Laboratory of Quality and Safety Risk Assessment for Aquatic Products on Storage and Preservation (Shanghai), Ministry of Agriculture, Shanghai Engineering Research Center of Aquatic-Product Processing and Preservation, College of Food Science & Technology, Shanghai Ocean University, Shanghai, 201306, China.
State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai, 200438, China.
Small. 2018 May;14(22):e1800063. doi: 10.1002/smll.201800063. Epub 2018 Apr 22.
Injectable polymer microsphere-based stem cell delivery systems have a severe problem that they do not offer a desirable environment for stem cell adhesion, proliferation, and differentiation because it is difficult to entrap a large number of hydrophilic functional protein molecules into the core of hydrophobic polymer microspheres. In this work, soybean lecithin (SL) is applied to entrap hydrophilic bone morphogenic protein-2 (BMP-2) into nanoporous poly(lactide-co-glycolide) (PLGA)-based microspheres by a two-step method: SL/BMP-2 complexes preparation and PLGA/SL/BMP-2 microsphere preparation. The measurements of their physicochemical properties show that PLGA/SL/BMP-2 microspheres had significantly higher BMP-2 entrapment efficiency and controlled triphasic BMP-2 release behavior compared with PLGA/BMP-2 microspheres. Furthermore, the in vitro and in vivo stem cell behaviors on PLGA/SL/BMP-2 microspheres are analyzed. Compared with PLGA/BMP-2 microspheres, PLGA/SL/BMP-2 microspheres have significantly higher in vitro and in vivo stem cell attachment, proliferation, differentiation, and matrix mineralization abilities. Therefore, injectable nanoporous PLGA/SL/BMP-2 microspheres can be potentially used as a stem cell platform for bone tissue regeneration. In addition, SL can be potentially used to prepare hydrophilic protein-loaded hydrophobic polymer microspheres with highly entrapped and controlled release of proteins.
基于可注射聚合物微球的干细胞递送系统存在一个严重的问题,即它们不能为干细胞的黏附、增殖和分化提供理想的环境,因为很难将大量的亲水性功能蛋白分子包埋到疏水性聚合物微球的核心中。在这项工作中,大豆卵磷脂 (SL) 被应用于通过两步法将亲水性骨形态发生蛋白-2 (BMP-2) 包埋到纳米多孔聚 (乳酸-共-乙醇酸) (PLGA) 基微球中:SL/BMP-2 复合物的制备和 PLGA/SL/BMP-2 微球的制备。对其物理化学性质的测量表明,与 PLGA/BMP-2 微球相比,PLGA/SL/BMP-2 微球具有更高的 BMP-2 包封效率和控制的三相 BMP-2 释放行为。此外,还分析了 PLGA/SL/BMP-2 微球上的体外和体内干细胞行为。与 PLGA/BMP-2 微球相比,PLGA/SL/BMP-2 微球具有更高的体外和体内干细胞黏附、增殖、分化和基质矿化能力。因此,可注射纳米多孔 PLGA/SL/BMP-2 微球可作为骨组织再生的干细胞平台。此外,SL 可用于制备具有高包埋和控制蛋白质释放的亲水性蛋白负载疏水性聚合物微球。