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不同直径胼胝体纤维半球间传递时间和比例的视觉诱发电位的时频分析。

Time-frequency analysis of visual evoked potentials for interhemispheric transfer time and proportion in callosal fibers of different diameters.

作者信息

Ulusoy Ilkay, Halici Ugur, Nalçaci Erhan, Anaç Ilker, Leblebicio Eroğlu Kemal, Başar-Eroğlu Canan

机构信息

Department of Electrical and Electronics Engineering, Computer Vision and Intelligent Systems Research Laboratory, Middle East Tech. U, 06531, Ankara, Turkey,

出版信息

Biol Cybern. 2004 Apr;90(4):291-301. doi: 10.1007/s00422-004-0469-3. Epub 2004 Apr 6.

Abstract

This study is an extension of the experimental research of Nalçaci et al., who presented 16 subjects with a reversal of checkerboard pattern as stimuli in the right visual field or left visual field and recorded EEG at O1, O2, P3, and P4. They applied the chosen bandpass filters (4-8, 8-15, 15-20, 20-32 Hz) to the VEPs of subjects and obtained four different components for each VEP. The first aim of this study is to improve the previous report using some methods in time-frequency domain to estimate interhemispheric delays and amplitudes in a time window. Using the improved estimates of interhemispheric delays, the second aim is to estimate the proportion of callosal fibers of different diameters that are activated by visual stimuli by comparing amplitudes of VEPs in different frequency bands. If the relation between frequency components of VEP and delays for callosal fibers of different dimension were reliable, it would give us an opportunity to deal with amplitude of bandpass-filtered VEPs in order to see approximately the proportion of these fibers activated by a certain stimulus. By using frequency-dependent shifts in time and maximizing the cross correlation of direct VEP (DVEP-VEP obtained from contralateral hemisphere)-indirect VEP (IVEP-VEP obtained from ipsilateral hemisphere) pairs in the time-frequency domain, we examined the delay not only at P100 and N160 peaks but along a meaningful time interval as well. Furthermore, by shifting back the IVEP according to the delay estimated at each time window, both the amplitudes and energies of the synchronized DVEP-IVEP pairs were compared at the chosen frequency bands. The percentages of IVEPs at each band was then examined further in conjunction with the distribution of axon diameters in the posterior pole of the CC, questioning the relation between the distributions of the axon diameters and activations at each band. We established an energy definition to express the activation in the fibers. When the energy percentages of IVEPs in theta and alpha were totaled, they were found to be between 76.2% and 81.6%, which is close to the value 74-77% for fibers of 0.4-1 microm in diameter obtained from anatomical study of human CC. The sum of energy percentages in the beta1 and beta2 bands was between 20.1% and 24.2%, which probably reflects the proportion of activation of callosal fibers 1-3 microm in diameter.

摘要

本研究是Nalçaci等人实验研究的扩展,他们让16名受试者在右视野或左视野中接受棋盘格图案反转作为刺激,并在O1、O2、P3和P4处记录脑电图。他们将选定的带通滤波器(4 - 8、8 - 15、15 - 20、20 - 32赫兹)应用于受试者的视觉诱发电位,并为每个视觉诱发电位获得四个不同的成分。本研究的首要目的是运用时频域中的一些方法改进先前的报告,以便在一个时间窗口内估计半球间延迟和振幅。利用改进后的半球间延迟估计值,第二个目的是通过比较不同频带中视觉诱发电位的振幅,估计不同直径胼胝体纤维被视觉刺激激活的比例。如果视觉诱发电位的频率成分与不同维度胼胝体纤维延迟之间的关系可靠,这将使我们有机会处理带通滤波后的视觉诱发电位的振幅,从而大致了解某种刺激激活这些纤维的比例。通过利用时间上的频率依赖性偏移并在时频域中最大化直接视觉诱发电位(DVEP,从对侧半球获得的视觉诱发电位) - 间接视觉诱发电位(IVEP,从同侧半球获得的视觉诱发电位)对的互相关性,我们不仅检查了P100和N160峰值处的延迟,还检查了一个有意义的时间间隔内的延迟。此外,根据每个时间窗口估计的延迟将间接视觉诱发电位向后移位,然后在选定的频带中比较同步的直接视觉诱发电位 - 间接视觉诱发电位对的振幅和能量。然后结合胼胝体后极轴突直径的分布,进一步检查每个频带中间接视觉诱发电位的百分比,质疑轴突直径分布与每个频带激活之间的关系。我们建立了一个能量定义来表示纤维中的激活情况。当将θ和α频段中间接视觉诱发电位的能量百分比相加时,发现其在76.2%至81.6%之间,这与从人类胼胝体解剖学研究中获得的直径为0.4 - 1微米纤维的74 - 77%的值相近。β₁和β₂频段能量百分比之和在20.1%至24.2%之间,这可能反映了直径为1 - 3微米的胼胝体纤维的激活比例。

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