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Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes

Novel fabrication techniques based on photopolymerization enable the preparation of complex multi-material constructs for biomedical applications. This requires an understanding of the influence of the used reaction components on the properties of the generated copolymers. The identification of fund...

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Autores principales: Rekowska, Natalia, Huling, Jennifer, Brietzke, Andreas, Arbeiter, Daniela, Eickner, Thomas, Konasch, Jan, Riess, Alexander, Mau, Robert, Seitz, Hermann, Grabow, Niels, Teske, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8951438/
https://www.ncbi.nlm.nih.gov/pubmed/35336002
http://dx.doi.org/10.3390/pharmaceutics14030628
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author Rekowska, Natalia
Huling, Jennifer
Brietzke, Andreas
Arbeiter, Daniela
Eickner, Thomas
Konasch, Jan
Riess, Alexander
Mau, Robert
Seitz, Hermann
Grabow, Niels
Teske, Michael
author_facet Rekowska, Natalia
Huling, Jennifer
Brietzke, Andreas
Arbeiter, Daniela
Eickner, Thomas
Konasch, Jan
Riess, Alexander
Mau, Robert
Seitz, Hermann
Grabow, Niels
Teske, Michael
author_sort Rekowska, Natalia
collection PubMed
description Novel fabrication techniques based on photopolymerization enable the preparation of complex multi-material constructs for biomedical applications. This requires an understanding of the influence of the used reaction components on the properties of the generated copolymers. The identification of fundamental characteristics of these copolymers is necessary to evaluate their potential for biomaterial applications. Additionally, knowledge of the properties of the starting materials enables subsequent tailoring of the biomaterials to meet individual implantation needs. In our study, we have analyzed the biological, chemical, mechanical and thermal properties of photopolymerized poly(ethyleneglycol) diacrylate (PEGDA) and specific copolymers with different photoinitiator (PI) concentrations before and after applying a post treatment washing process. As comonomers, 1,3-butanediol diacrylate, pentaerythritol triacrylate and pentaerythritol tetraacrylate were used. The in vitro studies confirm the biocompatibility of all investigated copolymers. Uniaxial tensile tests show significantly lower tensile strength (82% decrease) and elongation at break (76% decrease) values for washed samples. Altered tensile strength is also observed for different PI concentrations: on average, 6.2 MPa for 1.25% PI and 3.1 MPa for 0.5% PI. The addition of comonomers lowers elongation at break on average by 45%. Moreover, our observations show glass transition temperatures (T(g)) ranging from 27 °C to 56 °C, which significantly increase with higher comonomer content. These results confirm the ability to generate biocompatible PEGDA copolymers with specific thermal and mechanical properties. These can be considered as resins for various additive manufacturing-based applications to obtain personalized medical devices, such as drug delivery systems (DDS). Therefore, our study has advanced the understanding of PEGDA multi-materials and will contribute to the future development of tools ensuring safe and effective individual therapy for patients.
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spelling pubmed-89514382022-03-26 Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes Rekowska, Natalia Huling, Jennifer Brietzke, Andreas Arbeiter, Daniela Eickner, Thomas Konasch, Jan Riess, Alexander Mau, Robert Seitz, Hermann Grabow, Niels Teske, Michael Pharmaceutics Article Novel fabrication techniques based on photopolymerization enable the preparation of complex multi-material constructs for biomedical applications. This requires an understanding of the influence of the used reaction components on the properties of the generated copolymers. The identification of fundamental characteristics of these copolymers is necessary to evaluate their potential for biomaterial applications. Additionally, knowledge of the properties of the starting materials enables subsequent tailoring of the biomaterials to meet individual implantation needs. In our study, we have analyzed the biological, chemical, mechanical and thermal properties of photopolymerized poly(ethyleneglycol) diacrylate (PEGDA) and specific copolymers with different photoinitiator (PI) concentrations before and after applying a post treatment washing process. As comonomers, 1,3-butanediol diacrylate, pentaerythritol triacrylate and pentaerythritol tetraacrylate were used. The in vitro studies confirm the biocompatibility of all investigated copolymers. Uniaxial tensile tests show significantly lower tensile strength (82% decrease) and elongation at break (76% decrease) values for washed samples. Altered tensile strength is also observed for different PI concentrations: on average, 6.2 MPa for 1.25% PI and 3.1 MPa for 0.5% PI. The addition of comonomers lowers elongation at break on average by 45%. Moreover, our observations show glass transition temperatures (T(g)) ranging from 27 °C to 56 °C, which significantly increase with higher comonomer content. These results confirm the ability to generate biocompatible PEGDA copolymers with specific thermal and mechanical properties. These can be considered as resins for various additive manufacturing-based applications to obtain personalized medical devices, such as drug delivery systems (DDS). Therefore, our study has advanced the understanding of PEGDA multi-materials and will contribute to the future development of tools ensuring safe and effective individual therapy for patients. MDPI 2022-03-12 /pmc/articles/PMC8951438/ /pubmed/35336002 http://dx.doi.org/10.3390/pharmaceutics14030628 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rekowska, Natalia
Huling, Jennifer
Brietzke, Andreas
Arbeiter, Daniela
Eickner, Thomas
Konasch, Jan
Riess, Alexander
Mau, Robert
Seitz, Hermann
Grabow, Niels
Teske, Michael
Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes
title Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes
title_full Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes
title_fullStr Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes
title_full_unstemmed Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes
title_short Thermal, Mechanical and Biocompatibility Analyses of Photochemically Polymerized PEGDA(250) for Photopolymerization-Based Manufacturing Processes
title_sort thermal, mechanical and biocompatibility analyses of photochemically polymerized pegda(250) for photopolymerization-based manufacturing processes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8951438/
https://www.ncbi.nlm.nih.gov/pubmed/35336002
http://dx.doi.org/10.3390/pharmaceutics14030628
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