Regen D M, Maurer C R
J Theor Biol. 1986 May 7;120(1):31-61. doi: 10.1016/s0022-5193(86)80016-9.
Since the wall/cavity ratio of a heart chamber is not a biological constant, fractional cavity-surface motion is not a valid performance index and the stresses most commonly used in the myocardial-mechanics literature are not valid expressions of pulling action or contractility. We have developed a system for analyzing and expressing left-ventricular performance and abilities which avoids these problems. It allows one to estimate the following quantities from left-ventricular image data and arterial pressures: "Fractional midwall excursion", the fractional change in a weighted average of inner- and outer-surface dimensions, which is a valid but preload-dependent expression of performance regardless of wall/cavity ratio. "Fractional midwall excursion rate", fractional midwall excursion divided by EKG-normalized ejection time, which is a relatively preload-independent expression of performance regardless of wall/cavity ratio. "Pressure safety factor", systolic pressure-making ability relative to demanded systolic pressure. "Myocardial fiberstress", the intensity of circumferential pulling force in the wall (pulling force per unit cross-sectional area). "Myocardial growth ability", the anabolic responsiveness to habitual systolic fiberstresses, expressed as the reciprocal of long-term-average systolic fiberstresses. (6) "Contractility", the stress-developing ability of the myocardium, specifically the amplitude of the developed stress-stretch function at peak activation. On the average, these quantities are related as follows: Growth ability determines average systolic fiberstresses; contractility and growth ability (or systolic stress) largely determine safety factor; safety factor largely determines fractional midwall excursion and its rate. We have developed a microcomputer program which evaluates these quantities from image/pressure data and displays them digitally and graphically.
由于心脏腔室的壁/腔比值并非生物常数,因此腔室表面运动分数不是一个有效的性能指标,心肌力学文献中最常用的应力也不是牵拉作用或收缩性的有效表达方式。我们开发了一种用于分析和表达左心室性能及能力的系统,该系统避免了这些问题。它允许从左心室图像数据和动脉压中估算以下量:“分数中壁偏移”,即内外表面尺寸加权平均值的分数变化,它是一个有效的但依赖前负荷的性能表达方式,与壁/腔比值无关。“分数中壁偏移率”,分数中壁偏移除以心电图标准化射血时间,它是一个相对独立于前负荷的性能表达方式,与壁/腔比值无关。“压力安全系数”,相对于所需收缩压的收缩压产生能力。“心肌纤维应力”,壁中周向拉力的强度(单位横截面积的拉力)。“心肌生长能力”,对习惯性收缩纤维应力的合成代谢反应,以长期平均收缩纤维应力的倒数表示。(6)“收缩性”,心肌产生应力的能力,具体而言是峰值激活时所产生的应力-应变函数的幅度。平均而言,这些量的关系如下:生长能力决定平均收缩纤维应力;收缩性和生长能力(或收缩应力)在很大程度上决定安全系数;安全系数在很大程度上决定分数中壁偏移及其速率。我们开发了一个微机程序,该程序可根据图像/压力数据评估这些量,并以数字和图形方式显示它们。