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Preparation, Characterization and in Vitro Release Kinetics of Vancomycin Carried 0-TCP/Chitosan Composite Microspheres Used as Bone Tissue Engineering Scaffolds

机译:万古霉素的制备,表征和体外释放动力学载有0-TCP /壳聚糖复合微球,用作骨组织工程支架

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A novel microsphere scaffolds composed of chitosan and P-TCP containing vancomycin was designed and prepared. The P-TCP/chitosan composite microspheres were prepared by solid-in-water-in-oil (s/w/o) emulsion cross-linking method with or without pre-cross-linking process. The mode of vancomycin maintaining in the p-TCP/chitosan composite microspheres was detected by Fourier transform infrared spectroscopy (FTIR). The in vitro release curve of vancomycin in simulated body fluid (SBF) was estimated. The results revealed that the pre-cross-linking prepared microspheres possessed higher loading efficiency (LE) and encapsulation efficiency (EE) especially decreasing the previous burst mass of vancomycin in incipient release. These composite microspheres got excellent sphere and well surface roughness in morphology. Vancomycin was encapsulated in composite microspheres through absorption and cross-linking. While in-vitro release curves illustrated that vancomycin release depend on diffusing firstly and then on the degradation ratio later. The microspheres loading with vancomycin would be to restore bone defect, meanwhile to inhibit bacterium proliferation. These bioactive, degradable composite microspheres have potential applications in 3D tissue engineering of bone and other tissues in vitro and in vivo.
机译:设计并制备了一种由壳聚糖和含有万古霉素的P-TCP组成的新型微球支架。通过在油内 - 油状物(S / W / O)乳液交联方法具有或不具有交联预连接过程的乳液交联方法制备P-TCP /壳聚糖复合微球。通过傅里叶变换红外光谱(FTIR)检测维持在P-TCP /壳聚糖复合微球中的万古霉素模式。估计模拟体液(SBF)中万古霉素的体外释放曲线。结果表明,前交联制备的微球具有更高的负载效率(LE)和包封效率(EE),特别是降低初生释放中的先前万古霉素的爆发质量。这些复合微球具有优异的球体和良好的形态粗糙度。 Vancomycin通过吸收和交联在复合微球中包封。虽然在体外释放曲线所​​示,万古霉素释放依赖于首先扩散,然后在降解比上逐渐扩散。用万古霉素装载的微球是恢复骨缺损,同时抑制细菌增殖。这些生物活性可降解的复合微球具有在体外和体内3D组织工程中的潜在应用。

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