Bioprinting of 3D in vitro skeletal muscle models : a review
Recent years have witnessed significant progress in skeletal muscle tissue regeneration. Numerous bioengineering approaches have been implemented to construct in vitro skeletal muscle tissues with high fidelity. Nevertheless, an in vitro model that is capable of restoring mature muscle, vasculature,...
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sg-ntu-dr.10356-1457492021-01-09T20:11:17Z Bioprinting of 3D in vitro skeletal muscle models : a review Zhuang, Pei An, Jia Chua, Chee Kai Tan, Lay Poh School of Mechanical and Aerospace Engineering School of Materials Science and Engineering Singapore Centre for 3D Printing Engineering::Bioengineering 3D Bioprinting Skeletal Muscle Recent years have witnessed significant progress in skeletal muscle tissue regeneration. Numerous bioengineering approaches have been implemented to construct in vitro skeletal muscle tissues with high fidelity. Nevertheless, an in vitro model that is capable of restoring mature muscle, vasculature, and ECM composition to the damaged tissue has yet to be achieved. Herein, we critically review the development and progress in tissue engineering skeletal muscle models. We outline the physiology of native skeletal muscle and the design criteria of engineering biomimetic skeletal muscle tissues are discussed. The influential parameters that modulating skeletal muscle cell behavior are highlighted. Subsequently, we critically review the 3D skeletal muscle models using various bioengineering strategies, including 3D geometrical confinement, electrospinning, porous hydrogels, the controlled cell/molecule delivery, and particularly, 3D bioprinting technology. We draw on specific examples to discuss the merits and limitations of each method. A short description of the challenges and future directions is provided. National Research Foundation (NRF) Published version This research is supported by the National Research Foundation, Prime Minister’s Office, Singapore under its Medium-Sized Centre funding scheme. 2021-01-07T01:40:26Z 2021-01-07T01:40:26Z 2020 Journal Article Zhuang, P., An, J., Chua, C. K., & Tan, L. P. (2020). Bioprinting of 3D in vitro skeletal muscle models : a review. Materials & Design, 193, 108794-. doi:10.1016/j.matdes.2020.108794 0261-3069 https://hdl.handle.net/10356/145749 10.1016/j.matdes.2020.108794 193 108794 en Materials & Design © 2020 Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). application/pdf |
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Engineering::Bioengineering 3D Bioprinting Skeletal Muscle Zhuang, Pei An, Jia Chua, Chee Kai Tan, Lay Poh Bioprinting of 3D in vitro skeletal muscle models : a review |
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Recent years have witnessed significant progress in skeletal muscle tissue regeneration. Numerous bioengineering approaches have been implemented to construct in vitro skeletal muscle tissues with high fidelity. Nevertheless, an in vitro model that is capable of restoring mature muscle, vasculature, and ECM composition to the damaged tissue has yet to be achieved. Herein, we critically review the development and progress in tissue engineering skeletal muscle models. We outline the physiology of native skeletal muscle and the design criteria of engineering biomimetic skeletal muscle tissues are discussed. The influential parameters that modulating skeletal muscle cell behavior are highlighted. Subsequently, we critically review the 3D skeletal muscle models using various bioengineering strategies, including 3D geometrical confinement, electrospinning, porous hydrogels, the controlled cell/molecule delivery, and particularly, 3D bioprinting technology. We draw on specific examples to discuss the merits and limitations of each method. A short description of the challenges and future directions is provided. |
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School of Mechanical and Aerospace Engineering |
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School of Mechanical and Aerospace Engineering Zhuang, Pei An, Jia Chua, Chee Kai Tan, Lay Poh |
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Article |
author |
Zhuang, Pei An, Jia Chua, Chee Kai Tan, Lay Poh |
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Zhuang, Pei |
title |
Bioprinting of 3D in vitro skeletal muscle models : a review |
title_short |
Bioprinting of 3D in vitro skeletal muscle models : a review |
title_full |
Bioprinting of 3D in vitro skeletal muscle models : a review |
title_fullStr |
Bioprinting of 3D in vitro skeletal muscle models : a review |
title_full_unstemmed |
Bioprinting of 3D in vitro skeletal muscle models : a review |
title_sort |
bioprinting of 3d in vitro skeletal muscle models : a review |
publishDate |
2021 |
url |
https://hdl.handle.net/10356/145749 |
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1690658368467763200 |