Literature DB >> 23553827

Effect of elastin digestion on the quasi-static tensile response of medial collateral ligament.

Heath B Henninger1, Clayton J Underwood, Steven J Romney, Grant L Davis, Jeffrey A Weiss.   

Abstract

Elastin is a structural protein that provides resilience to biological tissues. We examined the contributions of elastin to the quasi-static tensile response of porcine medial collateral ligament through targeted disruption of the elastin network with pancreatic elastase. Elastase concentration and treatment time were varied to determine a dose response. Whereas elastin content decreased with increasing elastase concentration and treatment time, the change in peak stress after cyclic loading reached a plateau above 1 U/ml elastase and 6 h treatment. For specimens treated with 2 U/ml elastase for 6 h, elastin content decreased approximately 35%. Mean peak tissue strain after cyclic loading (4.8%, p ≥ 0.300), modulus (275 MPa, p ≥ 0.114) and hysteresis (20%, p ≥ 0.553) were unaffected by elastase digestion, but stress decreased significantly after treatment (up to 2 MPa, p ≤ 0.049). Elastin degradation had no effect on failure properties, but tissue lengthened under the same pre-stress. Stiffness in the linear region was unaffected by elastase digestion, suggesting that enzyme treatment did not disrupt collagen. These results demonstrate that elastin primarily functions in the toe region of the stress-strain curve, yet contributes load support in the linear region. The increase in length after elastase digestion suggests that elastin may pre-stress and stabilize collagen crimp in ligaments.
Copyright © 2013 Orthopaedic Research Society.

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Year:  2013        PMID: 23553827      PMCID: PMC4112956          DOI: 10.1002/jor.22352

Source DB:  PubMed          Journal:  J Orthop Res        ISSN: 0736-0266            Impact factor:   3.494


  29 in total

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Authors:  S E Greenwald; J E Moore; A Rachev; T P Kane; J J Meister
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Review 6.  Biochemistry of the elastic fibers in normal connective tissues and its alterations in diseases.

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10.  Effect of dermatan sulfate glycosaminoglycans on the quasi-static material properties of the human medial collateral ligament.

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  30 in total

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2.  Micromechanical poroelastic finite element and shear-lag models of tendon predict large strain dependent Poisson's ratios and fluid expulsion under tensile loading.

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8.  Functionally Distinct Tendons From Elastin Haploinsufficient Mice Exhibit Mild Stiffening and Tendon-Specific Structural Alteration.

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Review 9.  Elastic fibers in orthopedics: Form and function in tendons and ligaments, clinical implications, and future directions.

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10.  Effects of elastase digestion on the murine vaginal wall biaxial mechanical response.

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