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自发性血压振荡与脑自动调节。

Spontaneous blood pressure oscillations and cerebral autoregulation.

作者信息

Diehl R R, Linden D, Lücke D, Berlit P

机构信息

Department of Neurology and Clinical Neurophysiology, Krupp Hospital, Essen, Germany.

出版信息

Clin Auton Res. 1998 Feb;8(1):7-12. doi: 10.1007/BF02267598.

DOI:10.1007/BF02267598
PMID:9532415
Abstract

The relationship between spontaneous oscillations in cerebral blood flow velocity (CBFV) and arterial blood pressure (ABP) was analysed in normal subjects in order to evaluate whether these relationships provide information about cerebral autoregulation. CBFV was measured using transcranial Doppler sonography and continuous ABP and heart rate using Finapres in 50 volunteers. Measurements were made over 5 min in a supine position and 6 min in a tilted position. Coefficients of variation were calculated using power- and cross-spectral analysis in order to quantify amplitudes within two frequency ranges: 3-9 cycles per min (cpm) (M-waves); and 9-20 cpm (R-waves). Correlations, coherence values, phase angle shifts and gains were also computed between corresponding waves in CBFV and in ABP. A clear correlation was seen for M-waves and R-waves between CBFV and ABP and coherence values were large enough to calculate phase angle shifts and gains. Phase angles for M-waves were larger and gains lower than was the case for R-waves, either tilted or supine. These data are consistent with a highpass filter model of cerebral autoregulation. Relatively high CBFV/ABP gain values (between 1.4 and 2.0) suggest that the principle of frequency-dependent vascular input impedances has to be considered in addition to autoregulatory feedback mechanisms. Spontaneous ABP oscillations in the M-wave and R-wave ranges may serve as a basis for continuous autoregulation monitoring.

摘要

为了评估脑血流速度(CBFV)的自发振荡与动脉血压(ABP)之间的关系是否能提供有关脑自动调节的信息,对正常受试者进行了分析。使用经颅多普勒超声测量CBFV,使用Finapres测量50名志愿者的连续ABP和心率。在仰卧位测量5分钟,在倾斜位测量6分钟。使用功率谱和交叉谱分析计算变异系数,以量化两个频率范围内的振幅:每分钟3 - 9个周期(cpm)(M波);以及9 - 20 cpm(R波)。还计算了CBFV和ABP中相应波之间的相关性、相干值、相角偏移和增益。CBFV和ABP之间的M波和R波存在明显的相关性,相干值大到足以计算相角偏移和增益。无论是倾斜位还是仰卧位,M波的相角都比R波大,增益比R波低。这些数据与脑自动调节的高通滤波器模型一致。相对较高的CBFV/ABP增益值(在1.4和2.0之间)表明,除了自动调节反馈机制外,还必须考虑频率依赖性血管输入阻抗的原理。M波和R波范围内的自发ABP振荡可作为连续自动调节监测的基础。

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