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人体神经反应的单极和双极表面记录。

Uni- and bipolar surface recording of human nerve responses.

作者信息

Winkler T, Stålberg E, Haas L F

机构信息

Department of Clinical Neurophysiology, University Hospital, Uppsala, Sweden.

出版信息

Muscle Nerve. 1991 Feb;14(2):133-41. doi: 10.1002/mus.880140208.

Abstract

Nerve conduction studies are of great clinical value in diagnosing nerve pathology and injury. In most neurophysiological laboratories nerve conduction recordings are routinely made with surface bipolar electrodes. More rarely, needle electrodes are used. A bipolarly recorded nerve action potential (NAP) is the difference between 2 unipolar NAPs recorded from each pole of a bipolar electrode and a remote reference. The delay between the 2 separated unipolar NAPs depends on the distance between the poles and the conduction velocity (CV). When the delay between the unipolar NAPs was increased (partly through simulation), the following changes of the bipolar NAP occurred: (1) total amplitude was maximal at a certain delay but decreased if the delay was shorter or longer, (2) latencies of the first positive and the first negative peaks increased slightly until their amplitudes reached maximal values, (3) a second negative peak of increasing latency appeared with longer delays, (4) latencies of later peaks increased linearly, and (5) total area increased nonlinearly. All parameters of the bipolarly recorded NAP (except the onset of the first positive phase) changed with increasing delay. The significance of this is that if NAPs are recorded with a bipolar electrode, standard values obtained for each nerve cannot be transferred between laboratories if different interelectrode (interpolar) distances are used. Furthermore, the assumption that a fixed interelectrode distance allows comparisons between reference values and patient data is incorrect.

摘要

神经传导研究在诊断神经病理学和损伤方面具有重要的临床价值。在大多数神经生理学实验室中,神经传导记录通常使用表面双极电极进行。更少见的是使用针电极。双极记录的神经动作电位(NAP)是从双极电极的每个极和一个远端参考记录的两个单极NAP之间的差值。两个分离的单极NAP之间的延迟取决于两极之间的距离和传导速度(CV)。当单极NAP之间的延迟增加时(部分通过模拟),双极NAP会发生以下变化:(1)总幅度在一定延迟时最大,但如果延迟更短或更长则会降低;(2)第一个正峰和第一个负峰的潜伏期略有增加,直到它们的幅度达到最大值;(3)随着延迟延长,出现潜伏期增加的第二个负峰;(4)后续峰的潜伏期呈线性增加;(5)总面积呈非线性增加。双极记录的NAP的所有参数(除了第一个正相的起始)都随着延迟增加而变化。其意义在于,如果使用双极电极记录NAP,那么如果使用不同的电极间(极间)距离,每个神经获得的标准值在不同实验室之间是无法转移的。此外,认为固定的电极间距离允许在参考值和患者数据之间进行比较的假设是不正确的。

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