Slow oscillations in blood pressure via a nonlinear feedback model

被引:84
作者
Ringwood, JV
Malpas, SC
机构
[1] Univ Auckland, Sch Med, Dept Physiol, Circulatory Control Lab, Auckland, New Zealand
[2] Natl Univ Ireland, Dept Elect Engn, Maynooth, Kildare, Ireland
关键词
sympathetic nervous system; baroreflex; stability; describing function; artificial neural network;
D O I
10.1152/ajpregu.2001.280.4.R1105
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Blood pressure is well established to contain a potential oscillation between 0.1 and 0.4 Hz, which is proposed to reflect resonant feedback in the baroreflex loop. A linear feedback model, comprising delay and lag terms for the vasculature, and a linear proportional derivative controller have been proposed to account for the 0.4-Hz oscillation in blood pressure in rats. However, although this model can produce oscillations at the required frequency, some strict relationships between the controller and vasculature parameters must be true for the oscillations to be stable. We developed a nonlinear model, containing an amplitude-limiting nonlinearity that allows for similar oscillations under a very mild set of assumptions. Models constructed from arterial pressure and sympathetic nerve activity recordings obtained from conscious rabbits under resting conditions suggest that the nonlinearity in the feedback loop is not contained within the vasculature, but rather is confined to the central nervous system. The advantage of the model is that it provides for sustained stable oscillations under a wide variety of situations even where gain at various points along the feedback loop may be altered, a situation that is not possible with a linear feedback model. Our model shows how variations in some of the nonlinearity characteristics can account for growth or decay in the oscillations and situations where the oscillations can disappear altogether. Such variations are shown to accord well with observed experimental data. Additionally, using a nonlinear feedback model, it is straightforward to show that the variation in frequency of the oscillations in blood pressure in rats (0.4 Hz), rabbits (0.3 Hz), and humans (0.1 Hz) is primarily due to scaling effects of conduction times between species.
引用
收藏
页码:R1105 / R1115
页数:11
相关论文
共 41 条
  • [11] STRUCTURAL VERSUS FUNCTIONAL MODULATION OF THE ARTERIAL BAROREFLEX
    CHAPLEAU, MW
    CUNNINGHAM, JT
    SULLIVAN, MJ
    WACHTEL, RE
    ABBOUD, FM
    [J]. HYPERTENSION, 1995, 26 (02) : 341 - 347
  • [12] COUYGHANOWR DR, 1965, PROCESS SYSTEMS ANAL
  • [13] HEMODYNAMIC FLUCTUATIONS AND BAROREFLEX SENSITIVITY IN HUMANS - A BEAT-TO-BEAT MODEL
    DEBOER, RW
    KAREMAKER, JM
    STRACKEE, J
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY, 1987, 253 (03): : H680 - H689
  • [14] DORF RC, 1997, MODERN CONTROL SYSTE
  • [15] RISK STRATIFICATION FOR ARRHYTHMIC EVENTS IN POSTINFARCTION PATIENTS BASED ON HEART-RATE-VARIABILITY, AMBULATORY ELECTROCARDIOGRAPHIC VARIABLES AND THE SIGNAL-AVERAGED ELECTROCARDIOGRAM
    FARRELL, TG
    BASHIR, Y
    CRIPPS, T
    MALIK, M
    POLONIECKI, J
    BENNETT, ED
    WARD, DE
    CAMM, AJ
    [J]. JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 1991, 18 (03) : 687 - 697
  • [16] PLASMA NOREPINEPHRINE DURING STRESS IN ESSENTIAL-HYPERTENSION
    GOLDSTEIN, DS
    [J]. HYPERTENSION, 1981, 3 (05) : 551 - 556
  • [17] HOLOHAN AM, 2000, P IR SIGN SYST C DUB
  • [18] RENAL BLOOD-FLOW REGULATION AND ARTERIAL-PRESSURE FLUCTUATIONS - A CASE-STUDY IN NONLINEAR DYNAMICS
    HOLSTEINRATHLOU, NH
    MARSH, DJ
    [J]. PHYSIOLOGICAL REVIEWS, 1994, 74 (03) : 637 - 681
  • [19] Low-frequency component of the heart rate variability spectrum: a poor marker of sympathetic activity
    Houle, MS
    Billman, GE
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 1999, 276 (01): : H215 - H223
  • [20] SYMPATHOVAGAL EFFECTS OF SPINAL-ANESTHESIA ASSESSED BY HEART-RATE-VARIABILITY ANALYSIS
    INTRONA, R
    YODLOWSKI, E
    PRUETT, J
    MONTANO, N
    PORTA, A
    CRUMRINE, R
    [J]. ANESTHESIA AND ANALGESIA, 1995, 80 (02) : 315 - 321