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A poly(glycerol sebacate)-coated mesoporous bioactive glass scaffold with adjustable mechanical strength, degradation rate, controlled-release and cell behavior for bone tissue engineering

机译:聚(癸二酸甘油酯)涂层的介孔生物活性玻璃支架,具有可调节的机械强度,降解速率,控释和细胞行为,可用于骨组织工程

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摘要

Various requirements in the field of tissue engineering have motivated the development of three-dimensional scaffold with adjustable physicochemical properties and biological functions. A series of multiparameter-adjustable mesoporous bioactive glass (MBG) scaffolds with uncrosslinked poly(glycerol sebacate) (PGS) coating was prepared in this article. MEG scaffold was prepared by a modified F127/PU co-templating process and then PGS was coated by a simple adsorption and lyophilization process. Through controlling macropore parameters and PGS coating amount, the mechanical strength, degradation rate, controlled-release and cell behavior of the composite scaffold could be modulated in a wide range. PGS coating successfully endowed MBG scaffold with improved toughness and adjustable mechanical strength covering the bearing range of trabecular bone (2-12 MPa). Multilevel degradation rate of the scaffold and controlled-release rate of protein from mesopore could be achieved, with little impact on the protein activity owing to an "ultralow-solvent" coating and "nano-cavity entrapment" immobilization method. In vitro studies indicated that PGS coating promoted cell attachment and proliferation in a dose-dependent manner, without affecting the osteogenic induction capacity of MBG substrate. These results first provide strong evidence that uncrosslinked PGS might also yield extraordinary achievements in traditional MEG scaffold. With the multiparameter adjustability, the composite MBG/PGS scaffolds would have a hopeful prospect in bone tissue engineering. The design considerations and coating method of this study can also be extended to other ceramic-based artificial scaffolds and are expected to provide new thoughts on development of future tissue engineering materials. (C) 2015 Elsevier B.V. All rights reserved.
机译:组织工程领域的各种要求已促使开发具有可调节的理化性质和生物学功能的三维支架。本文制备了一系列具有未交联的聚癸二酸甘油酯(PGS)涂层的多参数可调的介孔生物活性玻璃(MBG)支架。通过改进的F127 / PU共模板工艺制备MEG支架,然后通过简单的吸附和冻干工艺涂覆PGS。通过控制大孔参数和PGS包被量,可以在很大范围内调节复合支架的机械强度,降解速率,控释和细胞行为。 PGS涂层成功赋予MBG脚手架以更高的韧性和可调节的机械强度,覆盖了小梁骨的承重范围(2-12 MPa)。由于“超低溶剂”包被和“纳米腔包埋”固定方法,可以实现支架的多级降解速率和中孔蛋白质的控释速率,而对蛋白质活性的影响很小。体外研究表明,PGS涂层以剂量依赖性方式促进细胞附着和增殖,而不会影响MBG底物的成骨诱导能力。这些结果首先提供了有力的证据,表明未交联的PGS也可能在传统的MEG支架中获得非凡的成就。有了多参数的可调节性,复合的MBG / PGS支架将在骨组织工程中具有希望的前景。这项研究的设计考虑因素和涂覆方法也可以扩展到其他基于陶瓷的人造支架,并有望为未来的组织工程材料的开发提供新的思路。 (C)2015 Elsevier B.V.保留所有权利。

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