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Model for the assessment of heart period and arterial pressure variability interactions and of respiration influences.

作者信息

Baselli G, Cerutti S, Badilini F, Biancardi L, Porta A, Pagani M, Lombardi F, Rimoldi O, Furlan R, Malliani A

机构信息

Dipartimento di Elettronica per l'Automazione, Università degli Studi, Brescia, Italy.

出版信息

Med Biol Eng Comput. 1994 Mar;32(2):143-52. doi: 10.1007/BF02518911.

DOI:10.1007/BF02518911
PMID:8022210
Abstract

A model which assesses the closed-loop interaction between heart period (HP) and arterial pressure (AP) variabilities and the influence of respiration on both is applied to evaluate the sources of low frequency (LF approximately 0.1 Hz) and high frequency (HF, respiratory rate approximately 0.25 Hz) in conscious dogs (n = 18) and humans (n = 5). A resonance of AP closed-loop regulation is found to amplify LF oscillations. In dogs, the resonance gain increases slightly during baroreceptor unloading (mild hypotension obtained with nitroglycerine (NTG) i.v. infusion, n = 8) and coronary artery occlusion ((CAO), n = 6), and it is abolished by ganglionic transmission blockade ((ARF), Arfonad i.v. infusion, n = 3). In humans, this gain is considerably increased by passive tilt. Different, possibly central, sources of LF oscillations are also evaluated, finding a strong rhythmic modulation of HP during CAO. At HF, a direct respiratory arrhythmia is dominant in dogs at control, while it is considerably reduced during CAO. On the contrary, in humans, a strong influence of respiration on AP is shown which induces a reflex respiratory arrhythmia. An index of the gain of baroreceptive response, alpha cl, was decreased by NTG and CAO, and virtually abolished by chronic arterial baroreceptive denervation (TABD, n = 4) and ARF.

摘要

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本文引用的文献

1
Pressoreceptor-autonomic oscillation; a probable cause of vasomotor waves.压力感受器 - 自主神经振荡;血管运动波的一个可能原因。
Am J Physiol. 1951 Apr 1;165(1):158-66. doi: 10.1152/ajplegacy.1951.165.1.158.
2
Power spectral density of heart rate variability as an index of sympatho-vagal interaction in normal and hypertensive subjects.心率变异性的功率谱密度作为正常和高血压受试者交感神经 - 迷走神经相互作用的指标
J Hypertens Suppl. 1984 Dec;2(3):S383-5.
3
Power spectrum analysis of heart rate fluctuation: a quantitative probe of beat-to-beat cardiovascular control.
通过 Geweke 谱因果关系同时评估心血管和脑血管控制,以评估姿势性晕厥的倾向。
Med Biol Eng Comput. 2023 Dec;61(12):3141-3157. doi: 10.1007/s11517-023-02885-0. Epub 2023 Jul 15.
4
On the Different Abilities of Cross-Sample Entropy and K-Nearest-Neighbor Cross-Unpredictability in Assessing Dynamic Cardiorespiratory and Cerebrovascular Interactions.交叉样本熵和K近邻交叉不可预测性在评估动态心肺与脑血管相互作用中的不同能力
Entropy (Basel). 2023 Apr 1;25(4):599. doi: 10.3390/e25040599.
5
Paced Breathing Increases the Redundancy of Cardiorespiratory Control in Healthy Individuals and Chronic Heart Failure Patients.定频呼吸增加健康个体和慢性心力衰竭患者心肺控制的冗余度。
Entropy (Basel). 2018 Dec 10;20(12):949. doi: 10.3390/e20120949.
6
Mathematical modeling of the cardiovascular autonomic control in healthy subjects during a passive head-up tilt test.健康受试者被动仰卧倾斜试验中心血管自主控制的数学建模。
Sci Rep. 2020 Oct 5;10(1):16525. doi: 10.1038/s41598-020-71532-7.
7
The control mechanisms of heart rate dynamics in a new heart rate nonlinear time series model.新型心率非线性时间序列模型中心率动力学的控制机制。
Sci Rep. 2020 Mar 16;10(1):4814. doi: 10.1038/s41598-020-61562-6.
8
A Transfer Entropy Approach for the Assessment of the Impact of Inspiratory Muscle Training on the Cardiorespiratory Coupling of Amateur Cyclists.一种用于评估吸气肌训练对业余自行车运动员心肺耦合影响的转移熵方法。
Front Physiol. 2020 Feb 25;11:134. doi: 10.3389/fphys.2020.00134. eCollection 2020.
9
Comparison of Causal and Non-causal Strategies for the Assessment of Baroreflex Sensitivity in Predicting Acute Kidney Dysfunction After Coronary Artery Bypass Grafting.冠状动脉搭桥术后评估压力反射敏感性预测急性肾功能障碍的因果性和非因果性策略比较
Front Physiol. 2019 Oct 18;10:1319. doi: 10.3389/fphys.2019.01319. eCollection 2019.
10
Measures of CNS-Autonomic Interaction and Responsiveness in Disorder of Consciousness.意识障碍中中枢神经系统 - 自主神经相互作用及反应性的测量
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心率波动的功率谱分析:逐搏心血管控制的定量检测方法
Science. 1981 Jul 10;213(4504):220-2. doi: 10.1126/science.6166045.
4
Spontaneous rhythms in physiological control systems.生理控制系统中的自发节律。
Nature. 1971 Oct 1;233(5318):339-41. doi: 10.1038/233339a0.
5
Patterns of sympathetic neuron activity associated with Mayer waves.与迈尔氏波相关的交感神经元活动模式。
Am J Physiol. 1974 Mar;226(3):724-30. doi: 10.1152/ajplegacy.1974.226.3.724.
6
An analysis of heart rate variability.
Ergonomics. 1973 Jan;16(1):85-97. doi: 10.1080/00140137308924484.
7
Reflex regulation of arterial pressure during sleep in man. A quantitative method of assessing baroreflex sensitivity.人类睡眠期间动脉血压的反射调节。一种评估压力感受性反射敏感性的定量方法。
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8
Hemodynamic regulation: investigation by spectral analysis.血流动力学调节:通过频谱分析进行研究。
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9
Relationships between short-term blood-pressure fluctuations and heart-rate variability in resting subjects. I: A spectral analysis approach.静息状态下受试者短期血压波动与心率变异性的关系。I:频谱分析方法。
Med Biol Eng Comput. 1985 Jul;23(4):352-8. doi: 10.1007/BF02441589.
10
Transient interactions between blood pressure, respiration and heart rate in man.人体血压、呼吸和心率之间的瞬时相互作用。
J Biomed Eng. 1985 Jul;7(3):217-24. doi: 10.1016/0141-5425(85)90022-6.