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首页> 外文期刊>Scientific reports. >Optimized Bone Regeneration in Calvarial Bone Defect Based on Biodegradation-Tailoring Dual-shell Biphasic Bioactive Ceramic Microspheres
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Optimized Bone Regeneration in Calvarial Bone Defect Based on Biodegradation-Tailoring Dual-shell Biphasic Bioactive Ceramic Microspheres

机译:基于生物降解 - 剪裁双壳双壳生物活性陶瓷微球的颅骨骨缺损优化骨再生

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摘要

Bioceramic particulates capable of filling bone defects have gained considerable interest over the last decade. Herein, dual-shell bioceramic microspheres (CaP@CaSi@CaP, CaSi@CaP@CaSi) with adjustable beta-tricalcium phosphate (CaP) and beta-calcium silicate (CaSi) distribution were fabricated using a co-concentric capillary system enabling bone repair via a tailorable biodegradation process. The in vitro results showed the optimal concentration (1/16 of 200?mg/ml) of extracts of dual-shell microspheres could promote bone marrow mesenchymal cell (BMSC) proliferation and enhance the level of ALP activity and Alizarin Red staining. The in vivo bone repair and microsphere biodegradation in calvarial bone defects were compared using micro-computed tomography and histological evaluations. The results indicated the pure CaP microspheres were minimally resorbed at 18 weeks post-operatively and new bone tissue was limited; however, the dual-shell microspheres were appreciably biodegraded with time in accordance with the priority from CaSi to CaP in specific layers. The CaSi@CaP@CaSi group showed a significantly higher ability to promote bone regeneration than the CaP@CaSi@CaP group. This study indicates that the biphasic microspheres with adjustable composition distribution are promising for tailoring material degradation and bone regeneration rate, and such versatile design strategy is thought to fabricate various advanced biomaterials with tailorable biological performances for bone reconstruction.
机译:能够填充骨缺损的生物陶瓷颗粒在过去十年中获得了相当大的兴趣。在此,使用具有可调节β-三钙(帽)和β-硅酸盐(CASI)分布的双壳生物陶瓷微球(CASI @ CAP,CASI @ CASI)是使用具有骨骼修复的共同同心毛细管系统制造的可调节β-三钙(帽)和β-硅酸盐(CASI)分布通过可定制的生物降解过程。体外结果表明,双壳微球提取物的最佳浓度(200×mg / ml)可以促进骨髓间充质细胞(BMSC)增殖,增强ALP活性和茜素红染色水平。使用微计算断层扫描和组织学评价进行比较颅骨骨缺损中的体内骨修复和微球生物降解。结果表明纯帽微球在可操作性和可操作地和新的骨组织限制的18周下最小化;然而,双壳微球在特定层中的优先级与Casi至帽的优先级一起被用时间生物降解。 CASI @ CAP @ CASI集团表明,促进骨骼再生的能力明显高于CASI @ CAP组。该研究表明,具有可调节组成分布的双相微球是对剪裁物质的降解和骨再生率的承诺,并且认为这种多种设计策略是以可定制的生物学性能为骨重建制造各种先进的生物材料。

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