An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.

Computational models can provide detailed information about molecular conformations and interactions in solution, which is currently inaccessible by other means in many cases. Here we describe an efficient and precise coarse-grained model for long polysaccharides in aqueous solution at different phy...

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Main Authors: Levan Tsereteli, Andrea Grafmüller
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5521771?pdf=render
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spelling doaj-c58a57f29cf34130ba2c2b56b7f9975a2020-11-24T21:50:20ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01127e018093810.1371/journal.pone.0180938An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.Levan TsereteliAndrea GrafmüllerComputational models can provide detailed information about molecular conformations and interactions in solution, which is currently inaccessible by other means in many cases. Here we describe an efficient and precise coarse-grained model for long polysaccharides in aqueous solution at different physico-chemical conditions such as pH and ionic strength. The Model is carefully constructed based on all-atom simulations of small saccharides and metadynamics sampling of the dihedral angles in the glycosidic links, which represent the most flexible degrees of freedom of the polysaccharides. The model is validated against experimental data for Chitosan molecules in solution with various degree of deacetylation, and is shown to closely reproduce the available experimental data. For long polymers, subtle differences of the free energy maps of the glycosidic links are found to significantly affect the measurable polymer properties. Therefore, for titratable monomers the free energy maps of the corresponding links are updated according to the current charge of the monomers. We then characterize the microscopic and mesoscopic structural properties of large chitosan polysaccharides in solution for a wide range of solvent pH and ionic strength, and investigate the effect of polymer length and degree and pattern of deacetylation on the polymer properties.http://europepmc.org/articles/PMC5521771?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Levan Tsereteli
Andrea Grafmüller
spellingShingle Levan Tsereteli
Andrea Grafmüller
An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
PLoS ONE
author_facet Levan Tsereteli
Andrea Grafmüller
author_sort Levan Tsereteli
title An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
title_short An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
title_full An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
title_fullStr An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
title_full_unstemmed An accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
title_sort accurate coarse-grained model for chitosan polysaccharides in aqueous solution.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Computational models can provide detailed information about molecular conformations and interactions in solution, which is currently inaccessible by other means in many cases. Here we describe an efficient and precise coarse-grained model for long polysaccharides in aqueous solution at different physico-chemical conditions such as pH and ionic strength. The Model is carefully constructed based on all-atom simulations of small saccharides and metadynamics sampling of the dihedral angles in the glycosidic links, which represent the most flexible degrees of freedom of the polysaccharides. The model is validated against experimental data for Chitosan molecules in solution with various degree of deacetylation, and is shown to closely reproduce the available experimental data. For long polymers, subtle differences of the free energy maps of the glycosidic links are found to significantly affect the measurable polymer properties. Therefore, for titratable monomers the free energy maps of the corresponding links are updated according to the current charge of the monomers. We then characterize the microscopic and mesoscopic structural properties of large chitosan polysaccharides in solution for a wide range of solvent pH and ionic strength, and investigate the effect of polymer length and degree and pattern of deacetylation on the polymer properties.
url http://europepmc.org/articles/PMC5521771?pdf=render
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