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Temporal Responses of C.elegans Chemosensory Neurons Are Preserved in Behavioral Dynamics

机译:线虫化学感觉神经元的时间响应在行为动力学中得以保留。

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摘要

Animals track fluctuating stimuli over multiple timescales during natural olfactory behaviors. Here, wedefine mechanisms underlying these computations in Caenorhabditis elegans. By characterizing neuronal calcium responses to rapidly fluctuating odor sequences, we show that sensory neurons reliably track stimulus fluctuations relevant to behavior. AWC olfactory neurons respond to multiple odors with subsecond precision required for chemotaxis, whereas ASH nociceptive neurons integrate noxious cues over several seconds to reach a threshold for avoidance behavior. Each neuron's response to fluctuating stimuli is largely linear and can be described by a biphasic temporal filter and dynamical model. A calcium channel mutation alters temporal filtering and avoidance behaviors initiated by ASH on similar timescales. A sensory G-alpha protein mutation affects temporal filtering in AWC and alters steering behavior in a way that supports an active sensing model for chemotaxis. Thus, temporal features of sensory neurons can be propagated across circuits to specify behavioral dynamics.
机译:动物会在自然嗅觉行为的多个时间范围内跟踪波动的刺激。在这里,我们定义了秀丽隐杆线虫中这些计算的基础机制。通过表征快速变化的气味序列的神经钙反应,我们表明感觉神经元可靠地跟踪与行为有关的刺激波动。 AWC嗅觉神经元以趋化性所需的亚秒精度对多种气味做出反应,而ASH伤害性神经元在几秒钟内整合了有害线索,从而达到避免行为的阈值。每个神经元对波动刺激的反应在很大程度上是线性的,可以用双相时间滤波器和动力学模型来描述。钙通道突变会在类似的时间尺度上改变由ASH引发的时间过滤和回避行为。感觉性G-alpha蛋白突变会影响AWC中的时间过滤并以支持主动趋化性趋化模型的方式改变转向行为。因此,感觉神经元的时间特征可以在电路中传播以指定行为动力学。

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