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慢呼吸过程中血压与蛛网膜下腔宽度振荡之间的耦合

Coupling between Blood Pressure and Subarachnoid Space Width Oscillations during Slow Breathing.

作者信息

Gruszecka Agnieszka, Nuckowska Magdalena K, Waskow Monika, Kot Jacek, Winklewski Pawel J, Guminski Wojciech, Frydrychowski Andrzej F, Wtorek Jerzy, Bujnowski Adam, Lass Piotr, Stankovski Tomislav, Gruszecki Marcin

机构信息

Department of Radiology Informatics and Statistics, Medical University of Gdansk, 80-210 Gdansk, Poland.

Department of Human Physiology, Medical University of Gdansk, 80-210 Gdansk, Poland.

出版信息

Entropy (Basel). 2021 Jan 15;23(1):113. doi: 10.3390/e23010113.

Abstract

The precise mechanisms connecting the cardiovascular system and the cerebrospinal fluid (CSF) are not well understood in detail. This paper investigates the couplings between the cardiac and respiratory components, as extracted from blood pressure (BP) signals and oscillations of the subarachnoid space width (SAS), collected during slow ventilation and ventilation against inspiration resistance. The experiment was performed on a group of 20 healthy volunteers (12 females and 8 males; BMI=22.1±3.2 kg/m2; age 25.3±7.9 years). We analysed the recorded signals with a wavelet transform. For the first time, a method based on dynamical Bayesian inference was used to detect the effective phase connectivity and the underlying coupling functions between the SAS and BP signals. There are several new findings. Slow breathing with or without resistance increases the strength of the coupling between the respiratory and cardiac components of both measured signals. We also observed increases in the strength of the coupling between the respiratory component of the BP and the cardiac component of the SAS and vice versa. Slow breathing synchronises the SAS oscillations, between the brain hemispheres. It also diminishes the similarity of the coupling between all analysed pairs of oscillators, while inspiratory resistance partially reverses this phenomenon. BP-SAS and SAS-BP interactions may reflect changes in the overall biomechanical characteristics of the brain.

摘要

心血管系统与脑脊液(CSF)之间的确切联系机制尚未得到详细的充分理解。本文研究了从血压(BP)信号和蛛网膜下腔宽度(SAS)振荡中提取的心脏和呼吸成分之间的耦合,这些数据是在缓慢通气和对抗吸气阻力通气期间收集的。该实验在一组20名健康志愿者(12名女性和8名男性;BMI = 22.1±3.2 kg/m²;年龄25.3±7.9岁)身上进行。我们用小波变换分析了记录的信号。首次使用基于动态贝叶斯推理的方法来检测SAS和BP信号之间的有效相位连通性以及潜在的耦合函数。有几个新发现。有阻力或无阻力的缓慢呼吸会增加两个测量信号的呼吸和心脏成分之间的耦合强度。我们还观察到BP的呼吸成分与SAS的心脏成分之间以及反之亦然的耦合强度增加。缓慢呼吸使大脑半球之间的SAS振荡同步。它还会降低所有分析的振荡器对之间耦合的相似性,而吸气阻力会部分逆转这种现象。BP - SAS和SAS - BP相互作用可能反映了大脑整体生物力学特征的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dacf/7830105/055d6cf842db/entropy-23-00113-g001.jpg

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