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A nonrandom dynamic component in the synaptic noise of a central neuron

机译:中央神经元突触噪声中的非随机动力成分

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摘要

Continuous segments of synaptic noise were recorded in vivo from teleost Mauthner cells and were studied with the methods of nonlinear analysis. As in many central neurons, this ongoing activity is dominated by consecutive inhibitory postsynaptic potentials. Recurrence plots and first or third order Poincaré maps combined with surrogate shuffling revealed nonrandom patterns consistent with the notion that synaptic noise is a continuously varying mixture of periodic and chaotic phases. Chaos was further demonstrated by the occurrence of unstable periodic orbits. The nonrandom component of the noise is reproducibly and persistently reduced when the level of background sound, a natural stimulus for networks afferent to the Mauthner cell, is briefly elevated. These data are consistent with a model involving a reciprocally connected inhibitory network, presynaptic to the Mauthner cell and its intrinsic properties. The presence of chaos in the inhibitory synaptic noise that regulates the excitability of the Mauthner cell and its sensitivity to external stimuli suggests that it modulates this neuron’s function, namely to trigger a fast escape motor reaction following unexpected sensory information.
机译:从硬骨Mauthner细胞体内记录连续的突触噪声片段,并使用非线性分析方法进行研究。与许多中枢神经元一样,这种持续的活动被连续的抑制性突触后电位所控制。递归图和一阶或三阶庞加莱图与代理改组相结合,揭示出非随机模式,这与突触噪声是周期相和混沌相的不断变化的混合物的概念一致。不稳定周期轨道的出现进一步证明了混沌。当背景声音的水平(对Mauthner小区传入的网络的自然刺激)被短暂提高时,噪声的非随机分量可重复且持久地降低。这些数据与涉及相互连接的抑制网络的模型一致,该网络与Mauthner细胞及其固有特性突触。抑制性突触噪声中的混沌调节了Mauthner细胞的兴奋性及其对外部刺激的敏感性,表明它调节了这种神经元的功能,即在意外的感觉信息后触发快速逃避的运动反应。

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