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介孔羟基磷灰石微球载辛伐他汀持续释放系统促进成骨和血管生成从而实现更优的骨再生。

Enhanced osteogenesis and angiogenesis by mesoporous hydroxyapatite microspheres-derived simvastatin sustained release system for superior bone regeneration.

机构信息

Department of Orthopedics, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, 600 Yishan Road, Shanghai 200233, China.

State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, 1295 Dingxi Road, Shanghai 200050, China.

出版信息

Sci Rep. 2017 Mar 13;7:44129. doi: 10.1038/srep44129.

Abstract

Biomaterials with both excellent osteogenic and angiogenic activities are desirable to repair massive bone defects. In this study, simvastatin with both osteogenic and angiogenic activities was incorporated into the mesoporous hydroxyapatite microspheres (MHMs) synthesized through a microwave-assisted hydrothermal method using fructose 1,6-bisphosphate trisodium salt (FBP) as an organic phosphorous source. The effects of the simvastatin-loaded MHMs (S-MHMs) on the osteogenic differentiation of rat bone marrow mesenchymal stem cells (rBMSCs) and angiogenesis in EA.hy926 cells were investigated. The results showed that the S-MHMs not only enhanced the expression of osteogenic markers in rBMSCs but also promoted the migration and tube formation of EA.hy926 cells. Furthermore, the S-MHMs were incorporated into collagen matrix to construct a novel S-MHMs/collagen composite scaffold. With the aid of MHMs, the water-insoluble simvastatin was homogenously incorporated into the hydrophilic collagen matrix and presented a sustained release profile. In vivo experiments showed that the S-MHMs/collagen scaffolds enhanced the bone regeneration and neovascularization simultaneously. These results demonstrated that the water-insoluble simvastatin could be incorporated into the MHMs and maintained its biological activities, more importantly, the S-MHMs/collagen scaffolds fabricated in this study are of immense potential in bone defect repair by enhancing osteogenesis and angiogenesis simultaneously.

摘要

具有优异成骨和血管生成活性的生物材料是修复大体积骨缺损所需要的。在这项研究中,将具有成骨和血管生成活性的辛伐他汀通过微波辅助水热法与 1,6-二磷酸果糖三钠盐(FBP)一起加入到介孔羟基磷灰石微球(MHMs)中合成,FBP 作为有机磷源。研究了载辛伐他汀的 MHMs(S-MHMs)对大鼠骨髓间充质干细胞(rBMSCs)成骨分化和 EA.hy926 细胞血管生成的影响。结果表明,S-MHMs 不仅增强了 rBMSCs 中成骨标志物的表达,而且促进了 EA.hy926 细胞的迁移和管形成。此外,S-MHMs 被掺入胶原基质中以构建新型 S-MHMs/胶原复合支架。在 MHMs 的帮助下,将不溶于水的辛伐他汀均匀地掺入亲水性胶原基质中,并呈现出持续释放的特征。体内实验表明,S-MHMs/胶原支架同时增强了骨再生和新血管生成。这些结果表明,不溶于水的辛伐他汀可以掺入 MHMs 中并保持其生物活性,更重要的是,本研究中制备的 S-MHMs/胶原支架通过同时增强成骨和血管生成,在骨缺损修复中具有巨大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4148/5347005/da94fe3cdab6/srep44129-f1.jpg

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