Literature DB >> 35027783

Microscale Creep and Stress Relaxation Experiments with Individual Collagen Fibrils.

Fan Yang1, Debashish Das1, Ioannis Chasiotis1.   

Abstract

Nanoscale macromolecular biological structures exhibit time-dependent behavior, yet a quantitative understanding of their time-dependent mechanical behavior remains elusive, largely due to experimental challenges in attaining sufficient spatial and temporal resolution and control of stress or strain in conditions that guarantee their molecular integrity. To address this gap, an experimental methodology was developed to conduct creep and stress relaxation experiments with individual mammalian collagen fibrils. An image-based edge detection method implemented with high magnification optical microscopy and combined with closed-loop proportional-integral-derivative (PID) control was implemented and calibrated to apply constant force or stretch ratio values to individual collagen fibrils via a Microelectromechanical Systems (MEMS) device. This experimental methodology allowed for real-time control of uniaxial tensile stress or strain with 27 nm displacement resolution. The overall experimental system was tuned to apply step inputs with rise times below 0.5 s, less than 2.5% overshoot, and steady-state error less than 0.5%. Three individual collagen fibrils with diameters 101-121 nm were subjected to creep and stress relaxation tests in the range 4-20% engineering strain, under partially hydrated conditions. The collagen fibrils demonstrated non-linear viscoelastic behavior that was described well by the adaptive quasi-linear viscoelastic model. The results of this study demonstrate for the first time that mammalian collagen fibrils, the building blocks of connective tissues, exhibit nonlinear viscoelastic behavior in their partially hydrated state.

Entities:  

Keywords:  Microscale experiments; edge-detection; nonlinear viscoelasticity

Year:  2021        PMID: 35027783      PMCID: PMC8752082          DOI: 10.1016/j.optlaseng.2021.106869

Source DB:  PubMed          Journal:  Opt Lasers Eng        ISSN: 0143-8166            Impact factor:   4.836


  41 in total

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  2 in total

1.  Strain rate induced toughening of individual collagen fibrils.

Authors:  Fan Yang; Debashish Das; Ioannis Chasiotis
Journal:  Appl Phys Lett       Date:  2022-03-18       Impact factor: 3.971

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Journal:  Acta Biomater       Date:  2022-03-05       Impact factor: 10.633

  2 in total

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