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人类手部体感皮层躯体定位的神经磁学研究。

Neuromagnetic investigation of somatotopy of human hand somatosensory cortex.

作者信息

Baumgartner C, Doppelbauer A, Deecke L, Barth D S, Zeitlhofer J, Lindinger G, Sutherling W W

机构信息

Neurological University Clinic, Vienna, Austria.

出版信息

Exp Brain Res. 1991;87(3):641-8. doi: 10.1007/BF00227089.

DOI:10.1007/BF00227089
PMID:1783032
Abstract

In order to investigate functional topography of human hand somatosensory cortex we recorded somatosensory evoked fields (SEFs) on MEG during the first 40 ms after stimulation of median nerve, ulnar nerve, and the 5 digits. We applied dipole modeling to determine the three-dimensional cortical representations of different peripheral receptive fields. Median nerve and ulnar nerve SEFs exhibited the previously described N20 and P30 components with a magnetic field pattern emerging from the head superior and re-entering the head inferior for the N20 component; the magnetic field pattern of the P30 component was of reversed orientation. Reversals of field direction were oriented along the anterior-posterior axis. SEFs during digit stimulation showed analogous N22 and P32 components and similar magnetic field patterns. Reversals of field direction showed a shift from lateral inferior to medial superior for thumb to little finger. Dipole modeling yielded good fits at these peak latencies accounting for an average of 83% of the data variance. The cortical digit representations were arranged in an orderly somatotopic way from lateral inferior to medial superior in the sequence thumb, index finger, middle finger, ring finger, and little finger. Median nerve cortical representation was lateral inferior to that of ulnar nerve. Isofield maps and dipole locations for these components are consistent with neuronal activity in the posterior bank of central fissure corresponding to area 3b. We conclude that SEFs recorded on MEG in conjunction with source localization techniques are useful to investigate functional topography of human hand somatosensory cortex non-invasively.

摘要

为了研究人类手部体感皮层的功能地形图,我们在刺激正中神经、尺神经和五指后的前40毫秒内,通过脑磁图(MEG)记录了体感诱发电场(SEF)。我们应用偶极子模型来确定不同外周感受野的三维皮层表征。正中神经和尺神经的SEF表现出先前描述的N20和P30成分,N20成分的磁场模式从头部上方出现并重新进入头部下方;P30成分的磁场模式方向相反。场方向的反转沿前后轴定向。手指刺激期间的SEF显示出类似的N22和P32成分以及相似的磁场模式。场方向的反转显示从拇指到小指从外侧下方到内侧上方的偏移。偶极子模型在这些峰值潜伏期拟合良好,平均占数据方差的83%。皮层手指表征以有序的躯体定位方式从外侧下方到内侧上方排列,顺序为拇指、食指、中指、无名指和小指。正中神经的皮层表征位于尺神经的外侧下方。这些成分的等场图和偶极子位置与中央沟后壁对应于3b区的神经元活动一致。我们得出结论,结合源定位技术通过MEG记录的SEF有助于无创地研究人类手部体感皮层的功能地形图。

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