Bioengineered | |
Preparation of controlled degradation of insulin-like growth factor 1/spider silk protein nanofibrous membrane and its effect on endothelial progenitor cell viability | |
Duanwen Cao1  Rongfeng Yang2  Jiajia Gao2  Xiao Ke3  Lifang Chen4  Yulang Huang4  Jian Xiao4  Debao Zhang4  | |
[1] Clinical Trials Research Centre, The First Affiliated Hospital of Nanchang University, Nanchang Chin;Department of Cardiology, Fuwai Hospital, Chinese Academy of Medical Sciences, Shenzhen Sun Yat-sen Cardiovascular Hospital, Shenzhen, Chin;Department of Cardiology, Fuwai Hospital, Chinese Academy of Medical Sciences, Shenzhen Sun Yat-sen Cardiovascular Hospital, Shenzhen, Chin;Key Laboratory of Biomaterials of Guangdong Higher Education Institutes, Department of Biomedical Engineering, Jinan University, Guangzhou, Chin;Department of Cardiology, Shenzhen Nanshan District Shekou People’ S Hospital, Shenzhen, Chin; | |
关键词: Controlled-releasing; nanofibrous membrane; degradation; IGF-1; endothelial progenitor cells; TEV protease; | |
DOI : 10.1080/21655979.2021.1982270 | |
来源: Taylor & Francis | |
【 摘 要 】
The present study aimed to prepare a kind of controlled-releasing insulin-like growth factor 1 (IGF-1)/spider silk protein nanofibrous membrane using a electrostatic spinning method and evaluated its effect on the cell viability of endothelial progenitor cells (EPCs). Recombinant spidroin named as GMCDRSSP-IgF-1 was electro-spun into nanofibrous membrane which can be degraded by protease and be capable of sustained-release of IGF-1. The membrane can be degraded after being treated with thrombin. The release assay results showed that IGF-1 concentration could be maintained at 20 ng/ml for a long time with treatment of Tobacco Etch Virus (TEV) protease. The viability of EPCs on GMCDRSSP-IgF-1 nanofibrous membrane was significantly increased with the presence of TEV protease. The controlled and sustained release of IGF-1 from the nanofibrous membrane could promote the adhesion and viability of EPCs. In summary, the nanofibrous membrane that exhibits controlled degradation and sustained release of IGF-1 was prepared with electrostatic spinning from genetically modified recombinant spider silk protein. The nanofibrous membrane exhibited good blood compatibility and cytocompatibility. With the presence of TEV protease, the sustained-release of IGF-1 significantly promoted the adhesion and viability of EPCs. The new nanofibrous membrane can be potentially used as a scaffold for EPCs culture in vitro and future in vivo studies.
【 授权许可】
CC BY
【 预 览 】
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RO202111260628635ZK.pdf | 2341KB | download |