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超越运动回路的连通性——离子和调制机制。

Beyond connectivity of locomotor circuitry-ionic and modulatory mechanisms.

机构信息

Department of Neuroscience, Karolinska Institutet, Stockholm, Sweden.

出版信息

Prog Brain Res. 2010;187:99-110. doi: 10.1016/B978-0-444-53613-6.00007-1.

Abstract

Discrete neural networks in the central nervous system generate the repertoire of motor behavior necessary for animal survival. The final motor output of these networks is the result of the anatomical connectivity between the individual neurons and also their biophysical properties as well as the dynamics of their synaptic transmission. To illustrate how this processing takes place to produce coordinated motor activity, we have summarized some of the results available from the lamprey spinal locomotor network. The detailed knowledge available in this model system on the organization of the network together with the properties of the constituent neurons and the modulatory systems allows us to determine how the impact of specific ion channels and receptors is translated to the global activity of the locomotor circuitry. Understanding the logic of the neuronal and synaptic processing within the locomotor network will provide information about not only their normal operation but also how they react to disruption such as injuries or trauma.

摘要

中枢神经系统中的离散神经网络产生了动物生存所需的运动行为组合。这些网络的最终运动输出是个体神经元之间的解剖连接以及它们的生物物理特性和突触传递动力学的结果。为了说明这种处理过程如何产生协调的运动活动,我们总结了来自文昌鱼脊髓运动网络的一些结果。在这个模型系统中,关于网络的组织以及组成神经元和调节系统的特性的详细知识,使我们能够确定特定离子通道和受体的影响如何转化为运动电路的全局活动。了解运动网络中神经元和突触处理的逻辑不仅将提供有关其正常运作的信息,还将提供有关它们如何对损伤或创伤等破坏做出反应的信息。

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