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Fabrication of fully aligned self-assembled cell-laden collagen filaments for tissue engineering via a hybrid bioprinting process

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Abstract
Cell-laden structures play a pivotal role in various tissue engineering applications, particularly in tissue restoration. Interactions between cells within bioprinted structures are crucial for successful tissue development and regulation of stem cell fate through intricate cell-to-cell signaling pathways. In this study, we developed a new technique that combines polyethylene glycol (PEG)-infused submerged bioprinting with a stretching procedure. This approach facilitated the generation of fully aligned collagen structures consisting of myoblasts and a low concentration (2 wt%) of collagen to efficiently encourage muscle tissue regeneration. By adjusting several processing parameters, we obtained biologically safe and mechanically stable cell-laden collagen filaments with uniaxial alignment. Notably, the cell filaments exhibited markedly elevated cellular activities compared to those exhibited by conventional bioprinted filaments, even at similar cell densities. Moreover, when we implanted structures containing adipose stem cells into mice, we observed a significantly increased level of myogenesis compared to that in normally bioprinted struts. Thus, this promising approach has the potential to revolutionize tissue engineering by fostering enhanced cellular interactions and promoting improved outcomes in regenerative medicine. © 2024 The Authors
Author(s)
Kim, JuYeonLee, HyeongjinLee, GyudoRyu, DongryeolKim, GeunHyung
Issued Date
2024-06
Type
Article
DOI
10.1016/j.bioactmat.2024.02.020
URI
https://scholar.gist.ac.kr/handle/local/9546
Publisher
KeAi Communications Co.
Citation
Bioactive Materials, v.36, pp.14 - 29
ISSN
2452-199X
Appears in Collections:
Department of Biomedical Science and Engineering > 1. Journal Articles
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