Wave reflections in the pulmonary arteries analysed with the reservoir-wave model

被引:15
作者
Bouwmeester, J. Christopher [1 ]
Belenkie, Israel [1 ,2 ,3 ]
Shrive, Nigel G. [4 ]
Tyberg, John V. [1 ,2 ,5 ]
机构
[1] Univ Calgary, Libin Cardiovasc Inst Alberta, Calgary, AB, Canada
[2] Univ Calgary, Dept Cardiac Sci, Calgary, AB, Canada
[3] Univ Calgary, Dept Med, Calgary, AB, Canada
[4] Univ Calgary, Dept Civil Engn, Calgary, AB T2N 1N4, Canada
[5] Univ Calgary, Dept Physiol & Pharmacol, Calgary, AB, Canada
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2014年 / 592卷 / 14期
基金
加拿大健康研究院;
关键词
BACKWARD PRESSURE WAVES; VASCULAR-RESISTANCE; DOG LUNG; INTENSITY ANALYSIS; REPRESENT REALITY; SYSTEM; HYPERTENSION; VASOCONSTRICTION; WINDKESSEL; VESSELS;
D O I
10.1113/jphysiol.2014.273094
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Conventional haemodynamic analysis of pressure and flow in the pulmonary circulation yields incident and reflected waves throughout the cardiac cycle, even during diastole. The reservoir-wave model provides an alternative haemodynamic analysis consistent with minimal wave activity during diastole. Pressure and flow in the main pulmonary artery were measured in anaesthetized dogs and the effects of hypoxia and nitric oxide, volume loading and positive end-expiratory pressure were observed. The reservoir-wave model was used to determine the reservoir contribution to pressure and flow and once subtracted, resulted in 'excess' quantities, which were treated as wave-related. Wave intensity analysis quantified the contributions of waves originating upstream (forward-going waves) and downstream (backward-going waves). In the pulmonary artery, negative reflections of incident waves created by the right ventricle were observed. Overall, the distance from the pulmonary artery valve to this reflection site was calculated to be 5.7 +/- 0.2 cm. During 100% O-2 ventilation, the strength of these reflections increased 10% with volume loading and decreased 4% with 10 cmH(2)O positive end-expiratory pressure. In the pulmonary arterial circulation, negative reflections arise from the junction of lobar arteries from the left and right pulmonary arteries. This mechanism serves to reduce peak systolic pressure, while increasing blood flow.
引用
收藏
页码:3053 / 3062
页数:10
相关论文
共 50 条
  • [21] A method to implement the reservoir-wave hypothesis using phase-contrast magnetic resonance imaging
    Gray, Robert D. M.
    Parker, Kim H.
    Quail, Michael A.
    Taylor, Andrew M.
    Biglino, Giovanni
    METHODSX, 2016, 3 : 508 - 512
  • [22] The aortic reservoir-wave as a paradigm for arterial haemodynamics: insights from three-dimensional fluid-structure interaction simulations in a model of aortic coarctation
    Segers, Patrick
    Taelman, Liesbeth
    Degroote, Joris
    Bols, Joris
    Vierendeels, Jan
    JOURNAL OF HYPERTENSION, 2015, 33 (03) : 554 - 563
  • [23] The reservoir wave paradigm discussion
    Westerhof, Nico
    Westerhof, Berend E.
    JOURNAL OF HYPERTENSION, 2015, 33 (03) : 458 - 460
  • [24] Wave intensity analysis and the development of the reservoir–wave approach
    John V. Tyberg
    Justin E. Davies
    Zhibin Wang
    William A. Whitelaw
    Jacqueline A. Flewitt
    Nigel G. Shrive
    Darryl P. Francis
    Alun D. Hughes
    Kim H. Parker
    Jiun-Jr Wang
    Medical & Biological Engineering & Computing, 2009, 47 : 221 - 232
  • [25] Variable open-end wave reflection in the pulmonary arteries of anesthetized sheep
    Dwyer, Nathan
    Yong, Ah Chot
    Kilpatrick, David
    JOURNAL OF PHYSIOLOGICAL SCIENCES, 2012, 62 (01) : 21 - 28
  • [26] Wave potential: A unified model of arterial waves, reservoir phenomena and their interaction
    Mynard, Jonathan P.
    Smolich, Joseph J.
    ARTERY RESEARCH, 2017, 18 : 55 - 63
  • [27] Wave potential: A unified model of arterial waves, reservoir phenomena and their interaction
    Jonathan P. Mynard
    Joseph J. Smolich
    Artery Research, 2017, 18 : 55 - 63
  • [28] Determination of wave speed and wave separation in the arteries using diameter and velocity
    Feng, J.
    Khir, A. W.
    JOURNAL OF BIOMECHANICS, 2010, 43 (03) : 455 - 462
  • [29] Wave Reflections, Arterial Stiffness, and Orthostatic Hypotension
    Sung, Shih-Hsien
    Chen, Zu-Yin
    Tseng, Tzu-Wei
    Lu, Dai-Yin
    Yu, Wen-Chung
    Cheng, Hao-Min
    Chen, Chen-Huan
    AMERICAN JOURNAL OF HYPERTENSION, 2014, 27 (12) : 1446 - 1455
  • [30] Relationship of fibrinogen with arterial stiffness and wave reflections
    Vlachopoulos, Charalambos
    Pietri, Panagiota
    Aznaouridis, Konstantinos
    Vyssoulis, Gregory
    Vasiliadou, Carmen
    Bratsas, Athanasios
    Tousoulis, Dimitris
    Xaplanteris, Panagiotis
    Stefanadi, Elli
    Stefanadis, Christodoulos
    JOURNAL OF HYPERTENSION, 2007, 25 (10) : 2110 - 2116