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神经血管耦合和脑自动调节可以用一个控制系统来描述。

Neurovascular coupling and cerebral autoregulation can be described in terms of a control system.

作者信息

Rosengarten B, Huwendiek O, Kaps M

机构信息

Justus-Liebig University of Giessen, Faculty of Medicine, Department of Neurology, Giessen, Germany.

出版信息

Ultrasound Med Biol. 2001 Feb;27(2):189-93. doi: 10.1016/s0301-5629(00)00332-x.

Abstract

Neurovascular coupling and cerebral autoregulation are important and fast mechanisms for maintaining an adequate blood supply to the brain. It was suggested that both mechanisms follow a common control system. The aim of our study was to describe neurovascular coupling and cerebral autoregulation in mathematical terms of a control system and to test the aforementioned hypothesis. We analyzed the input-output dynamics of neurovascular coupling (flicker light test) and cerebral autoregulation (leg cuff test) in terms of a control system, and compared both systems. A transcranial Doppler device was used to measure continuously the blood flow velocity changes in young healthy volunteers who lacked vascular risk factors. For both tests, a control system model with only four parameters was sufficient to allow the vascular reaction to be described in all (rate time, undamped natural angular frequency, attenuation, gain). All parameters were identical for both control systems, except for gain, which is not directly comparable because, in the flicker light test, input function was not measured but assumed as a unit step function in each volunteer. This new method permits description of the regulation of cerebral blood flow using a control loop with four parameters. For the first time, these parameters allowed a demonstration that cerebral autoregulation and neurovascular coupling could be governed by the same control system.

摘要

神经血管耦合和脑自动调节是维持大脑充足血液供应的重要且快速的机制。有人提出这两种机制遵循一个共同的控制系统。我们研究的目的是以控制系统的数学术语描述神经血管耦合和脑自动调节,并检验上述假设。我们从控制系统的角度分析了神经血管耦合(闪烁光测试)和脑自动调节(腿部袖带测试)的输入 - 输出动态,并比较了这两个系统。使用经颅多普勒设备连续测量无血管危险因素的年轻健康志愿者的血流速度变化。对于这两种测试,一个仅具有四个参数的控制系统模型足以描述血管反应(上升时间、无阻尼自然角频率、衰减、增益)。除增益外,两个控制系统的所有参数均相同,由于在闪烁光测试中未测量输入函数而是在每个志愿者中假定为单位阶跃函数,因此增益不可直接比较。这种新方法允许使用具有四个参数的控制回路来描述脑血流调节。首次,这些参数证明了脑自动调节和神经血管耦合可能由同一控制系统支配。

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