resulting electric charge. The results obtained here are important for the analysis of electromechanical properties of membranes, cells, and biological materials as well as for a better understanding of the mechanism of hearing and the role of the protein prestin in this mechanism.

摘要

膜蛋白 prestin 是耳蜗外毛细胞的固有成分,对整个声频范围内耳朵的放大和频率选择性至关重要。外毛细胞表现出相关的尺寸变化、力的产生和电荷转移。转染 prestin 的细胞获得了与天然细胞相似的独特活性特性,这也有助于理解这一过程。在这里,我们提出了一个描述这种活性膜的主要机电特性的模型。该模型源自热力学原理,以电压和膜结果的历史作为独立变量,电荷密度和应变作为依赖变量之间的积分关系的形式。所提出的模型应用于分析外毛细胞对谐波电场产生的主动力。我们的分析揭示了外毛细胞主动(等长)力的机制,该力在高达 80 kHz 的频率下具有几乎恒定的幅度和相位。我们发现,力的频率不变性是 prestin 相关的电滤波和周围膜的幂律粘弹性之间相互作用的结果。矛盾的是,膜粘弹性通过平衡电滤波效应来增强力。我们还考虑了膜中与 prestin 相关的各种机电耦合模式以及细胞中的机械扰动。我们考虑压力或应变逐步或以恒定速率施加,并计算产生的电荷的时间过程。这里得到的结果对于分析膜、细胞和生物材料的机电特性以及更好地理解听觉机制和蛋白 prestin 在该机制中的作用非常重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/226d/3365126/fddc66258a06/pone.0037667.g001.jpg

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