PO-147 Effect of Exercise-induced Fatigue on the Electrical Activity of the External Globus Pallidus Neurons in rats

Haoyuan Yu, L. Hou, Jing Ma, Zhifeng Wang, Gang Zhao, D. Qiao
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Abstract

Objective The motor cortex (MC) stimulation-induced unitary responses of globus pallidus external segment (GPe) neurons in control and exercise induced-fatigue rats were recorded in vivo to examine the role of cortical-striatum-external globus pallidal pathway in the mechanism of central fatigue. Methods 32 Clean healthy male Wistar rats (260~300g), were randomly divided into 4 groups: control group (Control), 1-day fatigue group (1FG), 3-day fatigue group (3FG) and 7-day fatigue group (7FG). Rats were subjected to a 5-day adaptive treadmill training. Modified Bedford treadmill exercise with progressively increasing load was used to creat the exercise fatigue model. (3 levels:8.2 m/min, 15 min; 15m/min, 15 min; 20 m/min, lasting till exhaustion) The spontaneous unit activity and responses to MC stimulation of GPe neurons were recorded by the electrophysiological technique of extracellular recording of glass microelectrodes. Results The results showed that the firing frequency of high-frequency firing with pause (HFP) and low frequency firing with burst (LFB) in the GPe of 1FG was comparable with that of control group (P>0.05). However in 3FG and 7FG , the percentage of HFP neuron was significantly decreased (P<0.05), while the proportion of LFB was significantly increased (P<0.05), and the average firing rate of LFB was higher and inter spike intervals (ISI) was significantly lower than that of the control group. With 200μA electrical stimulation, the explosive discharge of GPe neurons was attenuated after fatigue in rats. The response of GPe neurons to variable frequency stimulation in exhausted model groups was stronger than that of the control group.MC-stimulation typically induced a triphasic response composed of early excitation, inhibition, and late excitation in GPe neurons. The population of neurons showing a short inhibition slightly increased in 3FG and 7FG. Conclusions 1. The results confirmed that GPe is an important nucleus of basal ganglia involved in the regulation of exercise-induced fatigue by the change of spontaneous activity. Electrical stimulation on the cortex can alter response patterns of GPe neurons in exercise-induced fatigue rats, the results confirmed that the Ctx-Str-GPe neural pathway is involved in the regulation of exercise fatigue, and the indirect pathway is over-activated.
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PO-147运动疲劳对大鼠苍白球外神经元电活动的影响
目的在体内记录运动皮质(MC)刺激诱导的苍白球外节(GPe)神经元的单一反应,探讨皮层-纹状体-苍白球外通路在中枢性疲劳机制中的作用。方法清洁健康雄性Wistar大鼠32只(260~300g),随机分为4组:对照组(control)、1天疲劳组(1FG)、3天疲劳组(3FG)和7天疲劳组(7FG)。大鼠进行5天的适应性跑步机训练。采用渐进式负荷改良贝德福德跑步机运动建立运动疲劳模型。(3级:8.2 m/min, 15 min;15m/min, 15min;采用玻璃微电极胞外记录电生理技术记录GPe神经元对MC刺激的自发单位活动和反应。结果结果显示,大鼠大鼠GPe高频间歇放电(HFP)和低频间歇放电(LFB)的放电频率与对照组相当(P>0.05)。而在3FG和7FG组,HFP神经元比例显著降低(P<0.05), LFB神经元比例显著升高(P<0.05), LFB平均放电率高于对照组,峰间间隔(ISI)显著低于对照组。在200μA的电刺激下,大鼠疲劳后GPe神经元的爆炸放电减弱。疲劳模型组GPe神经元对变频刺激的反应强于对照组。mc刺激在GPe神经元中通常诱导由早期兴奋、抑制和晚期兴奋组成的三相反应。在3FG和7FG中表现出短暂抑制的神经元数量略有增加。结论1。结果证实GPe是基底节区一个重要的核,通过自发活动的改变参与了运动性疲劳的调节。脑皮层电刺激可改变运动性疲劳大鼠GPe神经元的反应模式,结果证实Ctx-Str-GPe神经通路参与运动性疲劳的调节,间接通路过度激活。
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