The complex structural organization of the aortic valve (AV) extracellular matrix (ECM) enables large and highly nonlinear tissue level deformations. The collagen and elastin (elastic) fibers within the ECM form an interconnected fibrous network (FN) and are known to be the main load-bearing elements of the AV matrix. The role of the FN in enabling deformation has been investigated and documented. However, there is little data on the correlation between tissue level and FN-level strains. Investigating this correlation will help establish the mode of strain transfer (affine or nonaffine) through the AV tissue as a key feature in microstructural modeling and will also help characterize the local FN deformation across the AV sample in response to applied tissue level strains. In this study, the correlation between applied strains at tissue level, macrostrains across the tissue surface, and local FN strains were investigated. Results showed that the FN strain distribution across AV samples was inhomogeneous and nonuniform, as well as anisotropic. There was no direct transfer of the deformation applied at tissue level to the fibrous network. Loading modes induced in the FN are different than those applied at the tissue as a result of different local strains in the valve layers. This nonuniformity of local strains induced internal shearing within the FN of the AV, possibly exposing the aortic valve interstitial cells (AVICs) to shear strains and stresses.
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June 2012
Research Papers
Strain Transfer Through the Aortic Valve
Afshin Anssari-Benam,
Afshin Anssari-Benam
School of Engineering and Materials Science
, Queen Mary, University of London
, Mile End Road, E1 4NS London, UK
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Himadri S. Gupta,
Himadri S. Gupta
School of Engineering and Materials Science
, Queen Mary, University of London
, Mile End Road, E1 4NS London, UK
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Hazel R. C. Screen
e-mail: H.R.C.Screen@qmul.ac.uk
Hazel R. C. Screen
School of Engineering and Materials Science
, Queen Mary, University of London
, Mile End Road, E1 4NS London, UK
Search for other works by this author on:
Afshin Anssari-Benam
School of Engineering and Materials Science
, Queen Mary, University of London
, Mile End Road, E1 4NS London, UK
Himadri S. Gupta
School of Engineering and Materials Science
, Queen Mary, University of London
, Mile End Road, E1 4NS London, UK
Hazel R. C. Screen
School of Engineering and Materials Science
, Queen Mary, University of London
, Mile End Road, E1 4NS London, UK
e-mail: H.R.C.Screen@qmul.ac.uk
J Biomech Eng. Jun 2012, 134(6): 061003 (11 pages)
Published Online: June 8, 2012
Article history
Received:
November 23, 2011
Revised:
May 4, 2012
Posted:
May 11, 2012
Published:
June 8, 2012
Online:
June 8, 2012
Citation
Anssari-Benam, A., Gupta, H. S., and Screen, H. R. C. (June 8, 2012). "Strain Transfer Through the Aortic Valve." ASME. J Biomech Eng. June 2012; 134(6): 061003. https://doi.org/10.1115/1.4006812
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