Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications

Hydrogel with chemical modification has been used for 3D printing in the biomedical field of cell and tissue-based regeneration because it provides a good cellular microenvironment and mechanical supportive ability. As a scaffold and a matrix, hydrogel itself has to be modified chemically and physic...

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Main Authors: Heesun Hong, Ok Joo Lee, Young Jin Lee, Ji Seung Lee, Olatunji Ajiteru, Hanna Lee, Ye Ji Suh, Md Tipu Sultan, Soon Hee Kim, Chan Hum Park
Format: Article
Language:English
Published: MDPI AG 2021-12-01
Series:Biomolecules
Subjects:
Online Access:https://www.mdpi.com/2218-273X/11/1/35
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spelling doaj-b98a9121a73e475b9585b943369af9202020-12-30T00:05:46ZengMDPI AGBiomolecules2218-273X2021-12-0111353510.3390/biom11010035Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical ApplicationsHeesun Hong0Ok Joo Lee1Young Jin Lee2Ji Seung Lee3Olatunji Ajiteru4Hanna Lee5Ye Ji Suh6Md Tipu Sultan7Soon Hee Kim8Chan Hum Park9Nano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaNano-Bio Regenrative Medical Institute, College of Medicine, Hallym University, Chuncheon 24252, KoreaHydrogel with chemical modification has been used for 3D printing in the biomedical field of cell and tissue-based regeneration because it provides a good cellular microenvironment and mechanical supportive ability. As a scaffold and a matrix, hydrogel itself has to be modified chemically and physically to form a β-sheet crosslinking structure for the strength of the biomaterials. These chemical modifications could affect the biological damage done to encapsulated cells or surrounding tissues due to unreacted chemical residues. Biological assessment, including assessment of the cytocompatibility of hydrogel in clinical trials, must involve testing with cytotoxicity, irritation, and sensitization. Here, we modified silk fibroin and glycidyl methacrylate (Silk-GMA) and evaluated the physical characterizations, residual chemical detection, and the biological effect of residual GMA depending on dialysis periods. Silk-GMA depending on each dialysis period had a typical β-sheet structure in the characterization analysis and residual GMA decreased from dialysis day 1. Moreover, cell proliferation and viability rate gradually increased; additionally, necrotic and apoptotic cells decreased from dialysis day 2. These results indicate that the dialysis periods during chemical modification of natural polymer are important for removing unreacted chemical residues and for the potential application of the manufacturing standardization for chemically modified hydrogel for the clinical transplantation for tissue engineering and biomedical applications.https://www.mdpi.com/2218-273X/11/1/35silk fibroinchemical modificationglycidyl methacrylatedialysis periodscytocompatiblitytissue engineering
collection DOAJ
language English
format Article
sources DOAJ
author Heesun Hong
Ok Joo Lee
Young Jin Lee
Ji Seung Lee
Olatunji Ajiteru
Hanna Lee
Ye Ji Suh
Md Tipu Sultan
Soon Hee Kim
Chan Hum Park
spellingShingle Heesun Hong
Ok Joo Lee
Young Jin Lee
Ji Seung Lee
Olatunji Ajiteru
Hanna Lee
Ye Ji Suh
Md Tipu Sultan
Soon Hee Kim
Chan Hum Park
Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications
Biomolecules
silk fibroin
chemical modification
glycidyl methacrylate
dialysis periods
cytocompatiblity
tissue engineering
author_facet Heesun Hong
Ok Joo Lee
Young Jin Lee
Ji Seung Lee
Olatunji Ajiteru
Hanna Lee
Ye Ji Suh
Md Tipu Sultan
Soon Hee Kim
Chan Hum Park
author_sort Heesun Hong
title Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications
title_short Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications
title_full Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications
title_fullStr Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications
title_full_unstemmed Cytocompatibility of Modified Silk Fibroin with Glycidyl Methacrylate for Tissue Engineering and Biomedical Applications
title_sort cytocompatibility of modified silk fibroin with glycidyl methacrylate for tissue engineering and biomedical applications
publisher MDPI AG
series Biomolecules
issn 2218-273X
publishDate 2021-12-01
description Hydrogel with chemical modification has been used for 3D printing in the biomedical field of cell and tissue-based regeneration because it provides a good cellular microenvironment and mechanical supportive ability. As a scaffold and a matrix, hydrogel itself has to be modified chemically and physically to form a β-sheet crosslinking structure for the strength of the biomaterials. These chemical modifications could affect the biological damage done to encapsulated cells or surrounding tissues due to unreacted chemical residues. Biological assessment, including assessment of the cytocompatibility of hydrogel in clinical trials, must involve testing with cytotoxicity, irritation, and sensitization. Here, we modified silk fibroin and glycidyl methacrylate (Silk-GMA) and evaluated the physical characterizations, residual chemical detection, and the biological effect of residual GMA depending on dialysis periods. Silk-GMA depending on each dialysis period had a typical β-sheet structure in the characterization analysis and residual GMA decreased from dialysis day 1. Moreover, cell proliferation and viability rate gradually increased; additionally, necrotic and apoptotic cells decreased from dialysis day 2. These results indicate that the dialysis periods during chemical modification of natural polymer are important for removing unreacted chemical residues and for the potential application of the manufacturing standardization for chemically modified hydrogel for the clinical transplantation for tissue engineering and biomedical applications.
topic silk fibroin
chemical modification
glycidyl methacrylate
dialysis periods
cytocompatiblity
tissue engineering
url https://www.mdpi.com/2218-273X/11/1/35
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