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Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding

Microbial production of iron (oxyhydr)oxides on polysaccharide rich biopolymers occurs on such a vast scale that it impacts the global iron cycle and has been responsible for major biogeochemical events. Yet the physiochemical controls these biopolymers exert on iron (oxyhydr)oxide formation are poo...

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Autores principales: Sand, K. K., Jelavić, S., Dobberschütz, S., Ashby, P. D., Marshall, M. J., Dideriksen, K., Stipp, S. L. S., Kerisit, S. N., Friddle, R. W., DeYoreo, J. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417541/
https://www.ncbi.nlm.nih.gov/pubmed/36134299
http://dx.doi.org/10.1039/d0na00138d
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author Sand, K. K.
Jelavić, S.
Dobberschütz, S.
Ashby, P. D.
Marshall, M. J.
Dideriksen, K.
Stipp, S. L. S.
Kerisit, S. N.
Friddle, R. W.
DeYoreo, J. J.
author_facet Sand, K. K.
Jelavić, S.
Dobberschütz, S.
Ashby, P. D.
Marshall, M. J.
Dideriksen, K.
Stipp, S. L. S.
Kerisit, S. N.
Friddle, R. W.
DeYoreo, J. J.
author_sort Sand, K. K.
collection PubMed
description Microbial production of iron (oxyhydr)oxides on polysaccharide rich biopolymers occurs on such a vast scale that it impacts the global iron cycle and has been responsible for major biogeochemical events. Yet the physiochemical controls these biopolymers exert on iron (oxyhydr)oxide formation are poorly understood. Here we used dynamic force spectroscopy to directly probe binding between complex, model and natural microbial polysaccharides and common iron (oxyhydr)oxides. Applying nucleation theory to our results demonstrates that if there is a strong attractive interaction between biopolymers and iron (oxyhydr)oxides, the biopolymers decrease the nucleation barriers, thus promoting mineral nucleation. These results are also supported by nucleation studies and density functional theory. Spectroscopic and thermogravimetric data provide insight into the subsequent growth dynamics and show that the degree and strength of water association with the polymers can explain the influence on iron (oxyhydr)oxide transformation rates. Combined, our results provide a mechanistic basis for understanding how polymer–mineral–water interactions alter iron (oxyhydr)oxides nucleation and growth dynamics and pave the way for an improved understanding of the consequences of polymer induced mineralization in natural systems.
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spelling pubmed-94175412022-09-20 Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding Sand, K. K. Jelavić, S. Dobberschütz, S. Ashby, P. D. Marshall, M. J. Dideriksen, K. Stipp, S. L. S. Kerisit, S. N. Friddle, R. W. DeYoreo, J. J. Nanoscale Adv Chemistry Microbial production of iron (oxyhydr)oxides on polysaccharide rich biopolymers occurs on such a vast scale that it impacts the global iron cycle and has been responsible for major biogeochemical events. Yet the physiochemical controls these biopolymers exert on iron (oxyhydr)oxide formation are poorly understood. Here we used dynamic force spectroscopy to directly probe binding between complex, model and natural microbial polysaccharides and common iron (oxyhydr)oxides. Applying nucleation theory to our results demonstrates that if there is a strong attractive interaction between biopolymers and iron (oxyhydr)oxides, the biopolymers decrease the nucleation barriers, thus promoting mineral nucleation. These results are also supported by nucleation studies and density functional theory. Spectroscopic and thermogravimetric data provide insight into the subsequent growth dynamics and show that the degree and strength of water association with the polymers can explain the influence on iron (oxyhydr)oxide transformation rates. Combined, our results provide a mechanistic basis for understanding how polymer–mineral–water interactions alter iron (oxyhydr)oxides nucleation and growth dynamics and pave the way for an improved understanding of the consequences of polymer induced mineralization in natural systems. RSC 2020-06-15 /pmc/articles/PMC9417541/ /pubmed/36134299 http://dx.doi.org/10.1039/d0na00138d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sand, K. K.
Jelavić, S.
Dobberschütz, S.
Ashby, P. D.
Marshall, M. J.
Dideriksen, K.
Stipp, S. L. S.
Kerisit, S. N.
Friddle, R. W.
DeYoreo, J. J.
Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
title Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
title_full Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
title_fullStr Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
title_full_unstemmed Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
title_short Mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
title_sort mechanistic insight into biopolymer induced iron oxide mineralization through quantification of molecular bonding
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417541/
https://www.ncbi.nlm.nih.gov/pubmed/36134299
http://dx.doi.org/10.1039/d0na00138d
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