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A model for amplification of hair-bundle motion by cyclical binding of Ca2+ to mechanoelectrical-transduction channels

机译:通过Ca2 +与机电转换通道的循环结合来放大发束运动的模型

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摘要

Amplification of auditory stimuli by hair cells augments the sensitivity of the vertebrate inner ear. Cell-body contractions of outer hair cells are thought to mediate amplification in the mammalian cochlea. In vertebrates that lack these cells, and perhaps in mammals as well, active movements of hair bundles may underlie amplification. We have evaluated a mathematical model in which amplification stems from the activity of mechanoelectrical-transduction channels. The intracellular binding of Ca2+ to channels is posited to promote their closure, which increases the tension in gating springs and exerts a negative force on the hair bundle. By enhancing bundle motion, this force partially compensates for viscous damping by cochlear fluids. Linear stability analysis of a six-state kinetic model reveals Hopf bifurcations for parameter values in the physiological range. These bifurcations signal conditions under which the system’s behavior changes from a damped oscillatory response to spontaneous limit-cycle oscillation. By varying the number of stereocilia in a bundle and the rate constant for Ca2+ binding, we calculate bifurcation frequencies spanning the observed range of auditory sensitivity for a representative receptor organ, the chicken’s cochlea. Simulations using prebifurcation parameter values demonstrate frequency-selective amplification with a striking compressive nonlinearity. Because transduction channels occur universally in hair cells, this active-channel model describes a mechanism of auditory amplification potentially applicable across species and hair-cell types.
机译:毛细胞对听觉刺激的放大作用增强了脊椎动物内耳的敏感性。人们认为外毛细胞的细胞体收缩介导了哺乳动物耳蜗的扩增。在缺乏这些细胞的脊椎动物中,也许在哺乳动物中,发束的活跃运动可能是扩增的基础。我们已经评估了一个数学模型,其中放大源自机电转换通道的活动。 Ca 2+与通道的细胞内结合被定位以促进它们的闭合,这增加了门控弹簧的张力并在发束上施加了负力。通过增强束运动,该力可部分补偿耳蜗液的粘性阻尼。六态动力学模型的线性稳定性分析揭示了在生理范围内参数值的Hopf分支。这些分叉信号表明系统的行为从阻尼振荡响应变为自发极限循环振荡。通过改变束中的立体纤毛数量和Ca2 +结合的速率常数,我们可以计算出分叉频率,该分叉频率跨越了代表受体器官即鸡耳蜗的听觉灵敏度范围。使用分叉前的参数值进行的仿真表明,频率选择放大具有明显的压缩非线性。由于转导通道普遍存在于毛细胞中,因此该主动通道模型描述了一种可能适用于物种和毛细胞类型的听觉放大机制。

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