Literature DB >> 22180691

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

M F Hadi1, E A Sander, J W Ruberti, V H Barocas.   

Abstract

Recent work has demonstrated that enzymatic degradation of collagen fibers exhibits strain-dependent kinetics. Conceptualizing how the strain dependence affects remodeling of collagenous tissues is vital to our understanding of collagen management in native and bioengineered tissues. As a first step towards this goal, the current study puts forward a multiscale model for enzymatic degradation and remodeling of collagen networks for two sample geometries we routinely use in experiments as model tissues. The multiscale model, driven by microstructural data from an enzymatic decay experiment, includes an exponential strain-dependent kinetic relation for degradation and constant growth. For a dogbone sample under uniaxial load, the model predicted that the distribution of fiber diameters would spread over the course of degradation because of variation in individual fiber load. In a cross-shaped sample, the central region, which experiences smaller, more isotropic loads, showed more decay and less spread in fiber diameter compared to the arms. There was also a slight shift in average orientation in different regions of the cruciform.

Entities:  

Year:  2012        PMID: 22180691      PMCID: PMC3237686          DOI: 10.1016/j.mechmat.2011.07.003

Source DB:  PubMed          Journal:  Mech Mater        ISSN: 0167-6636            Impact factor:   3.266


  31 in total

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5.  Mechanical strain enhances survivability of collagen micronetworks in the presence of collagenase: implications for load-bearing matrix growth and stability.

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Authors:  Spencer P Lake; Victor H Barocas
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Authors:  J W Madden; E E Peacock
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Review 8.  Matrix metalloproteinases in vascular remodeling and atherogenesis: the good, the bad, and the ugly.

Authors:  Zorina S Galis; Jaikirshan J Khatri
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9.  Remodelling of the angular collagen fiber distribution in cardiovascular tissues.

Authors:  Niels J B Driessen; Martijn A J Cox; Carlijn V C Bouten; Frank P T Baaijens
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10.  A mathematical model of wound healing and subsequent scarring.

Authors:  B D Cumming; D L S McElwain; Z Upton
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  17 in total

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Authors:  Arjun S Adhikari; Emerson Glassey; Alexander R Dunn
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2.  Micromechanical Modeling Study of Mechanical Inhibition of Enzymatic Degradation of Collagen Tissues.

Authors:  Theresa K Tonge; Jeffrey W Ruberti; Thao D Nguyen
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3.  Cell-matrix interaction during strain-dependent remodelling of simulated collagen networks.

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4.  Multiscale mechanical simulations of cell compacted collagen gels.

Authors:  Maziar Aghvami; V H Barocas; E A Sander
Journal:  J Biomech Eng       Date:  2013-07-01       Impact factor: 2.097

5.  Remodeling of fibrous extracellular matrices by contractile cells: predictions from discrete fiber network simulations.

Authors:  A S Abhilash; Brendon M Baker; Britta Trappmann; Christopher S Chen; Vivek B Shenoy
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6.  Concentration dependent effects of fibroblast-like synoviocytes on collagen gel multiscale biomechanics & neuronal signaling: Implications for modeling human ligamentous tissues.

Authors:  Meagan Ita; Beth A Winkelstein
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7.  Fiber Network Models Predict Enhanced Cell Mechanosensing on Fibrous Gels.

Authors:  Maziar Aghvami; Kristen L Billiar; Edward A Sander
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8.  Mathematical model of chronic pancreatitis.

Authors:  Wenrui Hao; Hannah M Komar; Phil A Hart; Darwin L Conwell; Gregory B Lesinski; Avner Friedman
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9.  Scleral permeability varies by mouse strain and is decreased by chronic experimental glaucoma.

Authors:  Mary E Pease; Ericka N Oglesby; Elizabeth Cone-Kimball; Joan L Jefferys; Matthew R Steinhart; Anthony J Kim; Justin Hanes; Harry A Quigley
Journal:  Invest Ophthalmol Vis Sci       Date:  2014-04-21       Impact factor: 4.799

10.  Microscale fiber network alignment affects macroscale failure behavior in simulated collagen tissue analogs.

Authors:  Mohammad F Hadi; Victor H Barocas
Journal:  J Biomech Eng       Date:  2013-02       Impact factor: 2.097

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