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Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality

Mineralisation of fibrillar collagen with biomimetic process-directing agents has enabled scientists to gain insight into the potential mechanisms involved in intrafibrillar mineralisation. Here, by using polycation- and polyanion-directed intrafibrillar mineralisation, we challenge the popular para...

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Autores principales: Niu, Li-na, Jee, Sang Eun, Jiao, Kai, Tonggu, Lige, Li, Mo, Wang, Liguo, Yang, Yao-dong, Bian, Ji-hong, Breschi, Lorenzo, Jang, Seung Soon, Chen, Ji-hua, Pashley, David H., Tay, Franklin R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5321866/
https://www.ncbi.nlm.nih.gov/pubmed/27820813
http://dx.doi.org/10.1038/nmat4789
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author Niu, Li-na
Jee, Sang Eun
Jiao, Kai
Tonggu, Lige
Li, Mo
Wang, Liguo
Yang, Yao-dong
Bian, Ji-hong
Breschi, Lorenzo
Jang, Seung Soon
Chen, Ji-hua
Pashley, David H.
Tay, Franklin R.
author_facet Niu, Li-na
Jee, Sang Eun
Jiao, Kai
Tonggu, Lige
Li, Mo
Wang, Liguo
Yang, Yao-dong
Bian, Ji-hong
Breschi, Lorenzo
Jang, Seung Soon
Chen, Ji-hua
Pashley, David H.
Tay, Franklin R.
author_sort Niu, Li-na
collection PubMed
description Mineralisation of fibrillar collagen with biomimetic process-directing agents has enabled scientists to gain insight into the potential mechanisms involved in intrafibrillar mineralisation. Here, by using polycation- and polyanion-directed intrafibrillar mineralisation, we challenge the popular paradigm that electrostatic attraction is solely responsible for polyelectrolyte-directed intrafibrillar mineralisation. Because there is no difference when a polycationic or a polyanionic electrolyte is used to direct collagen mineralisation, we argue that additional types of long-range non-electrostatic interactions are responsible for intrafibrillar mineralisation. Molecular dynamics simulations of collagen structures in the presence of extrafibrillar polyelectrolytes show that the outward movement of ions and intrafibrillar water through the collagen surface occurs irrespective of the charges of polyelectrolytes, resulting in the experimentally verifiable contraction of the collagen structures. The need to balance electroneutrality and osmotic equilibrium simultaneously to establish Gibbs-Donnan equilibrium in a polyelectrolyte-directed mineralisation system establishes a new model for collagen intrafibrillar mineralisation that supplements existing collagen mineralisation mechanisms.
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spelling pubmed-53218662017-05-07 Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality Niu, Li-na Jee, Sang Eun Jiao, Kai Tonggu, Lige Li, Mo Wang, Liguo Yang, Yao-dong Bian, Ji-hong Breschi, Lorenzo Jang, Seung Soon Chen, Ji-hua Pashley, David H. Tay, Franklin R. Nat Mater Article Mineralisation of fibrillar collagen with biomimetic process-directing agents has enabled scientists to gain insight into the potential mechanisms involved in intrafibrillar mineralisation. Here, by using polycation- and polyanion-directed intrafibrillar mineralisation, we challenge the popular paradigm that electrostatic attraction is solely responsible for polyelectrolyte-directed intrafibrillar mineralisation. Because there is no difference when a polycationic or a polyanionic electrolyte is used to direct collagen mineralisation, we argue that additional types of long-range non-electrostatic interactions are responsible for intrafibrillar mineralisation. Molecular dynamics simulations of collagen structures in the presence of extrafibrillar polyelectrolytes show that the outward movement of ions and intrafibrillar water through the collagen surface occurs irrespective of the charges of polyelectrolytes, resulting in the experimentally verifiable contraction of the collagen structures. The need to balance electroneutrality and osmotic equilibrium simultaneously to establish Gibbs-Donnan equilibrium in a polyelectrolyte-directed mineralisation system establishes a new model for collagen intrafibrillar mineralisation that supplements existing collagen mineralisation mechanisms. 2016-11-07 2017-03 /pmc/articles/PMC5321866/ /pubmed/27820813 http://dx.doi.org/10.1038/nmat4789 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms Reprints and permissions information is available at http://npg.nature.com/reprintsandpermissions.
spellingShingle Article
Niu, Li-na
Jee, Sang Eun
Jiao, Kai
Tonggu, Lige
Li, Mo
Wang, Liguo
Yang, Yao-dong
Bian, Ji-hong
Breschi, Lorenzo
Jang, Seung Soon
Chen, Ji-hua
Pashley, David H.
Tay, Franklin R.
Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
title Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
title_full Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
title_fullStr Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
title_full_unstemmed Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
title_short Collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
title_sort collagen intrafibrillar mineralisation as a result of the balance between osmotic equilibrium and electroneutrality
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5321866/
https://www.ncbi.nlm.nih.gov/pubmed/27820813
http://dx.doi.org/10.1038/nmat4789
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