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控制猫从站立到摆动转换的伸肌I组通路的可塑性。

Plasticity of the extensor group I pathway controlling the stance to swing transition in the cat.

作者信息

Whelan P J, Hiebert G W, Pearson K G

机构信息

Department of Physiology, University of Alberta, Edmonton, Canada.

出版信息

J Neurophysiol. 1995 Dec;74(6):2782-7. doi: 10.1152/jn.1995.74.6.2782.

Abstract
  1. This study examines whether the efficacy of polysynaptic group I excitatory pathways to extensor motoneurons are modified after axotomy of a synergistic nerve. Previously, it has been shown that stimulation of extensor nerves at group I strength can extend the stance phase and delay swing. Stimulation of the lateral gastrocnemius and soleus (LG/S) nerve prolongs stance for the duration of the stimulus train, whereas stimulation of the medial gastrocnemius (MG) nerve moderately increases stance. Our hypothesis was that after axotomy of the LG/S nerve the efficacy of the MG group I input would increase. 2. This idea was tested in 10 adult cats that had their left LG/S nerves axotomized for 3-28 days. On the experimental day the cats were decerebrated and the left (experimental) and right (control) LG/S and MG nerves were stimulated during late stance as the animals were walking on a motorized treadmill. A significant increase in the efficacy of the left MG nerve occurred 5 days after axotomy of the LG/S nerve when compared with the control response. By contrast, the previously cut LG/S nerve showed a reduction in efficacy after 3 days compared with the control limb. 3. Functionally, this plasticity may be an important mechanism by which the strength of the group I pathway is calibrated to different loads on the extensor muscles.
摘要
  1. 本研究探讨在协同神经轴突切断后,多突触的I类兴奋性通路对伸肌运动神经元的功效是否发生改变。此前已表明,以I类强度刺激伸肌神经可延长站立期并延迟摆动期。刺激外侧腓肠肌和比目鱼肌(LG/S)神经会在刺激串持续时间内延长站立期,而刺激内侧腓肠肌(MG)神经会适度增加站立期。我们的假设是,在LG/S神经轴突切断后,MG的I类输入功效会增加。2. 在10只成年猫身上验证了这一想法,这些猫的左侧LG/S神经已被切断3至28天。在实验当天,将猫去大脑,当动物在电动跑步机上行走时,在站立后期刺激左侧(实验)和右侧(对照)的LG/S和MG神经。与对照反应相比,LG/S神经轴突切断5天后,左侧MG神经的功效显著增加。相比之下,与对照肢体相比,先前切断的LG/S神经在3天后功效降低。3. 在功能上,这种可塑性可能是一种重要机制,通过该机制I类通路的强度可根据伸肌上的不同负荷进行校准。

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