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闰绍细胞在运动中的作用:静脉注射美加明对运动轴突侧支对其兴奋的拮抗作用。

The role of Renshaw cells in locomotion: antagonism of their excitation from motor axon collaterals with intravenous mecamylamine.

作者信息

Noga B R, Shefchyk S J, Jamal J, Jordan L M

出版信息

Exp Brain Res. 1987;66(1):99-105. doi: 10.1007/BF00236206.

DOI:10.1007/BF00236206
PMID:3582539
Abstract

The contribution of Renshaw cell (RC) activity to the production of fictive locomotion in the mesencephalic preparation was examined using the nicotinic antagonist mecamylamine (MEC). After the i.v. administration of 3 doses of MEC (1.0 mg/kg) the following observations were made: 1) ventral root (VR) evoked discharge of RCs was decreased by up to 87.7%, 2) recurrent inhibitory postsynaptic potentials recorded in alpha motoneurons were greatly reduced or abolished, and 3) the rhythmic firing of RCs during the fictive step cycle was abolished in 83% of the cells examined. Locomotor drive potentials (LDPs) in motoneurons persisted during the fictive step cycle after MEC administration. Bursts of motoneuron firing during each fictive step cycle were characterized by increased frequency and number of spikes after MEC, although the burst duration was unaltered for similar step cycle lengths. A greater number and frequency of spikes per burst was also observed in Ia inhibitory interneurons (IaINs), which remained rhythmically active after MEC administration. It is concluded that Renshaw cells are not an integral part of the spinal central pattern generator for locomotion, nor do they control the timing of the motoneuron or IaIN bursts of firing during fictive locomotion. The data are consistent with a role for RCs in limiting the firing rates of motoneurons and IaINs during each burst.

摘要

使用烟碱拮抗剂美加明(MEC)研究了中脑制备中闰绍细胞(RC)活动对虚构运动产生的贡献。静脉注射3剂MEC(1.0mg/kg)后,有以下观察结果:1)腹根(VR)诱发的RC放电减少高达87.7%,2)在α运动神经元中记录的回返性抑制性突触后电位大大降低或消失,3)在所检查的83%的细胞中,虚构步周期期间RC的节律性放电被消除。给予MEC后,运动神经元中的运动驱动电位(LDPs)在虚构步周期期间持续存在。尽管对于相似的步周期长度,爆发持续时间未改变,但在每个虚构步周期期间,运动神经元放电爆发的特征是MEC后频率和峰电位数量增加。在Ia抑制性中间神经元(IaINs)中也观察到每个爆发的峰电位数量和频率更高,给予MEC后它们仍保持节律性活动。得出的结论是,闰绍细胞不是脊髓运动中央模式发生器的组成部分,在虚构运动期间它们也不控制运动神经元或IaIN放电爆发的时间。这些数据与闰绍细胞在每次爆发期间限制运动神经元和IaIN放电率的作用一致。

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