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Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring

Hydrogels have a wide range of applications in tissue engineering, drug delivery, device fabrication for biological studies and stretchable electronics. For biomedical applications, natural polymeric hydrogels have general advantages such as biodegradability and non-toxic by products as well as bioc...

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Autores principales: Panwar, Amit, Sk, Md Moniruzzaman, Lee, Bae Hoon, Tan, Lay Poh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8982264/
https://www.ncbi.nlm.nih.gov/pubmed/35424739
http://dx.doi.org/10.1039/d1ra09084d
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author Panwar, Amit
Sk, Md Moniruzzaman
Lee, Bae Hoon
Tan, Lay Poh
author_facet Panwar, Amit
Sk, Md Moniruzzaman
Lee, Bae Hoon
Tan, Lay Poh
author_sort Panwar, Amit
collection PubMed
description Hydrogels have a wide range of applications in tissue engineering, drug delivery, device fabrication for biological studies and stretchable electronics. For biomedical applications, natural polymeric hydrogels have general advantages such as biodegradability and non-toxic by products as well as biocompatibility. However, applications of nature derived hydrogels have been severely limited by their poor mechanical properties. For example, most of the protein derived hydrogels do not exhibit high stretchability like methacrylated gelatin hydrogel has ∼11% failure strain when stretched. Moreover, protein derived elastomeric hydrogels that are fabricated from low molecular weight synthetic peptides require a laborious process of synthesis and purification. Biopolymers like gelatin, produced in bulk for pharma and the food industry can provide an alternative for the development of elastomeric hydrogels. Here, we report the synthesis of ureidopyrimidinone (Upy) functionalized gelatin and its fabrication into soft elastomeric hydrogels through supramolecular interactions that could exhibit high failure strain (318.73 ± 44.35%). The hydrogels were fabricated through a novel method involving co-solvent optimization and structural transformation with 70% water content. It is anticipated that the hydrogel fabrication method involves the formation of hydrophobic cores of ureidopyrimidinone groups inside the hydrogel which introduced elastomeric properties to the resulting hydrogel.
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spelling pubmed-89822642022-04-13 Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring Panwar, Amit Sk, Md Moniruzzaman Lee, Bae Hoon Tan, Lay Poh RSC Adv Chemistry Hydrogels have a wide range of applications in tissue engineering, drug delivery, device fabrication for biological studies and stretchable electronics. For biomedical applications, natural polymeric hydrogels have general advantages such as biodegradability and non-toxic by products as well as biocompatibility. However, applications of nature derived hydrogels have been severely limited by their poor mechanical properties. For example, most of the protein derived hydrogels do not exhibit high stretchability like methacrylated gelatin hydrogel has ∼11% failure strain when stretched. Moreover, protein derived elastomeric hydrogels that are fabricated from low molecular weight synthetic peptides require a laborious process of synthesis and purification. Biopolymers like gelatin, produced in bulk for pharma and the food industry can provide an alternative for the development of elastomeric hydrogels. Here, we report the synthesis of ureidopyrimidinone (Upy) functionalized gelatin and its fabrication into soft elastomeric hydrogels through supramolecular interactions that could exhibit high failure strain (318.73 ± 44.35%). The hydrogels were fabricated through a novel method involving co-solvent optimization and structural transformation with 70% water content. It is anticipated that the hydrogel fabrication method involves the formation of hydrophobic cores of ureidopyrimidinone groups inside the hydrogel which introduced elastomeric properties to the resulting hydrogel. The Royal Society of Chemistry 2022-03-10 /pmc/articles/PMC8982264/ /pubmed/35424739 http://dx.doi.org/10.1039/d1ra09084d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Panwar, Amit
Sk, Md Moniruzzaman
Lee, Bae Hoon
Tan, Lay Poh
Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
title Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
title_full Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
title_fullStr Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
title_full_unstemmed Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
title_short Synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
title_sort synthesis and fabrication of gelatin-based elastomeric hydrogels through cosolvent-induced polymer restructuring
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8982264/
https://www.ncbi.nlm.nih.gov/pubmed/35424739
http://dx.doi.org/10.1039/d1ra09084d
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AT leebaehoon synthesisandfabricationofgelatinbasedelastomerichydrogelsthroughcosolventinducedpolymerrestructuring
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