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  4. On the in-series and in-parallel contribution of elastin assessed by a structure-based biomechanical model of the arterial wall
 
research article

On the in-series and in-parallel contribution of elastin assessed by a structure-based biomechanical model of the arterial wall

Roy, Sylvain  
•
Tsamis, Alkiviadis
•
Prod'hom, Gilles
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2008
Journal of biomechanics

Earlier experimental work on decellularized arteries revealed the existence of significant residual stresses within the arterial wall, which are released upon chemical removal of vascular smooth muscle in normal arteries causing substantial radial expansion. Hence, the often-used Hill's model describing active and passive stresses within the wall does not hold true, because the existence of prestresses precludes the fundamental assumption of zero active stress when the vascular smooth muscle is inactive. We have, therefore, developed a new mathematical model based on a modified Hill's model, where the total wall elastin is partitioned in two parts: one in-parallel to vascular smooth muscle and collagen and one connected in-series with vascular smooth muscle. Based on experimental evidences, compressive prestresses were assumed to exist on the parallel elastic component and tensile prestresses on the series elastic component. Further, we assumed that the elastic constants of elastin and collagen and the statistical description of collagen engagement are not affected by decellularization. Excellent fits of the pressure-diameter curves of normal and decellularized arteries were obtained. The model predicts that the majority of elastin is in-series with the vascular smooth muscle (74 +/-8%) and thus only about one-fourth of elastin acts in parallel to the vascular smooth muscle. We conclude that correct biomechanical modeling of the arterial wall requires the knowledge of the zero stress state of both the series and parallel elastic components.

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Type
research article
DOI
10.1016/j.jbiomech.2007.11.025
Web of Science ID

WOS:000254677400002

PubMed ID

18456913

Author(s)
Roy, Sylvain  
Tsamis, Alkiviadis
Prod'hom, Gilles
Stergiopulos, Nikos  
Date Issued

2008

Published in
Journal of biomechanics
Volume

41

Issue

4

Start page

737

End page

43

Subjects

Models, Cardiovascular

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LHTC  
Available on Infoscience
December 16, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/62234
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