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首页> 外文期刊>Journal of Bioactive and Compatible Polymers >Evaluation of the in vitro biodegradation and biological behavior of poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite composite microsphere-sintered scaffold for bone tissue engineering
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Evaluation of the in vitro biodegradation and biological behavior of poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite composite microsphere-sintered scaffold for bone tissue engineering

机译:对聚(乳酸二乙醇酸)/纳米氟羟基磷灰石复合微球骨组织工程烧结支架的体外生物降解和生物学行为的评价

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摘要

The objective of this research was to study the degradation and biological characteristics of the three-dimensional porous composite scaffold made of poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite microsphere using sintering method for potential bone tissue engineering. Our previous experimental results demonstrated that poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite composite scaffold with a ratio of 4:1 sintered at 90oC for 2h has the greatest mechanical properties and a proper pore structure for bone repair applications. The weight loss percentage of both poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite and poly(lactic-co-glycolic acid) scaffolds demonstrated a monotonic trend with increasing degradation time, that is, the incorporation of nano-fluorhydroxyapatite into polymeric scaffold could lead to weight loss in comparison with that of pure poly(lactic-co-glycolic acid). The pH change for composite scaffolds showed that there was a slight decrease until 2weeks after immersion in simulated body fluid, followed by a significant increase in the pH of simulated body fluid without a scaffold at the end of immersion time. The mechanical properties of composite scaffold were higher than that of poly(lactic-co-glycolic acid) scaffold at total time of incubation in simulated body fluid; however, it should be noted that the incorporation of nano-fluorhydroxyapatite into composite scaffold leads to decline in the relatively significant mechanical strength and modulus during hydrolytic degradation. In addition, MTT assay and alkaline phosphatase activity results defined that a general trend of increasing cell viability was seen for poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite scaffold sintered by time when compared to control group. Eventually, experimental results exhibited poly(lactic-co-glycolic acid)/nano-fluorhydroxyapatite microsphere-sintered scaffold is a promising scaffold for bone repair.
机译:本研究的目的是研究利用烧结方法研究由聚(乳酸二乙醇酸)/纳米氟羟基磷灰石微球制成的三维多孔复合支架的降解和生物学特性,用于潜在骨组织工程。我们以前的实验结果表明,聚(乳酸二乙醇酸)/纳米氟羟基磷灰石复合支架具有4:1的比例为90℃,具有最大的机械性能和适当的骨修复应用的孔隙结构。聚(乳酸二乙醇酸)/纳米氟羟基磷灰石和聚(乳酸 - 共乙醇酸)支架的体重减轻百分比证明了单调的趋势随着较高的降解时间,即纳米氟羟基磷灰石掺入聚合物中与纯聚(乳酸二乙醇酸)相比,支架可能导致体重减轻。复合支架的pH变化表明,在模拟体液中浸泡后2周的略微减少,然后在浸入时间结束时没有支架的模拟体液的pH值显着增加。复合支架的机械性能在模拟体液中孵育的总时间高于聚(乳酸二乙醇酸)支架的机械性能;然而,应该注意的是,将纳米氟羟基磷灰石掺入复合支架上导致水解降解期间相对显着的机械强度和模量的下降。此外,MTT测定和碱性磷酸酶活性结果定义,与对照组相比,通过时间(乳酸二乙醇酸)/纳米氟羟基磷灰石支架,看见,随着对照组的时间烧结的聚(乳酸二乙醇酸)/纳米氟羟基磷灰石支架。最终,实验结果表明聚(乳酸 - 共乙醇酸)/纳米氟羟基磷灰石微球烧结的支架是骨骼修复的有前途的支架。

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