Wasaka Toshiaki, Nakata Hiroki, Akatsuka Kosuke, Kida Tetsuo, Inui Koji, Kakigi Ryusuke
Department of Integrative Physiology, National Institute for Physiological Sciences, Okazaki, Japan.
Eur J Neurosci. 2005 Sep;22(5):1239-47. doi: 10.1111/j.1460-9568.2005.04289.x.
To elucidate the mechanisms underlying sensorimotor integration, we investigated modulation in the primary (SI) and secondary (SII) somatosensory cortices during the preparatory period of a self-initiated finger extension. Electrical stimulation of the right median nerve was applied continuously, while the subjects performed a self-initiated finger extension and were instructed not to pay attention to the stimulation. The preparatory period was divided into five sub-periods from the onset of the electromyogram to 3000 ms before movement and the magnetoencephalogram signals following stimulation in each sub-period were averaged. Multiple source analysis indicated that the equivalent current dipoles (ECDs) were located in SI and bilateral SII. Although the ECD moment for N 20 m (the upward deflection peaking at around 20 ms) was not significantly changed, that for P 30 m (the downward deflection peaking at around 30 m) was significantly smaller in the 0- to -500-ms sub-period than the -2000- to -3000-ms sub-period. As for SII, the ECD moment for the SII ipsilateral to movement showed no significant change, while that for the contralateral SII was significantly larger in the 0- to -500-ms sub-period than the -1500- to -2000-ms or -2000- to -3000-ms sub-period. The opposite effects of movement on SI and SII cortices indicated that these cortical areas play a different role in the function of the sensorimotor integration and are affected differently by the centrifugal process.
为了阐明感觉运动整合的潜在机制,我们研究了在自主发起的手指伸展准备期,初级体感皮层(SI)和次级体感皮层(SII)中的调制情况。在受试者进行自主发起的手指伸展且被指示不要关注刺激时,持续对右侧正中神经施加电刺激。准备期从肌电图开始到运动前3000毫秒被分为五个子时期,每个子时期刺激后的脑磁图信号进行平均。多源分析表明等效电流偶极(ECD)位于SI和双侧SII。虽然N 20 m(在约20毫秒达到峰值的向上偏转)的ECD矩没有显著变化,但在0至 -500毫秒子时期,P 30 m(在约30毫秒达到峰值的向下偏转)的ECD矩比 -2000至 -3000毫秒子时期显著更小。至于SII,与运动同侧的SII的ECD矩没有显著变化,而在0至 -500毫秒子时期,与运动对侧的SII的ECD矩比 -1500至 -2000毫秒或 -2000至 -3000毫秒子时期显著更大。运动对SI和SII皮层的相反影响表明,这些皮层区域在感觉运动整合功能中发挥不同作用,并且受离心过程的影响也不同。