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脑干听觉诱发电位I-V波发生器的新解释:时空偶极子模型的结果

A new interpretation of the generators of BAEP waves I-V: results of a spatio-temporal dipole model.

作者信息

Scherg M, von Cramon D

出版信息

Electroencephalogr Clin Neurophysiol. 1985 Jul;62(4):290-9. doi: 10.1016/0168-5597(85)90006-1.

DOI:10.1016/0168-5597(85)90006-1
PMID:2408875
Abstract

Brain-stem auditory evoked potential (BAEP) scalp distribution, recorded in 10 normal subjects, was analysed using a spatio-temporal dipole model. This model can simulate surface wave forms due to overlapping activity from multiple dipolar sources within a 3-shell head model. The conventional 5-peak (I-V) hypothesis could not fully account for the experimental BAEP distribution, particularly around waves I- and III-. When the temporal course of dipole strength was modelled according to a triphasic compound action potential, 6 dipolar sources were sufficient to fit all BAEP wave forms. Location, orientation and latency of the dipoles indicated generation of dipole 1 at the distal end of the auditory nerve (AN), of dipole III in, or near to, the cochlear nucleus (CN), of dipole III- in the trapezoid body and of dipoles IV and V in the superior olivary complexes and in the lateral lemnisci. Dipole I-, peaking only 0.65 msec after wave I, is suggested to result from the electric inhomogeneity at the porus acusticus internus. Wave II required no extra model dipole, but was attributable, in part, to the second peak of dipole I. Estimation of latencies based on AN conduction velocity, synaptic delay and differences in AN length amongst species confirmed that second order neuronal activity cannot arise before wave III. Second order axons, spreading widely through the brain-stem, apparently cause major contributions also to waves III-, IV and V. The new source hypothesis must leave open questions concerning the amount of contribution from third order neurones or from ipsi- versus contralateral structures to the IV/V wave complex.

摘要

使用时空偶极子模型分析了10名正常受试者记录的脑干听觉诱发电位(BAEP)头皮分布。该模型可以模拟由于三壳头部模型内多个偶极源的重叠活动而产生的表面波形。传统的5峰(I-V)假说不能完全解释实验性BAEP分布,特别是在波I-和III-附近。当根据三相复合动作电位对偶极强度的时间进程进行建模时,6个偶极源足以拟合所有BAEP波形。偶极子的位置、方向和潜伏期表明,偶极子1在听神经(AN)远端产生,偶极子III在耳蜗核(CN)内或附近产生,偶极子III-在斜方体产生,偶极子IV和V在上橄榄复合体和外侧丘系产生。偶极子I-仅在波I后0.65毫秒达到峰值,被认为是由内耳道处的电不均匀性引起的。波II不需要额外的模型偶极子,但部分归因于偶极子I的第二个峰值。基于AN传导速度、突触延迟和不同物种间AN长度差异的潜伏期估计证实,二阶神经元活动不会在波III之前出现。二阶轴突广泛分布于脑干,显然也对波III-、IV和V有主要贡献。新的源假说必然会留下关于三阶神经元或同侧与对侧结构对IV/V波复合体贡献量的问题。

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