双层氧化海藻酸钠-羧甲基壳聚糖水凝胶微球能够持续释放BMP-2,增强骨再生。

Yafei Yuan, Xige Zhao, Jiangqi Hu, Yixuan Zhu, Xuening Deng, Qingsong Jiang
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摘要

骨形态发生蛋白-2 (BMP-2)是一种高效的骨诱导因子,由于其显著的成骨特性,已获得美国食品和药物管理局(FDA)的批准。尽管如此,其临床应用受到与超生理剂量相关的副作用和半衰期短的限制。因此,迫切需要一种安全有效的递送系统,使BMP-2能够持续释放。本研究通过电喷涂和希夫反应制备了双层结构氧化海藻酸钠-羧甲基壳聚糖(OAC)微球。由氧化海藻酸钠组成的内层静电吸附BMP-2,而表面多孔聚电解质膜增强吸附,从而有效调节BMP-2的缓释和控释。我们评估了BMP-2对大鼠骨髓间充质干细胞(rBMSCs)的最小成骨诱导浓度,以优化微球内BMP-2的加载浓度。体外实验表明,水凝胶微球的双层膜结构显著延缓了BMP-2的释放,促进了BMP-2的长期持续释放。此外,微球促进了大鼠骨髓间充质干细胞(rBMSCs)的增殖、迁移和成骨分化。通过将bmp -2包封的OAC微球与磷酸钙水泥一起植入裸鼠背区,进一步证实了其促进成骨的作用。总之,我们开发的bmp -2包埋OAC微球是一种很有前景的临床方法,可以增强支架降解和骨生成,用于骨缺损的修复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bilayer oxidized sodium alginate-carboxymethyl chitosan hydrogel microspheres enable sustained BMP-2 release for enhanced bone regeneration.

Bone morphogenetic protein-2 (BMP-2) is a highly potent osteoinductive factor that has received approval from the U.S. Food and Drug Administration (FDA) due to its significant osteogenic properties. Nonetheless, its clinical utility is limited by adverse effects linked to supraphysiological dosing and its brief half-life. Consequently, there is a pressing need for a safe and effective delivery system to enable the sustained release of BMP-2. In this study, we have developed bilayer-structured oxidized sodium alginate-carboxymethyl chitosan (OAC) microspheres through the application of electrospraying and the Schiff reaction. The inner layer, composed of oxidized sodium alginate, electrostatically adsorbs BMP-2, while the porous polyelectrolyte membrane on the surface enhances adsorption, thereby effectively regulating the prolonged and controlled release of BMP-2. We assessed the minimal osteogenic induction concentration of BMP-2 on rat bone marrow mesenchymal stem cells (rBMSCs) to optimize the BMP-2 loading concentration within the microspheres. In vitro experiments demonstrated that the bilayer membrane structure of the hydrogel microspheres significantly delayed the release of BMP-2, facilitating a long-term, sustained release. Furthermore, the microspheres facilitated the proliferation, migration, and osteogenic differentiation of rat bone marrow-derived mesenchymal stem cells (rBMSCs). The osteogenic-promoting efficacy of the BMP-2-encapsulated OAC microspheres was further corroborated in vivo through implantation alongside calcium phosphate cement into the dorsal region of nude mice. Collectively, the BMP-2encapsulated OAC microspheres we developed constitute a promising clinical approach to augment scaffold degradation and osteogenesis for the repair of bone defects.

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