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Preparation and physical characterization of calcium sulfate cement/silica-based mesoporous material composites for controlled release of BMP-2

机译:用于控制释放BMP-2的硫酸钙水泥/二氧化硅基介孔材料复合材料的制备和物理表征

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摘要

As a commonly used implant material, calcium sulfate cement (CSC), has some shortcomings, including low compressive strength, weak osteoinduction capability, and rapid degradation. In this study, silica-based mesoporous materials such as SBA-15 were synthesized and combined with CSC to prepare CSC/SBA-15 composites. The properties of SBA-15 were characterized by X-ray diffraction, transmission electron microscopy, and nitrogen adsorption–desorption isotherms. SBA-15 was blended into CSC at 0, 5, 10, and 20 wt%, referred to as CSC, CSC-5S (5% mass ratio), CSC-10S (10% mass ratio), and CSC-20S (20% mass ratio), respectively. Fourier-transform infrared spectroscopy and compression tests were used to determine the structure and mechanical properties of the composites, respectively. The formation of hydroxyapatite on composite surfaces was analyzed using scanning electron microscopy and X-ray diffraction after soaking in simulated body fluid. BMP-2 was loaded into the composites by vacuum freeze-drying, and its release characteristics were detected by Bradford protein assay. The in vitro degradation of the CSC/SBA-15 composite was investigated by measuring weight loss. The results showed that the orderly, nanostructured, mesoporous SBA-15 possessed regular pore size and structure. The compressive strength of CSC/SBA-15 increased with the increase in SBA-15 mass ratio, and CSC-20S demonstrated the maximum strength. Compared to CSC, hydroxyapatite that formed on the surfaces of CSC/SBA-15 was uniform and compact. The degradation rate of CSC/SBA-15 decreased with increasing mass ratio of SBA-15. The adsorption of BMP-2 increased and released at a relatively slow rate; the release rate of BMP-2 in CSC-20S was the slowest, and presented characteristics of low doses of release. In vitro experiments demonstrated that the physical properties of pure CSC incorporated with SBA-15 could be improved significantly, which made the CSC/SBA-15 composite more suitable for bone repair and bone-tissue engineering.
机译:作为常用的植入材料,硫酸钙水泥(CSC)具有一些缺点,包括抗压强度低,骨诱导能力弱和降解速度快。在这项研究中,合成了基于二氧化硅的介孔材料,例如SBA-15,并与CSC结合制备了CSC / SBA-15复合材料。 SBA-15的特性通过X射线衍射,透射电子显微镜和氮吸附-解吸等温线表征。将SBA-15以0、5、10和20 wt%的比例掺入CSC中,分别称为CSC,CSC-5S(质量比为5%),CSC-10S(质量比为10%)和CSC-20S(20质量百分比)。傅里叶变换红外光谱和压缩测试分别用于确定复合材料的结构和力学性能。浸入模拟体液后,使用扫描电子显微镜和X射线衍射分析复合表面上羟基磷灰石的形成。通过真空冷冻干燥将BMP-2加载到复合物中,并通过Bradford蛋白测定法检测其释放特性。通过测量失重来研究CSC / SBA-15复合材料的体外降解。结果表明,有序的,纳米结构的中孔SBA-15具有规则的孔径和结构。 CSC / SBA-15的抗压强度随SBA-15质量比的增加而增加,而CSC-20S表现出最大强度。与CSC相比,在CSC / SBA-15表面上形成的羟基磷灰石均匀且致密。 CSC / SBA-15的降解率随SBA-15的质量比增加而降低。 BMP-2的吸附以相对较慢的速度增加和释放。 BSC-2在CSC-20S中的释放速度最慢,并且表现出低剂量释放的特征。体外实验表明,结合了SBA-15的纯CSC的物理性能可以得到显着改善,这使CSC / SBA-15复合材料更适合于骨修复和骨组织工程。

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