Department of Physiology, Osaka City University Graduate School of Medicine, 1-4-3 Asahimachi, Abeno-ku, Osaka 545-8585, Japan.
Brain Res. 2013 Nov 6;1537:117-24. doi: 10.1016/j.brainres.2013.08.054. Epub 2013 Sep 3.
Central inhibition plays an important role in physical performance during physical fatigue. We tried to clarify the neural mechanism of central inhibition during physical fatigue using the magnetoencephalography (MEG) and a classical conditioning technique. Twelve right-handed volunteers participated in this study. Participants underwent MEG recording during the imagery of maximum grips of the right hand guided by metronome sounds for 10 min. Thereafter, fatigue-inducing maximum handgrip trials were performed for 10 min; the metronome sounds were started 5 min after the beginning of the handgrip trials. We used metronome sounds as conditioned stimuli and maximum handgrip trials as unconditioned stimuli to cause central inhibition. The next day, MEG recording during the imagery of maximum grips of the right hand guided by metronome sounds were measured for 10 min. Levels of the fatigue sensation in the right hand and sympathetic nerve activity on the second day were significantly higher than those on the first day. In the right dorsolateral prefrontal cortex (Brodmann's area 46), the alpha-band event-related desynchronization (ERD) of the second MEG session relative to the first session with the time window of 200 to 300 ms after the onset of handgrip cue sounds was identified. The ERD level in this brain region was positively associated with the change in subjective level of right hand fatigue after the conditioning session and was negatively associated with that of the sympathetic nerve activity. We demonstrated that the right dorsolateral prefrontal cortex is involved in the neural substrates of central inhibition during physical fatigue.
中枢抑制在体力疲劳时的身体表现中起着重要作用。我们试图使用脑磁图(MEG)和经典条件反射技术来阐明体力疲劳期间中枢抑制的神经机制。12 名右利手志愿者参与了这项研究。参与者在节拍器声音引导的右手最大握力想象中接受 MEG 记录 10 分钟。之后,进行了 10 分钟的疲劳诱导最大握力试验;握力试验开始后 5 分钟开始发出节拍器声音。我们使用节拍器声音作为条件刺激,最大握力试验作为非条件刺激,以引起中枢抑制。第二天,在节拍器声音引导的右手最大握力想象中进行 MEG 记录 10 分钟。第二天右手疲劳感和交感神经活动水平明显高于第一天。在右侧背外侧前额叶皮质(Brodmann 区 46)中,在握力提示声音出现后 200 到 300 毫秒的时间窗口内,确定了第二次 MEG 会话相对于第一次会话的 alpha 波段事件相关去同步(ERD)。该脑区的 ERD 水平与条件反射会话后右手疲劳主观水平的变化呈正相关,与交感神经活动的变化呈负相关。我们证明了右侧背外侧前额叶皮质参与了体力疲劳期间中枢抑制的神经基础。