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Cited 63 time in webofscience Cited 75 time in scopus
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3D bioprinted silk fibroin hydrogels for tissue engineering

Authors
Kim, Soon HeeHong, HeesunAjiteru, OlatunjiSultan, Md TipuLee, Young JinLee, Ji SeungLee, Ok JooLee, HannaPark, Hae SangChoi, Kyu YoungLee, Joong SeobJu, Hyung WooHong, In-SunPark, Chan Hum
Issue Date
Dec-2021
Publisher
NATURE PORTFOLIO
Citation
NATURE PROTOCOLS, v.16, no.12, pp.5484 - 5532
Journal Title
NATURE PROTOCOLS
Volume
16
Number
12
Start Page
5484
End Page
5532
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/82896
DOI
10.1038/s41596-021-00622-1
ISSN
1754-2189
Abstract
The development of biocompatible and precisely printable bioink addresses the growing demand for three-dimensional (3D) bioprinting applications in the field of tissue engineering. We developed a methacrylated photocurable silk fibroin (SF) bioink for digital light processing 3D bioprinting to generate structures with high mechanical stability and biocompatibility for tissue engineering applications. Procedure 1 describes the synthesis of photocurable methacrylated SF bioink, which takes 2 weeks to complete. Digital light processing is used to fabricate 3D hydrogels using the bioink (1.5 h), which are characterized in terms of methacrylation, printability, mechanical and rheological properties, and biocompatibility. The physicochemical properties of the bioink can be modulated by varying photopolymerization conditions such as the degree of methacrylation, light intensity, and concentration of the photoinitiator and bioink. The versatile bioink can be used broadly in a range of applications, including nerve tissue engineering through co-polymerization of the bioink with graphene oxide, and for wound healing as a sealant. Procedure 2 outlines how to apply 3D-printed SF hydrogels embedded with chondrocytes and turbinate-derived mesenchymal stem cells in one specific in vivo application, trachea tissue engineering, which takes 2-9 weeks. Park and colleagues describe the synthesis of methacrylated photocurable silk fibroin bioink for digital light processing 3D bioprinting as well as fabrication of biocompatible organ-mimicking hydrogel structures for trachea tissue engineering.
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