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水蛭游泳节段间协调模型:中枢和感觉机制

Model for intersegmental coordination of leech swimming: central and sensory mechanisms.

作者信息

Cang Jianhua, Friesen W Otto

机构信息

Department of Biology, National Science Foundation Center for Biological Timing, University of Virginia, Charlottesville, Virginia 22904-4328, USA.

出版信息

J Neurophysiol. 2002 Jun;87(6):2760-9. doi: 10.1152/jn.2002.87.6.2760.

Abstract

Sensory feedback as well as the coupling signals within the CNS are essential for leeches to produce intersegmental phase relationships in body movements appropriate for swimming behavior. To study the interactions between the central pattern generator (CPG) and peripheral feedback in controlling intersegmental coordination, we have constructed a computational model for the leech swimming system with physiologically realistic parameters. First, the leech swimming CPG is simulated by a chain of phase oscillators coupled by three channels of coordinating signals. The activity phase, the projection direction, and the phase response curve (PRC) of each channel are based on the identified intersegmental interneuron network. Output of this largely constrained model produces stable coordination in the simulated CPG with average phase lags of 8-10 degrees/segment in the period range from 0.5 to 1.5 s, similar to those observed in isolated nerve cords. The model also replicates the experimental finding that shorter chains of leech nerve cords have larger phase lags per segment. Sensory inputs, represented by stretch receptors, were subsequently incorporated into the CPG model. Each stretch receptor with its associated PRC, which was defined to mimic the experimental results of phase-dependent phase shifts of the central oscillator by the ventral stretch receptor, can alter the phase of the local central oscillator. Finally, mechanical interactions between the muscles from neighboring segments were simulated by PRCs linking adjacent stretch receptors. This model shows that interactions between neighboring muscles could globally increase the phase lags to the larger value required for the one-wavelength body form observed in freely swimming leeches. The full model also replicates the experimental observation that leeches with severed nerve cords have larger intersegmental phase lags than intact animals. The similarities between physiological and simulation results demonstrate that we have established a realistic model for the central and peripheral control of intersegmental coordination of leech swimming.

摘要

感觉反馈以及中枢神经系统内的耦合信号对于水蛭产生适合游泳行为的身体运动节间相位关系至关重要。为了研究中枢模式发生器(CPG)与外周反馈在控制节间协调中的相互作用,我们构建了一个具有生理现实参数的水蛭游泳系统计算模型。首先,水蛭游泳CPG由通过三个协调信号通道耦合的相位振荡器链模拟。每个通道的活动相位、投射方向和相位响应曲线(PRC)基于已识别的节间中间神经元网络。这个在很大程度上受到约束的模型的输出在模拟CPG中产生稳定的协调,在0.5到1.5秒的周期范围内平均相位滞后为8 - 10度/节段,类似于在分离的神经索中观察到的情况。该模型还复制了实验结果,即较短的水蛭神经索链每节段具有更大的相位滞后。随后,由牵张感受器表示的感觉输入被纳入CPG模型。每个牵张感受器及其相关的PRC(其被定义为模仿腹侧牵张感受器引起的中央振荡器相位依赖性相移的实验结果)可以改变局部中央振荡器的相位。最后,相邻节段肌肉之间的机械相互作用通过连接相邻牵张感受器的PRC进行模拟。该模型表明,相邻肌肉之间的相互作用可以全局地将相位滞后增加到自由游泳水蛭中观察到的单波长身体形态所需的更大值。完整模型还复制了实验观察结果,即神经索切断的水蛭比完整动物具有更大的节间相位滞后。生理结果和模拟结果之间的相似性表明,我们已经建立了一个用于水蛭游泳节间协调的中枢和外周控制的现实模型。

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