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Direct Scaffolding of Biomimetic Hydroxyapatite-gelatin Nanocomposites using Aminosilane Cross-linker for Bone Regeneration

机译:使用氨基硅烷交联剂进行骨再生的氨基硅烷交联剂直接支撑生物咪料羟基磷灰石 - 明胶纳米复合材料

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摘要

Hydroxyapatite-gelatin modified siloxane (GEMOSIL) nanocomposite was developed by coating, kneading and hardening processes to provide formable scaffolding for alloplastic graft applications. The present study aims to characterize scaffolding formability and mechanical properties of GEMOSIL, and to test the in vitro and in vivo biocompatibility of GEMOSIL. Buffer Solution initiated formable paste followed by the sol-gel reaction led to a final hardened composite. Results showed the adequate coating of aminosilane, 11–19 wt%, affected the cohesiveness of the powders and the final compressive strength (69 MPa) of the composite. TGA and TEM results showed the effective aminosilane coating that preserves hydroxyapatite-gelatin nanocrystals from damage. Both GEMOSIL with and without titania increased the mineralization of preosteoblasts in vitro. Only did titania additives revealed good in vivo bone formation in rat calvarium defects. The scaffolding formability, due to cohesive bonding among GEMOSIL particles, could be further refined to fulfill the complicated scaffold processes.
机译:通过涂布,捏合和硬化方法开发羟基磷灰石 - 明胶改性硅氧烷(Gemosil)纳米复合材料,以提供用于所有塑料移植物应用的可成型支架。本研究旨在表征吉马石的脚手架可成型性和机械性能,并在吉西尔的体外测试和体内生物相容性。缓冲溶液引发可成式糊剂,然后将溶胶 - 凝胶反应导致最终的硬化复合材料。结果表明,氨基硅烷的足够涂层,11-19重量%,影响了粉末的粘合性和复合材料的最终抗压强度(69MPa)。 TGA和TEM结果表明,氨基硅烷涂层可从损伤中保留羟基磷灰石 - 明胶纳米晶体。吉莫尔均具有和不含二氧化钛的矿化在体外增加了预兆子细胞的矿化。二氧化钛添加剂仅揭示了大鼠Calvarium缺陷的体内骨形成良好。由于Gemosil颗粒之间的粘结,脚手架的可成形性可以进一步改进以实现复杂的支架过程。

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