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用碱性成纤维细胞生长因子对蜘蛛丝进行生物活化用于体外细胞培养:迈向创建人工细胞外基质的一步。

Bioactivation of Spider Silk with Basic Fibroblast Growth Factor for in Vitro Cell Culture: A Step toward Creation of Artificial ECM.

作者信息

Thatikonda Naresh, Nilebäck Linnea, Kempe Adam, Widhe Mona, Hedhammar My

机构信息

Department of Protein Science, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal Institute of Technology, Stockholm, 114 28, Sweden.

出版信息

ACS Biomater Sci Eng. 2018 Sep 10;4(9):3384-3396. doi: 10.1021/acsbiomaterials.8b00844. Epub 2018 Aug 28.

Abstract

Presentation of immobilized growth factors with retained bioactivity remains a challenge in the field of tissue engineering. In the present study, we propose a strategy to covalently conjugate a pleiotropic growth factor, basic fibroblast growth factor (bFGF) to a partial spider silk protein at gene level. The resulting silk-bFGF fusion protein has the propensity to self-assemble into silk-like fibers, and also surface coatings, as confirmed by quartz crystal microbalance studies. Functionality of the silk-bFGF coating to bind its cognate receptor was confirmed with surface plasmon resonance studies. As a step toward the creation of an artificial ECM, the silk-bFGF protein was mixed with FN-silk, an engineered spider silk protein with enhanced cell adhesive properties. Bioactivity of the thereby obtained combined silk was confirmed by successful culture of primary human endothelial cells on coatings and integrated within fibers, even in culture medium without supplemented growth factors. Together, these findings show that silk materials bioactivated with growth factors can be used for in vitro cell culture studies, and have potential as a tissue engineering scaffold.

摘要

在组织工程领域,呈现具有保留生物活性的固定化生长因子仍然是一项挑战。在本研究中,我们提出了一种在基因水平上将多效生长因子碱性成纤维细胞生长因子(bFGF)与部分蜘蛛丝蛋白共价缀合的策略。所得的丝-bFGF融合蛋白具有自组装成丝状纤维以及表面涂层的倾向,这已通过石英晶体微天平研究得到证实。通过表面等离子体共振研究证实了丝-bFGF涂层结合其同源受体的功能。作为创建人工细胞外基质的一步,将丝-bFGF蛋白与FN-丝混合,FN-丝是一种具有增强细胞粘附特性的工程蜘蛛丝蛋白。通过原代人内皮细胞在涂层上成功培养并整合到纤维中,甚至在没有补充生长因子的培养基中,证实了由此获得的复合丝的生物活性。总之,这些发现表明,用生长因子生物活化的丝材料可用于体外细胞培养研究,并具有作为组织工程支架的潜力。

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