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亚慢性脊髓猫空气踏步时腰椎中间神经元活动的首选运动相。

Preferred locomotor phase of activity of lumbar interneurons during air-stepping in subchronic spinal cats.

机构信息

Drexel University College of Medicine, Department of Neurobiology and Anatomy, 2900 W. Queen Lane, Philadelphia, PA 19129, USA.

出版信息

J Neurophysiol. 2011 Mar;105(3):1011-22. doi: 10.1152/jn.00523.2010. Epub 2010 Nov 17.

Abstract

Spinal locomotor circuits are intrinsically capable of driving a variety of behaviors such as stepping, scratching, and swimming. Based on an observed rostrocaudal wave of activity in the motoneuronal firing during locomotor tasks, the traveling-wave hypothesis proposes that spinal interneuronal firing follows a similar rostrocaudal pattern of activation, suggesting the presence of spatially organized interneuronal modules within the spinal motor system. In this study, we examined if the spatial organization of the lumbar interneuronal activity patterns during locomotor activity in the adult mammalian spinal cord was consistent with a traveling-wave organizational scheme. The activity of spinal interneurons within the lumbar intermediate zone was examined during air-stepping in subchronic spinal cats. The preferred phase of interneuronal activity during a step cycle was determined using circular statistics. We found that the preferred phases of lumbar interneurons from both sides of the cord were evenly distributed over the entire step cycle with no indication of functional groupings. However, when units were subcategorized according to spinal hemicords, the preferred phases of units on each side largely fell around the period of extensor muscle activity on each side. In addition, there was no correlation between the preferred phases of units and their rostrocaudal locations along the spinal cord with preferred phases corresponding to both flexion and extension phases of the step cycle found at every rostrocaudal level of the cord. These results are consistent with the hypothesis that interneurons operate as part of a longitudinally distributed network rather than a rostrocaudally organized traveling-wave network.

摘要

脊髓运动回路具有内在驱动各种行为的能力,如行走、抓挠和游泳。基于在运动任务中观察到的运动神经元放电的头尾波活动,行波假说提出脊髓中间神经元的放电遵循类似的头尾激活模式,表明在脊髓运动系统中存在空间组织的中间神经元模块。在这项研究中,我们研究了成年哺乳动物脊髓中运动活动期间的腰部分布神经元活动模式的空间组织是否与行波组织方案一致。在亚慢性脊髓猫的空气行走中检查了腰中间区的脊髓中间神经元的活动。使用圆形统计确定了步周期中中间神经元活动的最佳相位。我们发现,来自脊髓两侧的中间神经元的最佳相位在整个步周期中均匀分布,没有功能分组的迹象。然而,当根据脊髓半脊髓对单元进行分类时,每侧的单元的最佳相位主要围绕着每侧伸肌活动的周期。此外,单元的最佳相位与其在脊髓中的头尾位置之间没有相关性,并且在脊髓的每个头尾水平都发现了与步周期的屈伸相位相对应的最佳相位。这些结果与中间神经元作为纵向分布网络的一部分而不是头尾组织的行波网络的假设一致。

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