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contributor authorBlayne A. Roeder
contributor authorStudent Mem. ASME
contributor authorKlod Kokini
contributor authorJennifer E. Sturgis
contributor authorJ. Paul Robinson
contributor authorSherry L. Voytik-Harbin
date accessioned2017-05-09T00:06:52Z
date available2017-05-09T00:06:52Z
date copyrightApril, 2002
date issued2002
identifier issn0148-0731
identifier otherJBENDY-26237#214_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/126408
description abstractThe importance and priority of specific micro-structural and mechanical design parameters must be established to effectively engineer scaffolds (biomaterials) that mimic the extracellular matrix (ECM) environment of cells and have clinical applications as tissue substitutes. In this study, three-dimensional (3-D) matrices were prepared from type I collagen, the predominant compositional and structural component of connective tissue ECMs, and structural-mechanical relationships were studied. Polymerization conditions, including collagen concentration (0.3–3 mg/mL) and pH (6–9), were varied to obtain matrices of collagen fibrils with different microstructures. Confocal reflection microscopy was used to assess specific micro-structural features (e.g., diameter and length) and organization of component fibrils in 3-D. Microstructural analyses revealed that changes in collagen concentration affected fibril density while maintaining a relatively constant fibril diameter. On the other hand, both fibril length and diameter were affected by the pH of the polymerization reaction. Mechanically, all matrices exhibited a similar stress-strain curve with identifiable “toe,” “linear,” and “failure” regions. However, the linear modulus and failure stress increased with collagen concentration and were correlated with an increase in fibril density. Additionally, both the linear modulus and failure stress showed an increase with pH, which was related to an increased fibril length and a decreased fibril diameter. The tensile mechanical properties of the collagen matrices also showed strain rate dependence. Such fundamental information regarding the 3-D microstructural-mechanical properties of the ECM and its component molecules are important to our overall understanding of cell-ECM interactions (e.g., mechanotransduction) and the development of novel strategies for tissue repair and replacement.
publisherThe American Society of Mechanical Engineers (ASME)
titleTensile Mechanical Properties of Three-Dimensional Type I Collagen Extracellular Matrices With Varied Microstructure
typeJournal Paper
journal volume124
journal issue2
journal titleJournal of Biomechanical Engineering
identifier doi10.1115/1.1449904
journal fristpage214
journal lastpage222
identifier eissn1528-8951
keywordsStress
keywordsMechanical properties
keywordsFailure
keywordsPolymerization
keywordsBiological tissues
keywordsReflection
keywordsMicroscopy AND Biomaterials
treeJournal of Biomechanical Engineering:;2002:;volume( 124 ):;issue: 002
contenttypeFulltext


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