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首页> 外文期刊>Journal of inorganic and organometallic polymers and materials >Radiation Synthesis of Magnesium Doped Nano Hydroxyapatite/ (Acacia-Gelatin) Scaffold for Bone Tissue Regeneration: In Vitro Drug Release Study
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Radiation Synthesis of Magnesium Doped Nano Hydroxyapatite/ (Acacia-Gelatin) Scaffold for Bone Tissue Regeneration: In Vitro Drug Release Study

机译:掺杂镁掺杂纳米羟基磷灰石/(合欢 - 明胶)支架的辐射合成用于骨组织再生:体外药物释放研究

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摘要

Novel three-dimensional biodegradable porous nanocomposite bone scaffolds were fabricated using acacia gum and gelatin as the base polymer matrix and magnesium doped nano hydroxyapatite as cementing materials using gamma irradiation facility for crosslinking and sterilization processes. Mg-doped HAp nanoparticles were synthesized using wet chemical method. XRD studies verified the nano-scale size of the prepared HAp. In addition to Ca and P in the prepared n-HAp, the EDX analysis revealed the presence of Mg in the doped HAp samples. FTIR studies confirmed the existence of the characteristic functional groups of the scaffold constituents. The swelling behavior was found to be dependent on the quantity of embedded HAp nanoparticles. Nanocomposite scaffold porosity ranged from 26 to 39%, which increased with the inclusion of Mg ions. The developed scaffolds showed appropriate mechanical properties that enhanced by the existence of HAp nanoparticles. The incorporation of the Mg-doped HAp nanoparticles encourages the development of bone-like apatite layer. In vitro cytotoxicity assessment and blood compatibility demonstrated their biocompatibility. The developed scaffolds show promising antibacterial activity against Staphylococcus aureus and Escherichia coli. In vitro drug release study showed that the loaded Ketoprofen scaffolds were able to deliver the loaded drug sustainably.
机译:使用金金胶和明胶作为基础聚合物基质和镁掺杂纳米羟基磷灰石制造新的三维可生物降解的多孔纳米复合材料骨支架作为使用γ辐照设施进行交联和灭菌方法的胶合材料。使用湿化学方法合成Mg掺杂的Hap纳米粒子。 XRD研究验证了准备好的HAP的纳米尺度大小。除了在制备的N-Hap中的Ca和P之外,EDX分析显示掺杂的Hap样品中的Mg存在。 FTIR研究证实了支架成分的特征官能团的存在。发现肿胀行为依赖于嵌入式HAP纳米粒子的量。纳米复合支架孔隙率的范围为26至39%,随着镁离子而增加。所发育的支架显示出通过存在Hap纳米颗粒的存在而增强的适当机械性能。掺入Mg掺杂的Hap纳米粒子促进骨状磷灰石层的发育。体外细胞毒性评估和血液兼容性证明了它们的生物相容性。发育的支架显示出对金黄色葡萄球菌和大肠杆菌的抗菌活性。体外药物释放研究表明,负载的酮洛芬支架能够可持续地递送负载的药物。

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