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Hemodynamic fluctuations and baroreflex sensitivity in humans: a beat-to-beat model

American Journal of Physiology-Heart and Circulatory Physiology · 1987 · Vol. 253(3) · pp. H680–H689

Abstract

A beat-to-beat model of the cardiovascular system is developed to study the spontaneous short-term variability in arterial blood pressure (BP) and heart rate (HR) data from humans at rest. The model consists of a set of difference equations representing the following mechanisms: 1) control of HR and peripheral resistance by the baroreflex, 2) Windkessel properties of the systemic arterial tree, 3) contractile properties of the myocardium (Starling's law and restitution), and 4) mechanical effects of respiration on BP. The model is tested by comparing power spectra and cross spectra of simulated data from the model with spectra of actual data from resting subjects. To make spectra from simulated data and from actual data tally, it must be assumed that respiratory sinus arrhythmia at rest is caused by the conversion of respiratory BP variability into HR variability by the fast, vagally mediated baroreflex. The so-called 10-s rhythm in HR and BP appears as a resonance phenomenon due to the delay in the sympathetic control loop of the baroreflex. The simulated response of the model to an imposed increase of BP is shown to correspond with the BP and HR response in patients after administration of a BP-increasing drug, such as phenylephrine. It is concluded that the model correctly describes a number of important features of the cardiovascular system. Mathematical properties of the difference-equation model are discussed.

Heart Rate Variability and Autonomic ControlNon-Invasive Vital Sign MonitoringHeart rate and cardiovascular healthBaroreflexCardiologyBeat (acoustics)Heart rateInternal medicineBlood pressureHemodynamicsPhenylephrineVagal toneAutonomic nervous system

MeSH terms

Blood PressureCardiac OutputCentral Nervous SystemHeartHemodynamicsHumansModels, TheoreticalMyocardial ContractionPhenylephrinePressoreceptorsReflexRespirationStatistics as TopicVagus NerveVascular Resistance
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Journal of the American Statistical Association · 1969 · 5,019 citations
Reflex Regulation of Arterial Pressure during Sleep in Man
Circulation Research · 1969 · 1,283 citations
Hemodynamic regulation: investigation by spectral analysis
American Journal of Physiology-Heart and Circulatory Physiology · 1985 · 1,298 citations
Time Series Analysis: Forecasting and Control
Journal of Marketing Research · 1977 · 19,299 citations
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