Dierkes Kai, Lindner Benjamin, Jülicher Frank
Max Planck Institute for the Physics of Complex Systems, Nöthnitzer Strasse 38, 01187 Dresden, Germany.
Proc Natl Acad Sci U S A. 2008 Dec 2;105(48):18669-74. doi: 10.1073/pnas.0805752105. Epub 2008 Nov 17.
The vertebrate inner ear possesses an active process that provides nonlinear amplification of mechanical stimuli. A candidate for this process is active hair bundle mechanics observed, for instance, for hair cells of the bullfrog's sacculus. Hair bundles in various inner ear organs are coupled by overlying membranes. Using a stochastic description of active hair bundle dynamics, we study the consequences of an elastic coupling on the properties of amplification. We report that collective effects in arrays of hair bundles can enhance the amplification gain and the sharpness of frequency tuning as compared with the performance of an isolated hair bundle. We also discuss the transient response elicited by the sudden onset of a periodic stimulus and its relation to temporal integration curves. Simulations of systems with a gradient of intrinsic frequencies show an enhanced amplification gain while preserving a frequency gradient, provided the coupling strength is similar to the hair bundle stiffness. We relate our findings to the situation in the bullfrog's sacculus and the mammalian cochlea.
脊椎动物的内耳具有一种主动过程,该过程能对机械刺激进行非线性放大。这一过程的一个候选机制是主动毛束力学,例如在牛蛙球囊的毛细胞中观察到的。内耳各器官中的毛束通过覆盖其上的膜相互耦合。利用主动毛束动力学的随机描述,我们研究了弹性耦合对放大特性的影响。我们报告称,与单个毛束的性能相比,毛束阵列中的集体效应可以提高放大增益和频率调谐的锐度。我们还讨论了周期性刺激突然开始引发的瞬态响应及其与时间积分曲线的关系。对具有固有频率梯度的系统进行模拟表明,只要耦合强度与毛束刚度相似,在保持频率梯度的同时放大增益会增强。我们将我们的发现与牛蛙球囊和哺乳动物耳蜗的情况联系起来。