Literature DB >> 21416392

Mechanical and structural contribution of non-fibrillar matrix in uniaxial tension: a collagen-agarose co-gel model.

Spencer P Lake1, Victor H Barocas.   

Abstract

The mechanical role of non-fibrillar matrix and the nature of its interaction with the collagen network in soft tissues remain poorly understood, in part because of the lack of a simple experimental model system to quantify these interactions. This study's objective was to examine mechanical and structural properties of collagen-agarose co-gels, utilized as a simplified model system, to understand better the relationships between the collagen network and non-fibrillar matrix. We hypothesized that the presence of agarose would have a pronounced effect on microstructural reorganization and mechanical behavior. Samples fabricated from gel solutions containing 1.0 mg/mL collagen and 0, 0.125, or 0.25% w/v agarose were evaluated via scanning electron microscopy, incremental tensile stress-relaxation tests, and polarized light imaging. While the incorporation of agarose did not dramatically alter collagen network morphology, agarose led to concentration-dependent changes in mechanical and structural properties. Specifically, resistance of co-gels to volume change corresponded with differences in fiber reorientation and elastic/viscoelastic mechanics. Results demonstrate strong relationships between tissue properties and offer insight into behavior of tissues of varying Poisson's ratio and fiber kinematics. Results also suggest that non-fibrillar material may have significant effects on properties of artificial and native tissues even in tension, which is generally assumed to be collagen dominated.

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Year:  2011        PMID: 21416392      PMCID: PMC3322425          DOI: 10.1007/s10439-011-0298-1

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  30 in total

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  25 in total

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4.  Swelling of Collagen-Hyaluronic Acid Co-Gels: An In Vitro Residual Stress Model.

Authors:  Victor K Lai; David S Nedrelow; Spencer P Lake; Bumjun Kim; Emily M Weiss; Robert T Tranquillo; Victor H Barocas
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5.  Characterization of Collagen Type I and II Blended Hydrogels for Articular Cartilage Tissue Engineering.

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7.  Poisson's Contraction and Fiber Kinematics in Tissue: Insight From Collagen Network Simulations.

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8.  Design and Validation of a Vacuum Assisted Anchorage for the Uniaxial Tensile Testing of Soft Materials.

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9.  Simulated remodeling of loaded collagen networks via strain-dependent enzymatic degradation and constant-rate fiber growth.

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10.  Mechanics and kinematics of soft tissue under indentation are determined by the degree of initial collagen fiber alignment.

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