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Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model

The collagen molecule, which is the building block of collagen fibrils, is a triple helix of two α1(I) chains and one α2(I) chain. However, in the severe mouse model of osteogenesis imperfecta (OIM), deletion of the COL1A2 gene results in the substitution of the α2(I) chain by one α1(I) chain. As th...

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Autores principales: Andriotis, O. G., Chang, S. W., Vanleene, M., Howarth, P. H., Davies, D. E., Shefelbine, S. J., Buehler, M. J., Thurner, P. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4614505/
https://www.ncbi.nlm.nih.gov/pubmed/26468064
http://dx.doi.org/10.1098/rsif.2015.0701
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author Andriotis, O. G.
Chang, S. W.
Vanleene, M.
Howarth, P. H.
Davies, D. E.
Shefelbine, S. J.
Buehler, M. J.
Thurner, P. J.
author_facet Andriotis, O. G.
Chang, S. W.
Vanleene, M.
Howarth, P. H.
Davies, D. E.
Shefelbine, S. J.
Buehler, M. J.
Thurner, P. J.
author_sort Andriotis, O. G.
collection PubMed
description The collagen molecule, which is the building block of collagen fibrils, is a triple helix of two α1(I) chains and one α2(I) chain. However, in the severe mouse model of osteogenesis imperfecta (OIM), deletion of the COL1A2 gene results in the substitution of the α2(I) chain by one α1(I) chain. As this substitution severely impairs the structure and mechanics of collagen-rich tissues at the tissue and organ level, the main aim of this study was to investigate how the structure and mechanics are altered in OIM collagen fibrils. Comparing results from atomic force microscopy imaging and cantilever-based nanoindentation on collagen fibrils from OIM and wild-type (WT) animals, we found a 33% lower indentation modulus in OIM when air-dried (bound water present) and an almost fivefold higher indentation modulus in OIM collagen fibrils when fully hydrated (bound and unbound water present) in phosphate-buffered saline solution (PBS) compared with WT collagen fibrils. These mechanical changes were accompanied by an impaired swelling upon hydration within PBS. Our experimental and atomistic simulation results show how the structure and mechanics are altered at the individual collagen fibril level as a result of collagen gene mutation in OIM. We envisage that the combination of experimental and modelling approaches could allow mechanical phenotyping at the collagen fibril level of virtually any alteration of collagen structure or chemistry.
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spelling pubmed-46145052015-11-02 Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model Andriotis, O. G. Chang, S. W. Vanleene, M. Howarth, P. H. Davies, D. E. Shefelbine, S. J. Buehler, M. J. Thurner, P. J. J R Soc Interface Research Articles The collagen molecule, which is the building block of collagen fibrils, is a triple helix of two α1(I) chains and one α2(I) chain. However, in the severe mouse model of osteogenesis imperfecta (OIM), deletion of the COL1A2 gene results in the substitution of the α2(I) chain by one α1(I) chain. As this substitution severely impairs the structure and mechanics of collagen-rich tissues at the tissue and organ level, the main aim of this study was to investigate how the structure and mechanics are altered in OIM collagen fibrils. Comparing results from atomic force microscopy imaging and cantilever-based nanoindentation on collagen fibrils from OIM and wild-type (WT) animals, we found a 33% lower indentation modulus in OIM when air-dried (bound water present) and an almost fivefold higher indentation modulus in OIM collagen fibrils when fully hydrated (bound and unbound water present) in phosphate-buffered saline solution (PBS) compared with WT collagen fibrils. These mechanical changes were accompanied by an impaired swelling upon hydration within PBS. Our experimental and atomistic simulation results show how the structure and mechanics are altered at the individual collagen fibril level as a result of collagen gene mutation in OIM. We envisage that the combination of experimental and modelling approaches could allow mechanical phenotyping at the collagen fibril level of virtually any alteration of collagen structure or chemistry. The Royal Society 2015-10-06 /pmc/articles/PMC4614505/ /pubmed/26468064 http://dx.doi.org/10.1098/rsif.2015.0701 Text en © 2015 The Authors. http://creativecommons.org/licenses/by/4.0/ Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Research Articles
Andriotis, O. G.
Chang, S. W.
Vanleene, M.
Howarth, P. H.
Davies, D. E.
Shefelbine, S. J.
Buehler, M. J.
Thurner, P. J.
Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
title Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
title_full Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
title_fullStr Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
title_full_unstemmed Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
title_short Structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
title_sort structure–mechanics relationships of collagen fibrils in the osteogenesis imperfecta mouse model
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4614505/
https://www.ncbi.nlm.nih.gov/pubmed/26468064
http://dx.doi.org/10.1098/rsif.2015.0701
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