Sun Y, Beshara M, Lucariello R J, Chiaramida S A
Department of Electrical and Computer Engineering, University of Rhode Island, Kingston 02881, USA.
Am J Physiol. 1997 Mar;272(3 Pt 2):H1499-515. doi: 10.1152/ajpheart.1997.272.3.H1499.
A phenomenological model of the cardiopulmonary circulation is developed with a focus on the interaction between the right heart and the left heart. The model predicts the hemodynamic consequences of changing circulatory parameters in terms of a broad spectrum of pressure and flow waveforms. Hemodynamics are characterized by use of an electrical analog incorporating mechanisms for transseptal pressure coupling, pericardial volume coupling, intrathoracic pressure, and baroreflex control of heart rate. Computer simulations are accomplished by numerically integrating 28 differential equations that contain nonlinear and time-varying coefficients. Validity of the model is supported by its accurate fit to clinical pressure and Doppler echocardiographic recordings. The model characterizes the hemodynamic waveforms for mitral stenosis, mitral regurgitation, left heart failure, right heart failure, cardiac tamponade, pulsus paradoxus, and the Valsalva maneuver. The wave shapes of pulmonary capillary wedge pressure under the above conditions are also accurately represented. Sensitivity analysis reveals that simulated hemodynamics are insensitive to most individual model parameters with the exception of afterload resistance, preload capacitances, intrathoracic pressure, contractility, and pericardial fluid volume. Baseline hemodynamics are minimally affected by transseptal coupling (up to 2%) and significantly affected by pericardial coupling (up to 20%). The model should be useful for quantitative studies of cardiopulmonary dynamics related to the right-left heart interaction under normal and disease conditions.
开发了一种心肺循环的现象学模型,重点关注右心与左心之间的相互作用。该模型根据广泛的压力和流量波形预测循环参数变化的血流动力学后果。血流动力学通过使用包含跨隔压力耦合、心包容积耦合、胸内压和心率压力反射控制机制的电模拟来表征。通过对包含非线性和时变系数的28个微分方程进行数值积分来完成计算机模拟。该模型的有效性通过其对临床压力和多普勒超声心动图记录的精确拟合得到支持。该模型表征了二尖瓣狭窄、二尖瓣反流、左心衰竭、右心衰竭、心脏压塞、奇脉和瓦尔萨尔瓦动作的血流动力学波形。上述条件下肺毛细血管楔压的波形也得到了准确呈现。敏感性分析表明,除后负荷阻力、前负荷电容、胸内压、收缩力和心包液量外,模拟的血流动力学对大多数单个模型参数不敏感。基线血流动力学受跨隔耦合的影响最小(高达2%),受心包耦合的影响显著(高达20%)。该模型对于正常和疾病状态下与左右心相互作用相关的心肺动力学定量研究应是有用的。