Wang Zhongshan, Wu Guangsheng, Wei Mengying, Liu Qian, Zhou Jian, Qin Tian, Feng Xiaoke, Liu Huan, Feng Zhihong, Zhao Yimin
State Key Laboratory of Military Stomatology & National Clinical Research Center for Oral Diseases & Shaanxi Key Laboratory of Oral Diseases, Department of Prosthodontics, People's Republic of China.
State Key Laboratory of Military Stomatology & National Clinical Research Center for Oral Diseases & Shaanxi Engineering Research Center for Dental Materials and Advanced Manufacture, Department of Periodontology, School of Stomatology, The Fourth Military Medical University, Xi'an, People's Republic of China; Qingdao First Sanatorium, Jinan Military Region, Qingdao, Shandong Province, People's Republic of China.
Int J Nanomedicine. 2016 May 17;11:2091-105. doi: 10.2147/IJN.S104851. eCollection 2016.
Cell sheet engineering has emerged as a novel approach to effectively deliver seeding cells for tissue regeneration, and developing human bone marrow mesenchymal stem cell (hBMMSC) sheets with high osteogenic ability is a constant requirement from clinics for faster and higher-quality bone formation. In this work, we fabricated biocompatible and safe chitosan (CS)/hyaluronic acid (HA) nanoparticles (NPs) to deliver microRNA-21 (miR-21), which has been proved to accelerate osteogenesis in hBMMSCs; then, the CS/HA/miR-21 NPs were cross-linked onto the surfaces of culture plates with 0.2% gel solution to fabricate miR-21-functionalized culture plates for reverse transfection. hBMMSC sheets were induced continuously for 14 days using a vitamin C-rich method on the miR-21-functionalized culture plates. For the characterization of CS/HA/miR-21 NPs, the particle size, zeta potential, surface morphology, and gel retardation were sequentially investigated. Then, the biological effects of hBMMSC sheets on the miR-21-functionalized culture plates were evaluated. The assay results demonstrated that the hBMMSC sheets could be successfully induced via the novel reverse transfection approach, and miR-21 delivery significantly enhanced the in vitro osteogenic differentiation of hBMMSC sheets in terms of upregulating calcification-related gene expression and enhancing alkaline phosphatase production, collagen secretion, and mineralized nodule formation. The enhanced osteogenic activity of hBMMSC sheets might promisingly lead to more rapid and more robust bone regeneration for clinical use.
细胞片工程已成为一种有效递送种子细胞用于组织再生的新方法,开发具有高成骨能力的人骨髓间充质干细胞(hBMMSC)片是临床对更快、更高质量骨形成的持续需求。在这项工作中,我们制备了生物相容性好且安全的壳聚糖(CS)/透明质酸(HA)纳米颗粒(NPs)来递送微小RNA-21(miR-21),已证明其可加速hBMMSCs的成骨作用;然后,将CS/HA/miR-21 NPs用0.2%的凝胶溶液交联到培养板表面,制备用于反向转染的miR-21功能化培养板。在miR-21功能化培养板上采用富含维生素C的方法对hBMMSC片连续诱导14天。对于CS/HA/miR-21 NPs的表征,依次研究了粒径、zeta电位、表面形态和凝胶阻滞。然后,评估了hBMMSC片在miR-21功能化培养板上的生物学效应。检测结果表明,通过这种新型反向转染方法可成功诱导hBMMSC片,并且miR-21的递送在上调钙化相关基因表达以及增强碱性磷酸酶产生、胶原蛋白分泌和矿化结节形成方面显著增强了hBMMSC片的体外成骨分化。hBMMSC片增强的成骨活性有望为临床应用带来更快、更强健的骨再生。