论文标题

混乱稳定在耦合内耳毛细胞系统中的同步

Chaos stabilizes synchronization in systems of coupled inner-ear hair cells

论文作者

Faber, Justin, Li, Hancheng, Bozovic, Dolores

论文摘要

听觉和前庭系统的毛细胞表现出惊人的灵敏度,频率选择性以及对外部信号的时间分辨率。这些专门的细胞利用内部活性放大器实现高度敏感的机械检测。这种主动过程的表现之一是出现毛细胞束的自发极限周期运动。由于通常通过上覆盖的结构相互耦合,因此我们使用理论和实验方法的组合探索了这种耦合在系统动力学上的作用。我们的数值模型表明,在单个束的响应中存在混沌动力学会增强其在耦合时同步的能力,从而显着提高了系统检测弱信号的能力。即使对于大频率分散和包含系统的大量振荡器,这种同步仍然存在。此外,在增加振荡器数量后,主动运动的振幅和相干性不会降低。使用人造膜,我们将机械耦合施加在活性和功能性头发束组上,从感觉上皮的体外制备中选择,从而使我们能够在实验中探索耦合的作用。与混沌系统的数值模拟一致,即使对于大频率分散和大量的毛细胞也会发生同步。此外,自发振荡的幅度和相干性与网络中毛细胞的数量无关。因此,我们建议毛细胞利用其混沌动力学来稳定同步状态并避免振幅死亡制度,从而导致集体相干运动,该运动可能在产生自发的耳声发射和检测弱信号的能力方面发挥作用。

Hair cells of the auditory and vestibular systems display astonishing sensitivity, frequency selectivity, and temporal resolution to external signals. These specialized cells utilize an internal active amplifier to achieve highly sensitive mechanical detection. One of the manifestations of this active process is the occurrence of spontaneous limit-cycle motion of the hair cell bundle. As hair bundles under in vivo conditions are typically coupled to each other by overlying structures, we explore the role of this coupling on the dynamics of the system, using a combination of theoretical and experimental approaches. Our numerical model suggests that the presence of chaotic dynamics in the response of individual bundles enhances their ability to synchronize when coupled, resulting in significant improvement in the system's ability to detect weak signals. This synchronization persists even for a large frequency dispersion and a large number of oscillators comprising the system. Further, the amplitude and coherence of the active motion is not reduced upon increasing the number of oscillators. Using artificial membranes, we impose mechanical coupling on groups of live and functional hair bundles, selected from in vitro preparations of the sensory epithelium, allowing us to explore the role of coupling experimentally. Consistent with the numerical simulations of the chaotic system, synchronization occurs even for large frequency dispersion and a large number of hair cells. Further, the amplitude and coherence of the spontaneous oscillations are independent of the number of hair cells in the network. We therefore propose that hair cells utilize their chaotic dynamics to stabilize the synchronized state and avoid the amplitude death regime, resulting in collective coherent motion that could play a role in generating spontaneous otoacoustic emissions and an enhanced ability to detect weak signals.

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