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诱发磁场中N100m偶极子的动态运动反映了人类听觉皮层中等频带的顺序激活。

Dynamic movement of N100m dipoles in evoked magnetic field reflects sequential activation of isofrequency bands in human auditory cortex.

作者信息

Ozaki Isamu, Suzuki Yasumi, Jin Chun Yu, Baba Masayuki, Matsunaga Muneo, Hashimoto Isao

机构信息

Department of Physical Therapy, Faculty of Health Science, Aomori University of Health and Welfare, 58-1 Mase, Hamadate, Aomori 030-8505, Japan.

出版信息

Clin Neurophysiol. 2003 Sep;114(9):1681-8. doi: 10.1016/s1388-2457(03)00166-4.

Abstract

OBJECTIVE

To investigate spatiotemporal features of the isofrequency bands for 400 and 4000 Hz tones in human auditory cortex and on the hemispheric differences in the arrangement of isofrequency bands.

METHODS

We recorded auditory evoked magnetic fields (AEFs) to 400 or 4000 Hz tone pips presented at right or left ear from 31 normal subjects. The dipole location for the N100m sources was successively calculated from the AEFs obtained from the hemisphere contralateral to the stimulated ear.

RESULTS

In the right hemisphere, the current sources for 400 and 4000 Hz moved toward the anterolateral direction before the N100m peak, showing parallel arrangement of the isofrequency bands (4000 Hz in medial location). In the left hemisphere, the movement direction of 400 Hz dipoles was anterolateral, while that of 4000 Hz dipoles was lateral.

CONCLUSIONS

This difference in the organization of isofrequency bands between right and left auditory cortices reflects distinct functional roles in auditory information processing such as pitch vs. language discrimination.

SIGNIFICANCE

This work is the first to disclose isofrequency bands in human auditory cortex based on the analysis of magnetoencephalography.

摘要

目的

研究人类听觉皮层中400赫兹和4000赫兹音调等频带的时空特征以及等频带排列的半球差异。

方法

我们记录了31名正常受试者对右耳或左耳呈现的400赫兹或4000赫兹短音的听觉诱发磁场(AEF)。从受刺激耳对侧半球获得的AEF中连续计算N100m源的偶极位置。

结果

在右半球,400赫兹和4000赫兹的电流源在N100m峰值之前向前外侧方向移动,显示出等频带的平行排列(4000赫兹在内侧位置)。在左半球,400赫兹偶极的移动方向是前外侧,而4000赫兹偶极的移动方向是外侧。

结论

左右听觉皮层等频带组织的这种差异反映了听觉信息处理中不同的功能作用,如音高与语言辨别。

意义

这项工作首次基于脑磁图分析揭示了人类听觉皮层中的等频带。

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