Presurgical functional localization of primary somatosensory cortex by dipole tracing method of scalp-skull-brain head model applied to somatosensory evoked potential

S Mine , N Oka , A Yamaura , Y Nakajima
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引用次数: 15

Abstract

The aim of the present study was to explore the utility of dipole tracing (DT) of a scalp-skull-brain (SSB) head model in preoperative functional localization of the human brain. Nine patients who underwent surgery of mass lesions around the central sulcus (CS) were employed. By using SSB/DT, dipole source location of early cortical components of the somatosensory evoked potential (SEP) was estimated before surgery. Motor cortex, CS and primary somatosensory cortex were determined by cortical SEP during surgery. After surgery precise functional mapping was reproduced in MRI, and the accuracy of DT was evaluated by measuring the distance between estimated dipole source and the posterior bank of the CS. We defined this distance as localization error of DT. In 4 cases without structural change around the sensorimotor cortex, localization error ranged from 1 to 4 mm with an average of 2 mm. In 5 cases with structural alteration of sensorimotor cortex, localization error ranged from 6 to 10 mm with an average of 8 mm. The difference in localization error between the two groups was statistically significant, and may have been caused by changes of conductance near sensorimotor cortex in the latter group. Functional localization by DT was accurate and useful. But localization error could not be ignored in cases with structural alteration in the sensorimotor cortex.

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应用体感诱发电位的头-脑-脑模型偶极示踪法进行初级体感觉皮层的手术前功能定位
本研究的目的是探讨偶极子示踪(DT)的头盖骨脑(SSB)头部模型在术前人脑功能定位中的应用。9例患者接受了中央沟周围肿块病变手术。术前应用SSB/DT法估计体感诱发电位(SEP)早期皮质成分的偶极子源定位。术中采用皮质SEP测定运动皮质、CS和初级体感皮质。手术后在MRI上复制精确的功能映射,并通过测量估计的偶极子源与CS后岸之间的距离来评估DT的准确性。我们将这个距离定义为DT的定位误差。4例感觉运动皮层周围无结构改变,定位误差1 ~ 4mm,平均2mm。感觉运动皮层结构改变5例,定位误差6 ~ 10 mm,平均8 mm。两组定位误差差异有统计学意义,可能是后一组感觉运动皮层附近电导改变所致。DT定位功能准确、实用。但在感觉运动皮层结构改变的情况下,定位误差不可忽视。
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