Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering
The nervous system in the body is a complex network of nerves and cells that regulates several functions. Neural regeneration is a complex process that involves matrix secretion and remodeling, in which growth factors play a huge role in regulating such processes. Recent studies demonstrated the str...
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doaj-edfa55c67ee44c7abb98cc46d77773d82020-11-25T03:27:52ZengElsevierMaterials & Design0264-12752020-10-01195108982Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineeringYi-Wen Chen0Kan Wang1Chia-Che Ho2Chia-Tze Kao3Hooi Yee Ng4Ming-You Shie5Graduate Institute of Biomedical Sciences, China Medical University, Taichung City, Taiwan; 3D Printing Medical Research Institute, Asia University, Taichung City, TaiwanGeorgia Tech Manufacturing Institute, Georgia Institute of Technology, Atlanta, GA, USA3D Printing Medical Research Institute, Asia University, Taichung City, Taiwan; Department of Bioinformatics and Medical Engineering, Asia University, Taichung City, TaiwanSchool of Dentistry, Chung Shan Medical University, Taichung City, TaiwanSchool of Medicine, China Medical University, Taichung City, Taiwan; x-Dimension Center for Medical Research and Translation, China Medical University Hospital, Taichung City, TaiwanDepartment of Bioinformatics and Medical Engineering, Asia University, Taichung City, Taiwan; x-Dimension Center for Medical Research and Translation, China Medical University Hospital, Taichung City, Taiwan; School of Dentistry, China Medical University, Taichung City, Taiwan; Corresponding author.The nervous system in the body is a complex network of nerves and cells that regulates several functions. Neural regeneration is a complex process that involves matrix secretion and remodeling, in which growth factors play a huge role in regulating such processes. Recent studies demonstrated the structures and topography of scaffolds are expected to provide a spectrum of unique biomimetic 3D microenvironments to regulate cell behavior. In this study, we fabricated auxetic scaffolds using fish gelatin methacrylamide and evaluated the effects of cyclic tensile stimulation effects on the neural differentiation capabilities of human Schwann cells. The auxetic hydrogels were found to withstand up to 20% tensile strain without tears, and the hydrogels had lost only about 10% weight after immersed for 14 days. The tensile forces were able to enhance cell viability and proliferation as compared to a static culture. In addition, the secretion of neural regeneration-related proteins was enhanced in the tensile stimulation group. The cell-laden auxetic scaffold with tensile stimulation caused improvement in the nerve growth factor and TRKA receptor expression. This is the first study to combine tensile stimulation with NGF. The initial results showed the positive potential of such conditions being applied in clinical applications.http://www.sciencedirect.com/science/article/pii/S0264127520305165Cyclic tensile forceAuxeticSchwann cellBiofabricationHydrogelNerve regeneration |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yi-Wen Chen Kan Wang Chia-Che Ho Chia-Tze Kao Hooi Yee Ng Ming-You Shie |
spellingShingle |
Yi-Wen Chen Kan Wang Chia-Che Ho Chia-Tze Kao Hooi Yee Ng Ming-You Shie Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering Materials & Design Cyclic tensile force Auxetic Schwann cell Biofabrication Hydrogel Nerve regeneration |
author_facet |
Yi-Wen Chen Kan Wang Chia-Che Ho Chia-Tze Kao Hooi Yee Ng Ming-You Shie |
author_sort |
Yi-Wen Chen |
title |
Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering |
title_short |
Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering |
title_full |
Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering |
title_fullStr |
Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering |
title_full_unstemmed |
Cyclic tensile stimulation enrichment of Schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering |
title_sort |
cyclic tensile stimulation enrichment of schwann cell-laden auxetic hydrogel scaffolds towards peripheral nerve tissue engineering |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2020-10-01 |
description |
The nervous system in the body is a complex network of nerves and cells that regulates several functions. Neural regeneration is a complex process that involves matrix secretion and remodeling, in which growth factors play a huge role in regulating such processes. Recent studies demonstrated the structures and topography of scaffolds are expected to provide a spectrum of unique biomimetic 3D microenvironments to regulate cell behavior. In this study, we fabricated auxetic scaffolds using fish gelatin methacrylamide and evaluated the effects of cyclic tensile stimulation effects on the neural differentiation capabilities of human Schwann cells. The auxetic hydrogels were found to withstand up to 20% tensile strain without tears, and the hydrogels had lost only about 10% weight after immersed for 14 days. The tensile forces were able to enhance cell viability and proliferation as compared to a static culture. In addition, the secretion of neural regeneration-related proteins was enhanced in the tensile stimulation group. The cell-laden auxetic scaffold with tensile stimulation caused improvement in the nerve growth factor and TRKA receptor expression. This is the first study to combine tensile stimulation with NGF. The initial results showed the positive potential of such conditions being applied in clinical applications. |
topic |
Cyclic tensile force Auxetic Schwann cell Biofabrication Hydrogel Nerve regeneration |
url |
http://www.sciencedirect.com/science/article/pii/S0264127520305165 |
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