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September 1, 1984Circulation Research140 citationsOpen Access

A computer study of the left ventricular performance based on fiber structure, sarcomere dynamics, and transmural electrical propagation velocity.

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RBR. BeyarSSS. Sideman

Structured PICO

P
Population
Computer model of the left ventricle combining spheroidal geometry with spatial fiber angle distribution
I
Intervention
Simulation of different preloading, afterloading, and contractility conditions
O
Outcome
Parameters and indices of left ventricular function, specifically maximum elastancesurrogate

A computational model demonstrates that maximum elastance is an optimal, load-independent macroscale parameter of left ventricular contractility.

Abstract

A model of the left ventricle which combines a spheroidal geometry with a spatial fiber angle distribution is presented. The mechanics of each muscle fiber is described by its passive stress-strain relationship, active stress-strain relationship, and an activation function (half a sinusoid) which represents the time-dependent degree of activation of the fiber. A stress-strain rate relationship which characterizes the muscle fibers is used to calculate the mechanics of left ventricular contraction during ejection. Furthermore, a radial electrical signal propagation from the endocardium to the epicardium is used here as a first approximation to the actual depolarization sequence. The model is used to describe the process of contraction throughout the systole. The different calculated parameters and indices of left ventricular function are presented and discussed for different preloading, afterloading and contractility conditions. The maximum elastance is found to be an optimal macroscale parameter of contractility, as it is completely preload and afterload independent, and is a good reflection of the active microscale sarcomere stress-strain relationship.

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Cite This Study

Beyar et al. (1984) studied this question.

synapsesocial.com/papers/6a1305f906ed52b5c2c0f0cahttps://doi.org/10.1161/01.res.55.3.358
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