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Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures

High internal phase emulsion (HIPE) templating is a well-established method for the generation of polymeric materials with high porosity (>74%) and degree of interconnectivity. The porosity and pore size can be altered by adjusting parameters during emulsification, which affects the properties of...

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Autores principales: Furmidge, Rachel, Jackson, Caitlin E., Velázquez de la Paz, María Fernanda, Workman, Victoria L., Green, Nicola H., Reilly, Gwendolen C., Hearnden, Vanessa, Claeyssens, Frederik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10481965/
https://www.ncbi.nlm.nih.gov/pubmed/37681209
http://dx.doi.org/10.3389/fchem.2023.1236944
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author Furmidge, Rachel
Jackson, Caitlin E.
Velázquez de la Paz, María Fernanda
Workman, Victoria L.
Green, Nicola H.
Reilly, Gwendolen C.
Hearnden, Vanessa
Claeyssens, Frederik
author_facet Furmidge, Rachel
Jackson, Caitlin E.
Velázquez de la Paz, María Fernanda
Workman, Victoria L.
Green, Nicola H.
Reilly, Gwendolen C.
Hearnden, Vanessa
Claeyssens, Frederik
author_sort Furmidge, Rachel
collection PubMed
description High internal phase emulsion (HIPE) templating is a well-established method for the generation of polymeric materials with high porosity (>74%) and degree of interconnectivity. The porosity and pore size can be altered by adjusting parameters during emulsification, which affects the properties of the resulting porous structure. However, there remain challenges for the fabrication of polyHIPEs, including typically small pore sizes (∼20–50 μm) and the use of surfactants, which can limit their use in biological applications. Here, we present the use of gelatin, a natural polymer, during the formation of polyHIPE structures, through the use of two biodegradable polymers, polycaprolactone-methacrylate (PCL-M) and polyglycerol sebacate-methacrylate (PGS-M). When gelatin is used as the internal phase, it is capable of stabilising emulsions without the need for an additional surfactant. Furthermore, by changing the concentration of gelatin within the internal phase, the pore size of the resulting polyHIPE can be tuned. 5% gelatin solution resulted in the largest mean pore size, increasing from 53 μm to 80 μm and 28 μm to 94 µm for PCL-M and PGS-M respectively. In addition, the inclusion of gelatin further increased the mechanical properties of the polyHIPEs and increased the period an emulsion could be stored before polymerisation. Our results demonstrate the potential to use gelatin for the fabrication of surfactant-free polyHIPEs with macroporous structures, with potential applications in tissue engineering, environmental and agricultural industries.
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spelling pubmed-104819652023-09-07 Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures Furmidge, Rachel Jackson, Caitlin E. Velázquez de la Paz, María Fernanda Workman, Victoria L. Green, Nicola H. Reilly, Gwendolen C. Hearnden, Vanessa Claeyssens, Frederik Front Chem Chemistry High internal phase emulsion (HIPE) templating is a well-established method for the generation of polymeric materials with high porosity (>74%) and degree of interconnectivity. The porosity and pore size can be altered by adjusting parameters during emulsification, which affects the properties of the resulting porous structure. However, there remain challenges for the fabrication of polyHIPEs, including typically small pore sizes (∼20–50 μm) and the use of surfactants, which can limit their use in biological applications. Here, we present the use of gelatin, a natural polymer, during the formation of polyHIPE structures, through the use of two biodegradable polymers, polycaprolactone-methacrylate (PCL-M) and polyglycerol sebacate-methacrylate (PGS-M). When gelatin is used as the internal phase, it is capable of stabilising emulsions without the need for an additional surfactant. Furthermore, by changing the concentration of gelatin within the internal phase, the pore size of the resulting polyHIPE can be tuned. 5% gelatin solution resulted in the largest mean pore size, increasing from 53 μm to 80 μm and 28 μm to 94 µm for PCL-M and PGS-M respectively. In addition, the inclusion of gelatin further increased the mechanical properties of the polyHIPEs and increased the period an emulsion could be stored before polymerisation. Our results demonstrate the potential to use gelatin for the fabrication of surfactant-free polyHIPEs with macroporous structures, with potential applications in tissue engineering, environmental and agricultural industries. Frontiers Media S.A. 2023-08-23 /pmc/articles/PMC10481965/ /pubmed/37681209 http://dx.doi.org/10.3389/fchem.2023.1236944 Text en Copyright © 2023 Furmidge, Jackson, Velázquez de la Paz, Workman, Green, Reilly, Hearnden and Claeyssens. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Furmidge, Rachel
Jackson, Caitlin E.
Velázquez de la Paz, María Fernanda
Workman, Victoria L.
Green, Nicola H.
Reilly, Gwendolen C.
Hearnden, Vanessa
Claeyssens, Frederik
Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
title Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
title_full Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
title_fullStr Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
title_full_unstemmed Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
title_short Surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
title_sort surfactant-free gelatin-stabilised biodegradable polymerised high internal phase emulsions with macroporous structures
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10481965/
https://www.ncbi.nlm.nih.gov/pubmed/37681209
http://dx.doi.org/10.3389/fchem.2023.1236944
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