Cargando…

Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds

In recent years, there has been an increasing focus on the application of hydrogels in tissue engineering. The integration of 3D bioprinting technology has expanded the potential applications of hydrogels. However, few commercially available hydrogels used for 3D biological printing exhibit both exc...

Descripción completa

Detalles Bibliográficos
Autores principales: Ling, Zhengyun, Zhao, Jian, Song, Shiyu, Xiao, Shuwei, Wang, Pengchao, An, Ziyan, Fu, Zhouyang, Shao, Jinpeng, Zhang, Zhuang, Fu, Weijun, Song, Shenghan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10290201/
https://www.ncbi.nlm.nih.gov/pubmed/37359730
http://dx.doi.org/10.1093/rb/rbad058
_version_ 1785062442801299456
author Ling, Zhengyun
Zhao, Jian
Song, Shiyu
Xiao, Shuwei
Wang, Pengchao
An, Ziyan
Fu, Zhouyang
Shao, Jinpeng
Zhang, Zhuang
Fu, Weijun
Song, Shenghan
author_facet Ling, Zhengyun
Zhao, Jian
Song, Shiyu
Xiao, Shuwei
Wang, Pengchao
An, Ziyan
Fu, Zhouyang
Shao, Jinpeng
Zhang, Zhuang
Fu, Weijun
Song, Shenghan
author_sort Ling, Zhengyun
collection PubMed
description In recent years, there has been an increasing focus on the application of hydrogels in tissue engineering. The integration of 3D bioprinting technology has expanded the potential applications of hydrogels. However, few commercially available hydrogels used for 3D biological printing exhibit both excellent biocompatibility and mechanical properties. Gelatin methacrylate (GelMA) has good biocompatibility and is widely used in 3D bioprinting. However, its low mechanical properties limit its use as a standalone bioink for 3D bioprinting. In this work, we designed a biomaterial ink composed of GelMA and chitin nanocrystal (ChiNC). We explored fundamental printing properties of composite bioinks, including rheological properties, porosity, equilibrium swelling rate, mechanical properties, biocompatibility, effects on the secretion of angiogenic factors and fidelity of 3D bioprinting. The results showed that adding 1% (w/v) ChiNC to 10% (w/v) GelMA improved the mechanical properties and printability of the GelMA hydrogels, promoted cell adhesion, proliferation and vascularization and enabled the printing of complex 3D scaffolds. This strategy of incorporating ChiNC to enhance the performance of GelMA biomaterials could potentially be applied to other biomaterials, thereby expanding the range of materials available for use. Furthermore, in combination with 3D bioprinting technology, this approach could be leveraged to bioprint scaffolds with complex structures, further broadening the potential applications in tissue engineering.
format Online
Article
Text
id pubmed-10290201
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-102902012023-06-25 Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds Ling, Zhengyun Zhao, Jian Song, Shiyu Xiao, Shuwei Wang, Pengchao An, Ziyan Fu, Zhouyang Shao, Jinpeng Zhang, Zhuang Fu, Weijun Song, Shenghan Regen Biomater Research Article In recent years, there has been an increasing focus on the application of hydrogels in tissue engineering. The integration of 3D bioprinting technology has expanded the potential applications of hydrogels. However, few commercially available hydrogels used for 3D biological printing exhibit both excellent biocompatibility and mechanical properties. Gelatin methacrylate (GelMA) has good biocompatibility and is widely used in 3D bioprinting. However, its low mechanical properties limit its use as a standalone bioink for 3D bioprinting. In this work, we designed a biomaterial ink composed of GelMA and chitin nanocrystal (ChiNC). We explored fundamental printing properties of composite bioinks, including rheological properties, porosity, equilibrium swelling rate, mechanical properties, biocompatibility, effects on the secretion of angiogenic factors and fidelity of 3D bioprinting. The results showed that adding 1% (w/v) ChiNC to 10% (w/v) GelMA improved the mechanical properties and printability of the GelMA hydrogels, promoted cell adhesion, proliferation and vascularization and enabled the printing of complex 3D scaffolds. This strategy of incorporating ChiNC to enhance the performance of GelMA biomaterials could potentially be applied to other biomaterials, thereby expanding the range of materials available for use. Furthermore, in combination with 3D bioprinting technology, this approach could be leveraged to bioprint scaffolds with complex structures, further broadening the potential applications in tissue engineering. Oxford University Press 2023-06-07 /pmc/articles/PMC10290201/ /pubmed/37359730 http://dx.doi.org/10.1093/rb/rbad058 Text en © The Author(s) 2023. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Ling, Zhengyun
Zhao, Jian
Song, Shiyu
Xiao, Shuwei
Wang, Pengchao
An, Ziyan
Fu, Zhouyang
Shao, Jinpeng
Zhang, Zhuang
Fu, Weijun
Song, Shenghan
Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds
title Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds
title_full Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds
title_fullStr Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds
title_full_unstemmed Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds
title_short Chitin nanocrystal-assisted 3D bioprinting of gelatin methacrylate scaffolds
title_sort chitin nanocrystal-assisted 3d bioprinting of gelatin methacrylate scaffolds
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10290201/
https://www.ncbi.nlm.nih.gov/pubmed/37359730
http://dx.doi.org/10.1093/rb/rbad058
work_keys_str_mv AT lingzhengyun chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT zhaojian chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT songshiyu chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT xiaoshuwei chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT wangpengchao chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT anziyan chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT fuzhouyang chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT shaojinpeng chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT zhangzhuang chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT fuweijun chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds
AT songshenghan chitinnanocrystalassisted3dbioprintingofgelatinmethacrylatescaffolds