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Compressive nonlinearity in the hair bundle's active response to mechanical stimulation

机译:束发对神经元的主动响应中的压缩非线性 机械刺激

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摘要

The auditory system's ability to interpret sounds over a wide range of amplitudes rests on the nonlinear responsiveness of the ear. Whether measured by basilar-membrane vibration, nerve-fiber activity, or perceived loudness, the ear is most sensitive to small signals and grows progressively less responsive as stimulation becomes stronger. Seeking a correlate of this behavior at the level of mechanoelectrical transduction, we examined the responses of hair bundles to direct mechanical stimulation. As reported by the motion of an attached glass fiber, an active hair bundle from the bullfrog's sacculus oscillates spontaneously. Sinusoidal movement of the fiber's base by as little as ±1 nm, corresponding to the application at the bundle's top of a force of ±0.3 pN, causes detectable phase-locking of the bundle's oscillations to the stimulus. Although entrainment increases as the stimulus grows, the amplitude of the hair-bundle movement does not rise until phase-locking is nearly complete. A bundle is most sensitive to stimulation at its frequency of spontaneous oscillation. Far from that frequency, the sensitivity of an active hair bundle resembles that of a passive bundle. Over most of its range, an active hair bundle's response grows as the one-third power of the stimulus amplitude; the bundle's sensitivity declines accordingly in proportion to the negative two-thirds power of the excitation. This scaling behavior, also found in the response of the mammalian basilar membrane to sound, signals the operation of an amplificatory process at the brink of an oscillatory instability, a Hopf bifurcation.
机译:听觉系统在较大幅度范围内解释声音的能力取决于耳朵的非线性响应能力。无论是通过基底膜振动,神经纤维活动或感知的响度来衡量,耳朵对小信号最敏感,并且随着刺激的增强,耳朵的反应性逐渐减弱。在机电转换水平上寻找这种行为的相关性,我们研究了发束对直接机械刺激的响应。正如附着的玻璃纤维的运动所报告的那样,牛蛙s囊中活跃的发束会自发振荡。光纤基部的正弦运动小至±1 nm,对应于在束的顶部施加±0.3 pN的力,导致可检测到的束振荡对激励的锁相。尽管随着刺激的增加,夹带增加,但直到锁相几乎完成时,发束运动的幅度才增加。束在其自发振荡频率下对刺激最敏感。主动发束的灵敏度远非该频率高,而类似于被动发束。在其大部分范围内,活动发束的响应随着刺激幅度的三分之一的能量而增长。束的灵敏度相应地与负三分之二的激发功率成比例地下降。这种缩放行为也出现在哺乳动物基底膜对声音的响应中,这表明放大过程的操作处于振荡不稳定(霍普夫分叉)的边缘。

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    Martin, P.; Hudspeth, A. J.;

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  • 年度 2001
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