全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Research on the Development of Fibroin and Nano-Fiber from Silk Cocoons for Regenerated Tissue Engineering Applications by Electro-Spinning

DOI: 10.4236/anp.2024.131001, PP. 1-9

Keywords: Silk fibroin, Scaffold, electro-spinning, nano-fiber, Tissue Engineering

Full-Text   Cite this paper   Add to My Lib

Abstract:

In this paper, the main goal is to prepare silk fibroin nano-fiber, which is used for regenerated tissue applications. Silk scaffold nano-fibers made by electro-spinning technology can be used in regenerated tissue applications. The purpose of the research is to prepare a silk-fibroin nano-fiber solution for potential applications in tissue engineering. Using a degumming process, pure silk fibroin protein is extracted from silk cocoons. The protein solution for fibroin is purified, and the protein content is determined. The precise chemical composition, exact temperature, time, voltage, distance, ratio, and humidity all have a huge impact on degumming, solubility, and electro-spinning nano-fibers. The SEM investigates the morphology of silk fibroin nano-fibres at different magnifications. It also reveals the surface condition, fiber orientation, and fiber thickness of the silk fibroin nano-fiber. The results show that regenerated silk fibroin and nano-fiber can be used in silk fibroin scaffolds for various tissue engineering applications.

References

[1]  Liu, T., Ding, X.B., Lai, D.Z., Chen, Y.W., Zhang, R.D., Chen, J.Y., Feng, X.X., Chen, X.Y., Yang, X.Y., Zhao, R.B., Chen, K. and Kong, X.D. (2014) Enhancing in Vitro Bioactivity and in Vivo Osteogenesis of Organicinorganic Nanofibrous Biocomposites with Novel Biocer, Journal of Materials Chemistry B, 2, 6293-6305.
https://doi.org/10.1039/C4TB00889H
[2]  Zi, Y.X., Liu, T.B., Chen, Y.R., Ren, X. and Ding, X.B. (2019) Construction of SF/SA/HBG Fiber Scaffold Materials and in Vitro Biomineralization, Journal of Zhejiang Sci-Tech University, 41, 427-432.
[3]  Sah, M.K. and Pramanik, K. (2010) Regenerated Silk Fibroin from B. mori Silk Cocoon for Tissue Engineering Applications. International Journal of Environmental Science and Development, 1, 2972-3698.
https://doi.org/10.7763/IJESD.2010.V1.78
[4]  Ning, L., Xue, L. and Huang, H.N. (1999) Explorations on Correlation of Biological Tests of Skin Reproductive Membrane. Journal of Modern Medicine and Health, 9.
[5]  Altman, G.H., Diaz, F., Jakuba, C., Calabro, T., Horan, R.H., Chen, J., Lu, H., Richmond, J. and Kaplan, D.L. (2003) Silk-Based Biomaterials. Biomaterials, 24, 401-416.
https://doi.org/10.1016/S0142-9612(02)00353-8
[6]  Kim, U.J., Park, J., Kim, H.J., Wada, M. and Kaplan, D.L. (2005). Three-Dimensional Aqueous-Derive Bio-material Scaffolds from Silk Fibroin. Biomaterials, 26, 2775-2785.
https://doi.org/10.1016/j.biomaterials.2004.07.044
[7]  Sah, M.K. and Pramanik, K. (2010), Regenerated Silk Fibroin from B. mori Silk Cocoon for Tissue Engineering Applications. International Journal of Environmental Science and Development, 1, 404-408.
[8]  Miyaguchi, Y. and Hu, J. (2005) Physicochemical Properties of Silk Fibroin after Solubilization Using Calcium Chloride with or without Ethanol. Food Science and Technology Research, 11, Article 3742.
https://doi.org/10.3136/fstr.11.37
[9]  Kweon, H. and Park, Y.H. (2001) Dissolution and Characterization of Regenerated Antheraea Pernyi Silk Fibroin. Journal of Applied Polymer Science, 82, 750-758.
https://doi.org/10.1002/app.1901
[10]  Freddia, G., Mossottib, R. and Innocentib, R. (2003) Degumming of Silk Fabric with Several Proteases. Journal of Biotechnology, 106, 101-112.
https://doi.org/10.1016/j.jbiotec.2003.09.006

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133