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Cardiovascular mechanics in the early stages of pulmonary hypertension: a computational study.

Authors :
Acosta S
Puelz C
Rivière B
Penny DJ
Brady KM
Rusin CG
Source :
Biomechanics and modeling in mechanobiology [Biomech Model Mechanobiol] 2017 Dec; Vol. 16 (6), pp. 2093-2112. Date of Electronic Publication: 2017 Jul 21.
Publication Year :
2017

Abstract

We formulate and study a new mathematical model of pulmonary hypertension. Based on principles of fluid and elastic dynamics, we introduce a model that quantifies the stiffening of pulmonary vasculature (arteries and arterioles) to reproduce the hemodynamics of the pulmonary system, including physiologically consistent dependence between compliance and resistance. This pulmonary model is embedded in a closed-loop network of the major vessels in the body, approximated as one-dimensional elastic tubes, and zero-dimensional models for the heart and other organs. Increasingly severe pulmonary hypertension is modeled in the context of two extreme scenarios: (1) no cardiac compensation and (2) compensation to achieve constant cardiac output. Simulations from the computational model are used to estimate cardiac workload, as well as pressure and flow traces at several locations. We also quantify the sensitivity of several diagnostic indicators to the progression of pulmonary arterial stiffening. Simulation results indicate that pulmonary pulse pressure, pulmonary vascular compliance, pulmonary RC time, luminal distensibility of the pulmonary artery, and pulmonary vascular impedance are much better suited to detect the early stages of pulmonary hypertension than mean pulmonary arterial pressure and pulmonary vascular resistance, which are conventionally employed as diagnostic indicators for this disease.

Details

Language :
English
ISSN :
1617-7940
Volume :
16
Issue :
6
Database :
MEDLINE
Journal :
Biomechanics and modeling in mechanobiology
Publication Type :
Academic Journal
Accession number :
28733923
Full Text :
https://doi.org/10.1007/s10237-017-0940-4