Kohli Keshav, Kovács Sándor J
Cardiovascular Biophysics Laboratory, Cardiovascular Division Department of Medicine Washington University School of Medicine, St. Louis, Missouri.
Department of Electrical Engineering, School of Engineering and Applied Science Washington University in St. Louis, St. Louis, Missouri.
Physiol Rep. 2017 Mar;5(6). doi: 10.14814/phy2.13160.
Left ventricular (LV) pressure-volume (-) loop analysis is the gold standard for chamber function assessment. To advance beyond traditional and pressure phase plane (d/dt-P) analysis in the quest for novel load-independent chamber properties, we introduce the normalized - loop. High-fidelity LV pressure and volume data (161 P-V loops) from 13 normal control subjects were analyzed. Normalized LV pressure () was defined by 0 ≤ (t) ≤ 1. Normalized LV volume () was defined as =()/, since the LV volume at diastasis () is the in-vivo equilibrium volume relative to which the LV volume oscillates. Plotting versus for each cardiac cycle generates normalized P-V loops. LV volume at the peak LV ejection rate and at the peak LV filling rate (peak -d/dt and peak +d/d, respectively) were determined for conventional and normalized loops. at peak +d/dt was inscribed at 64 ± 5% of normalized equilibrium (diastatic) volume with an inter-subject variation of 8%, and had a reduced intra-subject (beat-to-beat) variation compared to conventional P-V loops (9% vs. 13%, respectively; < 0.005), thereby demonstrating load-independent attributes. In contrast, at peak -d/dt was inscribed at 81 ± 9% with an inter-subject variation of 11%, and had no significant change in intra-subject (beat-to-beat) variation compared to conventional P-V loops (17% vs. 17%, respectively; = 0.56), therefore failing to demonstrate load-independent tendencies. Thus, the normalized P-V loop advances the quest for load-independent LV chamber properties. at the peak LV filling rate (≈sarcomere length at the peak sarcomere lengthening rate) manifests load-independent properties. This novel method may help to elucidate and quantify new attributes of cardiac and cellular function. It merits further application in additional human and animal physiologic and pathophysiologic datasets.
左心室(LV)压力-容积(-)环分析是评估心室功能的金标准。为了超越传统的压力相平面(d/dt-P)分析,探索新的与负荷无关的心室特性,我们引入了标准化-环。分析了13名正常对照受试者的高保真左心室压力和容积数据(161个P-V环)。标准化左心室压力()定义为0≤(t)≤1。标准化左心室容积()定义为=()/,因为舒张末期左心室容积()是左心室容积相对于其振荡的体内平衡容积。绘制每个心动周期的与的关系图可生成标准化P-V环。对于传统环和标准化环,分别确定左心室射血速率峰值和左心室充盈速率峰值(分别为峰值-d/dt和峰值+d/d)时的左心室容积。峰值+d/dt时的位于标准化平衡(舒张期)容积的64±5%处,受试者间变异为8%,与传统P-V环相比,受试者内(逐搏)变异减小(分别为9%对13%;<0.005),从而显示出与负荷无关的特性。相比之下,峰值-d/dt时的位于81±9%处,受试者间变异为11%,与传统P-V环相比,受试者内(逐搏)变异无显著变化(分别为17%对17%;=0.56),因此未显示出与负荷无关的趋势。因此,标准化P-V环推进了对与负荷无关的左心室特性的探索。左心室充盈速率峰值时的(≈肌节长度增加速率峰值时的肌节长度)表现出与负荷无关的特性。这种新方法可能有助于阐明和量化心脏和细胞功能的新特性。它值得在更多的人类和动物生理及病理生理数据集中进一步应用。