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Published on: February 13, 2021
The effect of left ventricular contractility on arterial hemodynamics: A model-based investigation
Stamatia Pagoulatou1, Dionysios Adamopoulos2, Georgios Rovas1
1Laboratory of Hemodynamics and Cardiovascular Technology (LHTC), Institute of Bioengineering, Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Insights
Altering cardiac contractility (Ees) significantly impacts arterial pulse phenotypes. Increased contractility alone changes pressure wave shape and augmentation index, affecting cardiovascular performance assessment.
Area of Science:
- Cardiovascular Physiology
- Mathematical Modeling
- Hemodynamics
Background:
- Ventricular-arterial coupling is crucial for cardiovascular performance.
- Distinguishing ventricular from vascular influences on arterial pulse is challenging.
Purpose of the Study:
- To investigate the isolated effects of cardiac contractility on hemodynamics using a mathematical model.
- To analyze changes in arterial pulse phenotypes due to altered contractility.
Main Methods:
- Utilized an extensive cardiovascular system mathematical model.
- Simulated high and low cardiac contractility by adjusting end-systolic elastance (Ees).
- Performed pulse wave analysis and wave separation.
Main Results:
- Higher Ees resulted in a steeper aortic forward pressure wave.
- Waveform phenotype shifted from Type A to Type C, decreasing augmentation index (AIx).
- Increased Ees significantly enhanced pulse pressure amplification from aorta to radial artery.
Conclusions:
- Increased cardiac contractility alone alters forward pressure wave shape and pulse phenotypes.
- Arterial indices like AIx may not solely reflect arterial properties when contractility changes.
Abstract:
Ventricular-arterial coupling is a major determinant of cardiovascular performance, however, there are still inherent difficulties in distinguishing ventricular from vascular effects on arterial pulse phenotypes. In the present study, we employed an extensive mathematical model of the cardiovascular system to investigate how sole changes in cardiac contractility might affect hemodynamics. We simulated two physiologically relevant cases of high and low contractility by altering the end-systolic elastance, Ees, (3 versus 1 mmHg/mL) under constant cardiac output and afterload, and subsequently performed pulse wave analysis and wave separation. The aortic forward pressure wave component was steeper for high Ees, which led to the change of the total pressure waveform from the characteristic Type A phenotype to Type C, and the decrease in augmentation index, AIx (-2.4% versus +18.1%). Additionally, the increase in Ees caused the pulse pressure amplification from the aorta to the radial artery to rise drastically (1.86 versus 1.39). Our results show that an increase in cardiac contractility alone, with no concomitant change in arterial properties, alters the shape of the forward pressure wave, which, consequently, changes central and peripheral pulse phenotypes. Indices based on the pressure waveform, like AIx, cannot be assumed to reflect only arterial properties.
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