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大鼠体感刺激期间脑血流量和诱发电位的频率依赖性变化。

Frequency-dependent changes in cerebral blood flow and evoked potentials during somatosensory stimulation in the rat.

作者信息

Ngai A C, Jolley M A, D'Ambrosio R, Meno J R, Winn H R

机构信息

Department of Neurological Surgery, University of Washington School of Medicine, Seattle, WA 98104, USA.

出版信息

Brain Res. 1999 Aug 7;837(1-2):221-8. doi: 10.1016/s0006-8993(99)01649-2.

DOI:10.1016/s0006-8993(99)01649-2
PMID:10434006
Abstract

Contrary to the concept of neuronal-vascular coupling, cortical evoked potentials do not always correlate with blood flow responses during somatosensory stimulation at changing stimulus rates. The goal of this study is to clarify the effects of stimulus frequency on the relationship between somatosensory evoked potentials (SEPs) and cerebral blood flow. In rats anesthetized with alpha-chloralose, we measured SEPs by signal-averaging field potentials recorded with an electrode placed on dura overlying the hindlimb somatosensory cortex. Regional blood flow was simultaneously assessed in the same region with a laser-Doppler flow (LDF) probe. The contralateral sciatic nerve was stimulated with 0.1 A pulses at the frequencies of 1, 2, 5, 10 and 20 Hz. SEPs (both P1 and N1 components) declined with increasing frequency regardless whether stimulus duration (20 s) or number (100) were kept constant, suggesting that frequency is an important determinant of neuronal activity. In contrast, LDF responses increased to a maximum at 5 Hz, and do not correlate with SEPs. Because CBF should reflect integrated neuronal activity, we computed the sum of SEPS (summation operatorSEP = SEP x stimulus frequency) as an index of total neuronal activity at each frequency. Summation operatorSEP indeed correlates positively (P<0.001) with LDF responses. Thus, during somatosensory stimulation at various frequencies, cerebral blood flow is coupled to integrated neuronal activity but not to averaged evoked potentials.

摘要

与神经元-血管耦合的概念相反,在改变刺激频率的体感刺激过程中,皮层诱发电位并不总是与血流反应相关。本研究的目的是阐明刺激频率对体感诱发电位(SEP)与脑血流之间关系的影响。在用α-氯醛糖麻醉的大鼠中,我们通过放置在后肢体感皮层硬脑膜上的电极记录的信号平均场电位来测量SEP。用激光多普勒血流(LDF)探头在同一区域同时评估局部血流。以0.1A的脉冲刺激对侧坐骨神经,频率分别为1、2、5、10和20Hz。无论刺激持续时间(20s)或刺激次数(100次)保持不变,SEP(P1和N1成分)均随频率增加而下降,这表明频率是神经元活动的一个重要决定因素。相比之下,LDF反应在5Hz时增加到最大值,且与SEP不相关。由于脑血流应反映整合的神经元活动,我们计算了SEPS的总和(求和算子SEP = SEP×刺激频率)作为每个频率下总神经元活动的指标。求和算子SEP确实与LDF反应呈正相关(P<0.001)。因此,在不同频率的体感刺激过程中,脑血流与整合的神经元活动相关,而与平均诱发电位无关。

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