Literature DB >> 12661200

Experimental verification of the roles of intrinsic matrix viscoelasticity and tension-compression nonlinearity in the biphasic response of cartilage.

Chun-Yuh Huang1, Michael A Soltz, Monika Kopacz, Van C Mow, Gerard A Ateshian.   

Abstract

A biphasic-CLE-QLV model proposed in our recent study [2001, J. Biomech. Eng., 123, pp. 410-417] extended the biphasic theory of Mow et al. [1980, J. Biomech. Eng., 102, pp. 73-84] to include both tension-compression nonlinearity and intrinsic viscoelasticity of the cartilage solid matrix by incorporating it with the conewise linear elasticity (CLE) model [1995, J. Elasticity, 37, pp. 1-38] and the quasi-linear viscoelasticity (QLV) model [Biomechanics: Its foundations and objectives, Prentice Hall, Englewood Cliffs, 1972]. This model demonstrates that a simultaneous prediction of compression and tension experiments of articular cartilage, under stress-relaxation and dynamic loading, can be achieved when properly taking into account both flow-dependent and flow-independent viscoelastic effects, as well as tension-compression nonlinearity. The objective of this study is to directly test this biphasic-CLE-QLV model against experimental data from unconfined compression stress-relaxation tests at slow and fast strain rates as well as dynamic loading. Twelve full-thickness cartilage cylindrical plugs were harvested from six bovine glenohumeral joints and multiple confined and unconfined compression stress-relaxation tests were performed on each specimen. The material properties of specimens were determined by curve-fitting the experimental results from the confined and unconfined compression stress relaxation tests. The findings of this study demonstrate that the biphasic-CLE-QLV model is able to describe the strain-rate-dependent mechanical behaviors of articular cartilage in unconfined compression as attested by good agreements between experimental and theoretical curvefits (r2 = 0.966 +/- 0.032 for testing at slow strain rate; r2 = 0.998 +/- 0.002 for testing at fast strain rate) and predictions of the dynamic response (r2 = 0.91 +/- 0.06). This experimental study also provides supporting evidence for the hypothesis that both tension-compression nonlinearity and intrinsic viscoelasticity of the solid matrix of cartilage are necessary for modeling the transient and equilibrium responses of this tissue in tension and compression. Furthermore, the biphasic-CLE-QLV model can produce better predictions of the dynamic modulus of cartilage in unconfined dynamic compression than the biphasic-CLE and biphasic poroviscoelastic models, indicating that intrinsic viscoelasticity and tension-compression nonlinearity of articular cartilage may play important roles in the load-support mechanism of cartilage under physiologic loading.

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Year:  2003        PMID: 12661200     DOI: 10.1115/1.1531656

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  45 in total

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Review 2.  Impact of mechanical stretch on the cell behaviors of bone and surrounding tissues.

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Journal:  J Tissue Eng       Date:  2015-12-29       Impact factor: 7.813

3.  A Novel Method for Curvefitting the Stretched Exponential Function to Experimental Data.

Authors:  Ronald K June; John P Cunningham; David P Fyhrie
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4.  Temperature effects in articular cartilage biomechanics.

Authors:  Ronald K June; David P Fyhrie
Journal:  J Exp Biol       Date:  2010-11-15       Impact factor: 3.312

5.  Effects of tension-compression nonlinearity on solute transport in charged hydrated fibrous tissues under dynamic unconfined compression.

Authors:  Chun-Yuh Huang; Wei Yong Gu
Journal:  J Biomech Eng       Date:  2007-06       Impact factor: 2.097

6.  Anisotropy, inhomogeneity, and tension-compression nonlinearity of human glenohumeral cartilage in finite deformation.

Authors:  Chun-Yuh Huang; Anna Stankiewicz; Gerard A Ateshian; Van C Mow
Journal:  J Biomech       Date:  2005-04       Impact factor: 2.712

7.  Dynamic response of immature bovine articular cartilage in tension and compression, and nonlinear viscoelastic modeling of the tensile response.

Authors:  Seonghun Park; Gerard A Ateshian
Journal:  J Biomech Eng       Date:  2006-08       Impact factor: 2.097

8.  Biphasic Finite Element Modeling Reconciles Mechanical Properties of Tissue-Engineered Cartilage Constructs Across Testing Platforms.

Authors:  Gregory R Meloni; Matthew B Fisher; Brendan D Stoeckl; George R Dodge; Robert L Mauck
Journal:  Tissue Eng Part A       Date:  2017-04-14       Impact factor: 3.845

9.  Award Winner in the Young Investigator Category, 2014 Society for Biomaterials Annual Meeting and Exposition, Denver, Colorado, April 16-19, 2014: Periodically perforated core-shell collagen biomaterials balance cell infiltration, bioactivity, and mechanical properties.

Authors:  Steven R Caliari; Laura C Mozdzen; Oliver Armitage; Michelle L Oyen; Brendan A C Harley
Journal:  J Biomed Mater Res A       Date:  2013-12-31       Impact factor: 4.396

10.  Enzymatic digestion of articular cartilage results in viscoelasticity changes that are consistent with polymer dynamics mechanisms.

Authors:  Ronald K June; David P Fyhrie
Journal:  Biomed Eng Online       Date:  2009-11-04       Impact factor: 2.819

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