Remodeling-Mediated Changes in Left Ventricular Mechanics Under Settings of Chronic Pressure Overload and Exercise.

IF 1.7 4区 医学 Q4 BIOPHYSICS
Francesco Yigamawano, Ricky Ruiz, Conner Johnson, Alexander Barnette, Lisa Freeburg, Kurt Barringhaus, Francis/G Spinale, Tarek Shazly
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Abstract

Left ventricular (LV) remodeling, whether occurring with somatic growth or as a chronic response to a sustained stimulus, is a primary factor underlying cardiac mechanical function. Although LV remodeling is a complex process that can be described at several levels, response variables that govern cardiac mechanics include changes in LV wall and chamber geometry, the mechanical properties of the LV myocardium, and LV structural mechanical properties such as LV chamber stiffness. We leverage two-dimensional speckle-tracking echocardiography (STE) to serially monitor key LV remodeling response variables in porcine models of LV pressure overload (LVPO), chronic exercise (CE), and the superposition of both settings (CE+LVPO), and compare changes to those occurring in age-matched referent control (RC) animals. Our findings show that over 28-days, LVPO and CE both induce hypertrophy, but passive LV myocardial stiffness increases with the former and decreases with the latter. As a net effect of geometrical and mechanical property changes, these settings induce divergent changes in LV chamber stiffness, namely an elevation with LVPO and reduction with CE. In the CE+LVPO cohort, exercise was found to attenuate the LVPO-induced increase in LV myocardial and LV chamber stiffnesses. Data obtained were used to identify a phenomenological model of LV chamber stiffness and develop a predictive mathematical model of late changes in LV chamber stiffness based on early remodeling response variables irrespective of stimulus. Our findings support exercise in cardiac therapy and the use of STE to predict cardiac disease risk/progression.

慢性压力超载和运动条件下左心室力学重构介导的变化。
左心室(LV)重构,无论是发生在躯体生长过程中,还是作为对持续刺激的慢性反应,都是心脏机械功能的主要因素。尽管左室重构是一个复杂的过程,可以在多个层面进行描述,但控制心脏力学的响应变量包括左室壁和室腔几何形状的变化、左室心肌的力学特性以及左室结构力学特性(如左室刚度)。我们利用二维斑点跟踪超声心动图(STE)连续监测左室压力过载(LVPO)、慢性运动(CE)和两种设置叠加(CE+LVPO)的猪模型中的关键左室重塑反应变量,并将这些变化与年龄匹配的参考对照(RC)动物进行比较。我们的研究结果表明,在28天以上,LVPO和CE均诱导肥厚,但被动左室心肌僵硬度随前者而增加,随后者而减少。作为几何和力学性能变化的净效应,这些设置导致低压腔室刚度的发散变化,即LVPO升高,CE降低。在CE+LVPO队列中,发现运动可以减弱LVPO引起的左室心肌和左室刚度的增加。研究人员利用获得的数据确定了左室刚度的现象学模型,并建立了一个基于早期重构响应变量的左室刚度晚期变化的预测数学模型,而不考虑刺激。我们的研究结果支持运动在心脏治疗和使用STE预测心脏病的风险/进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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