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Nanosized Mesoporous Bioactive Glass/Poly(lactic-co-glycolic Acid) Composite-Coated CaSiO3 Scaffolds with Multifunctional Properties for Bone Tissue Engineering

机译:具有多功能特性的纳米介孔生物活性玻璃/聚乳酸-乙醇酸复合涂层CaSiO3支架用于骨组织工程

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摘要

It is of great importance to prepare multifunctional scaffolds combining good mechanical strength, bioactivity, and drug delivery ability for bone tissue engineering. In this study, nanosized mesoporous bioglass/poly(lactic-co-glycolic acid) composite-coated calcium silicate scaffolds, named NMBG-PLGA/CS, were successfully prepared. The morphology and structure of the prepared scaffolds were characterized by scanning electron microscopy and X-ray diffraction. The effects of NMBG on the apatite mineralization activity and mechanical strength of the scaffolds and the attachment, proliferation, and alkaline phosphatase activity of MC3T3 cells as well as drug ibuprofen delivery properties were systematically studied. Compared to pure CS scaffolds and PLGA/CS scaffolds, the prepared NMBG-PLGA/CS scaffolds had greatly improved apatite mineralization activity in simulated body fluids, much higher mechanical property, and supported the attachment of MC3T3 cells and enhanced the cell proliferation and ALP activity. Furthermore, the prepared NMBG-PLGA/CS scaffolds could be used for delivering ibuprofen with a sustained release profile. Our study suggests that the prepared NMBG-PLGA/CS scaffolds have improved physicochemical, biological, and drug-delivery property as compared to conventional CS scaffolds, indicating that the multifunctional property of the prepared scaffolds for the potential application of bone tissue engineering.
机译:对于骨组织工程而言,制备具有良好机械强度,生物活性和药物递送能力的多功能支架非常重要。在这项研究中,成功​​制备了纳米尺寸的介孔生物玻璃/聚(乳酸-乙醇酸共聚物)复合涂层硅酸钙支架,命名为NMBG-PLGA / CS。通过扫描电子显微镜和X射线衍射对所制备支架的形态和结构进行表征。系统地研究了NMBG对磷灰石矿化活性和支架的机械强度以及MC3T3细胞的附着,增殖和碱性磷酸酶活性以及布洛芬药物递送特性的影响。与纯CS支架和PLGA / CS支架相比,制备的NMBG-PLGA / CS支架在模拟体液中具有显着改善的磷灰石矿化活性,更高的机械性能,并支持MC3T3细胞的附着并增强了细胞增殖和ALP活性。 。此外,制备的NMBG-PLGA / CS支架可用于递送具有持续释放特性的布洛芬。我们的研究表明,与常规CS支架相比,所制备的NMBG-PLGA / CS支架具有改善的理化,生物学和药物递送特性,表明所制备支架的多功能特性可用于骨组织工程的潜在应用。

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