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从有噪声的生物振荡器观测中识别分岔

Identification of Bifurcations from Observations of Noisy Biological Oscillators.

作者信息

Salvi Joshua D, Ó Maoiléidigh Dáibhid, Hudspeth A J

机构信息

Laboratory of Sensory Neuroscience, The Rockefeller University, New York, New York.

Laboratory of Sensory Neuroscience, The Rockefeller University, New York, New York; Howard Hughes Medical Institute, The Rockefeller University, New York, New York.

出版信息

Biophys J. 2016 Aug 23;111(4):798-812. doi: 10.1016/j.bpj.2016.07.027.

Abstract

Hair bundles are biological oscillators that actively transduce mechanical stimuli into electrical signals in the auditory, vestibular, and lateral-line systems of vertebrates. A bundle's function can be explained in part by its operation near a particular type of bifurcation, a qualitative change in behavior. By operating near different varieties of bifurcation, the bundle responds best to disparate classes of stimuli. We show how to determine the identity of and proximity to distinct bifurcations despite the presence of substantial environmental noise. Using an improved mechanical-load clamp to coerce a hair bundle to traverse different bifurcations, we find that a bundle operates within at least two functional regimes. When coupled to a high-stiffness load, a bundle functions near a supercritical Hopf bifurcation, in which case it responds best to sinusoidal stimuli such as those detected by an auditory organ. When the load stiffness is low, a bundle instead resides close to a subcritical Hopf bifurcation and achieves a graded frequency response-a continuous change in the rate, but not the amplitude, of spiking in response to changes in the offset force-a behavior that is useful in a vestibular organ. The mechanical load in vivo might therefore control a hair bundle's responsiveness for effective operation in a particular receptor organ. Our results provide direct experimental evidence for the existence of distinct bifurcations associated with a noisy biological oscillator, and demonstrate a general strategy for bifurcation analysis based on observations of any noisy system.

摘要

毛细胞束是一种生物振荡器,可在脊椎动物的听觉、前庭和侧线系统中主动将机械刺激转化为电信号。毛细胞束的功能部分可以通过其在特定类型的分岔附近的运作来解释,这是一种行为上的定性变化。通过在不同类型的分岔附近运作,毛细胞束对不同类别的刺激反应最佳。我们展示了如何在存在大量环境噪声的情况下确定不同分岔的身份和接近程度。使用改进的机械负载钳迫使毛细胞束穿越不同的分岔,我们发现毛细胞束至少在两种功能状态下运作。当与高刚度负载耦合时,毛细胞束在超临界霍普夫分岔附近起作用,在这种情况下,它对诸如听觉器官检测到的正弦刺激反应最佳。当负载刚度较低时,毛细胞束反而靠近亚临界霍普夫分岔,并实现分级频率响应——响应偏置力变化时,放电速率持续变化,但幅度不变——这种行为在内耳前庭器官中很有用。因此,体内的机械负载可能会控制毛细胞束的反应能力,以便在特定的感受器器官中有效运作。我们的结果为与有噪声的生物振荡器相关的不同分岔的存在提供了直接的实验证据,并展示了基于对任何有噪声系统的观察进行分岔分析的一般策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22cd/5002087/2664ac295638/gr1.jpg

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