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首页> 外文期刊>Biomaterials >In vivo mineralization and osteogenesis of nanocomposite scaffold of poly(lactide-co-glycolide) and hydroxyapatite surface-grafted with poly(L-lactide).
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In vivo mineralization and osteogenesis of nanocomposite scaffold of poly(lactide-co-glycolide) and hydroxyapatite surface-grafted with poly(L-lactide).

机译:聚乳酸-共-乙交酯和羟基磷灰石纳米接枝聚(L-丙交酯)的纳米复合支架的体内矿化和成骨作用。

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摘要

Nanocomposite of hydroxyapatite (HAP) surface-grafted with poly(l-lactide) (PLLA) (g-HAP) shows a wide application for bone fixation materials due to its improved interface compatibility, mechanical property and biocompatibility in our previous study. In this paper, a 3-D porous scaffold of g-HAP/poly(lactide-co-glycolide) (PLGA) was fabricated using the solvent casting/particulate leaching method to investigate its applications in bone replacement and tissue engineering. The composite of un-grafted HAP/PLGA and neat PLGA were used as controls. Their in vivo mineralization and osteogenesis were investigated by intramuscular implantation and replacement for repairing radius defects of rabbits. After surface modification, more uniform distribution of g-HAP particles but a lower calcium exposure on the surface of g-HAP/PLGA was observed. Intramuscular implantation study showed that the scaffold of g-HAP/PLGA was more stable than that of PLGA, and exhibited similar mineralization and biodegradability to HAP/PLGA at the 12-20 weeks post-surgery. The implantation study for repairing critical radius defects showed that the scaffold of g-HAP/PLGA exhibited rapid and strong mineralization and osteoconductivity, and the incorporation of BMP-2 could enhance the osteogenic process of the composite implant. The new bone formation with the intact structure of a long bone was guided by the implant of g-HAP/PLGA.
机译:表面接枝聚(l-丙交酯)(PLLA)(g-HAP)的羟基磷灰石(HAP)纳米复合材料在我们以前的研究中由于其改善的界面相容性,机械性能和生物相容性而显示出广泛的应用。在本文中,使用溶剂浇铸/微粒浸出法制备了一种g-HAP /聚丙交酯-乙交酯共聚物(PLGA)的3-D多孔支架,以研究其在骨置换和组织工程中的应用。未接枝的HAP / PLGA和纯PLGA的复合材料用作对照。通过肌内植入和置换修复兔的radius骨缺损,研究了它们的体内矿化和成骨作用。表面改性后,发现g-HAP颗粒分布更均匀,但在g-HAP / PLGA表面的钙暴露较低。肌内植入研究表明,g-HAP / PLGA的支架比PLGA的支架更稳定,并且在术后12至20周显示出与HAP / PLGA相似的矿化和生物降解性。修复严重radius骨缺损的植入研究表明,g-HAP / PLGA支架表现出快速而强的矿化和骨传导性,而BMP-2的掺入可以增强复合植入物的成骨过程。通过植入g-HAP / PLGA来指导具有长骨完整​​结构的新骨形成。

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