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Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation

[Image: see text] We present the synthesis of nylon-12 scaffolds by 3D printing and demonstrate their versatility as matrices for cell growth, differentiation, and biomineral formation. We demonstrate that the porous nature of the printed parts makes them ideal for the direct incorporation of prefor...

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Autores principales: Jackson, Richard J., Patrick, P. Stephen, Page, Kristopher, Powell, Michael J., Lythgoe, Mark F., Miodownik, Mark A., Parkin, Ivan P., Carmalt, Claire J., Kalber, Tammy L., Bear, Joseph C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5928486/
https://www.ncbi.nlm.nih.gov/pubmed/29732454
http://dx.doi.org/10.1021/acsomega.8b00219
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author Jackson, Richard J.
Patrick, P. Stephen
Page, Kristopher
Powell, Michael J.
Lythgoe, Mark F.
Miodownik, Mark A.
Parkin, Ivan P.
Carmalt, Claire J.
Kalber, Tammy L.
Bear, Joseph C.
author_facet Jackson, Richard J.
Patrick, P. Stephen
Page, Kristopher
Powell, Michael J.
Lythgoe, Mark F.
Miodownik, Mark A.
Parkin, Ivan P.
Carmalt, Claire J.
Kalber, Tammy L.
Bear, Joseph C.
author_sort Jackson, Richard J.
collection PubMed
description [Image: see text] We present the synthesis of nylon-12 scaffolds by 3D printing and demonstrate their versatility as matrices for cell growth, differentiation, and biomineral formation. We demonstrate that the porous nature of the printed parts makes them ideal for the direct incorporation of preformed nanomaterials or material precursors, leading to nanocomposites with very different properties and environments for cell growth. Additives such as those derived from sources such as tetraethyl orthosilicate applied at a low temperature promote successful cell growth, due partly to the high surface area of the porous matrix. The incorporation of presynthesized iron oxide nanoparticles led to a material that showed rapid heating in response to an applied ac magnetic field, an excellent property for use in gene expression and, with further improvement, chemical-free sterilization. These methods also avoid changing polymer feedstocks and contaminating or even damaging commonly used selective laser sintering printers. The chemically treated 3D printed matrices presented herein have great potential for use in addressing current issues surrounding bone grafting, implants, and skeletal repair, and a wide variety of possible incorporated material combinations could impact many other areas.
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spelling pubmed-59284862018-05-02 Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation Jackson, Richard J. Patrick, P. Stephen Page, Kristopher Powell, Michael J. Lythgoe, Mark F. Miodownik, Mark A. Parkin, Ivan P. Carmalt, Claire J. Kalber, Tammy L. Bear, Joseph C. ACS Omega [Image: see text] We present the synthesis of nylon-12 scaffolds by 3D printing and demonstrate their versatility as matrices for cell growth, differentiation, and biomineral formation. We demonstrate that the porous nature of the printed parts makes them ideal for the direct incorporation of preformed nanomaterials or material precursors, leading to nanocomposites with very different properties and environments for cell growth. Additives such as those derived from sources such as tetraethyl orthosilicate applied at a low temperature promote successful cell growth, due partly to the high surface area of the porous matrix. The incorporation of presynthesized iron oxide nanoparticles led to a material that showed rapid heating in response to an applied ac magnetic field, an excellent property for use in gene expression and, with further improvement, chemical-free sterilization. These methods also avoid changing polymer feedstocks and contaminating or even damaging commonly used selective laser sintering printers. The chemically treated 3D printed matrices presented herein have great potential for use in addressing current issues surrounding bone grafting, implants, and skeletal repair, and a wide variety of possible incorporated material combinations could impact many other areas. American Chemical Society 2018-04-19 /pmc/articles/PMC5928486/ /pubmed/29732454 http://dx.doi.org/10.1021/acsomega.8b00219 Text en Copyright © 2018 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Jackson, Richard J.
Patrick, P. Stephen
Page, Kristopher
Powell, Michael J.
Lythgoe, Mark F.
Miodownik, Mark A.
Parkin, Ivan P.
Carmalt, Claire J.
Kalber, Tammy L.
Bear, Joseph C.
Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation
title Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation
title_full Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation
title_fullStr Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation
title_full_unstemmed Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation
title_short Chemically Treated 3D Printed Polymer Scaffolds for Biomineral Formation
title_sort chemically treated 3d printed polymer scaffolds for biomineral formation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5928486/
https://www.ncbi.nlm.nih.gov/pubmed/29732454
http://dx.doi.org/10.1021/acsomega.8b00219
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