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首页> 外文期刊>Journal of biomaterials applications >Preparation and properties of poly(lactide-co-glycolide) (PLGA)/ nano-hydroxyapatite (NHA) scaffolds by thermally induced phase separation and rabbit MSCs culture on scaffolds.
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Preparation and properties of poly(lactide-co-glycolide) (PLGA)/ nano-hydroxyapatite (NHA) scaffolds by thermally induced phase separation and rabbit MSCs culture on scaffolds.

机译:通过热诱导相分离和兔MSCs在支架上的培养,制备了丙交酯-共-乙交酯(PLGA)/纳米羟基磷灰石(NHA)支架。

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摘要

Biodegradable polymer/bioceramic composites scaffold can overcome the limitation of conventional ceramic bone substitutes such as brittleness and difficulty in shaping. To better mimic the mineral component and the microstructure of natural bone, novel nano-hydroxyapatite (NHA)/polymer composite scaffolds with high porosity and well-controlled pore architectures as well as high exposure of the bioactive ceramics to the scaffold surface is developed for efficient bone tissue engineering. In this article, regular and highly interconnected porous poly(lactide-co-glycolide) (PLGA)/NHA scaffolds are fabricated by thermally induced phase separation technique. The effects of solvent composition, polymer concentration, coarsening temperature, and coarsening time as well as NHA content on the micro-morphology, mechanical properties of the PLGA/NHA scaffolds are investigated. The results show that pore size of the PLGA/NHA scaffolds decrease with the increase of PLGA concentration and NHA content. The introduction of NHA greatly increase the mechanical properties and water absorption ability which greatly increase with the increase of NHA content. Mesenchymal stem cells are seeded and cultured in three-dimensional (3D) PLGA/NHA scaffolds to fabricate in vitro tissue engineering bone, which is investigated by adhesion rate, cell morphology, cell numbers, and alkaline phosphatase assay. The results display that the PLGA/NHA scaffolds exhibit significantly higher cell growth, alkaline phosphatase activity than PLGA scaffolds, especially the PLGA/NHA scaffolds with 10 wt.% NHA. The results suggest that the newly developed PLGA/NHA composite scaffolds may serve as an excellent 3D substrate for cell attachment and migration in bone tissue engineering.
机译:可生物降解的聚合物/生物陶瓷复合材料支架可以克服常规陶瓷骨替代物的局限性,例如脆性和成型困难。为了更好地模仿天然骨骼的矿物成分和微观结构,开发了具有高孔隙率和良好控制的孔结构以及生物活性陶瓷高度暴露于支架表面的新型纳米羟基磷灰石(NHA)/聚合物复合支架。骨组织工程。在本文中,通过热诱导相分离技术制备了规则且高度互连的多孔聚丙交酯-乙交酯共聚物(PLGA)/ NHA支架。研究了溶剂组成,聚合物浓度,粗化温度和粗化时间以及NHA含量对PLGA / NHA支架的微观形貌,力学性能的影响。结果表明,PLGA / NHA支架的孔径随PLGA浓度和NHA含量的增加而减小。 NHA的引入极大地提高了机械性能和吸水能力,而机械性能和吸水能力随着NHA含量的增加而大大增加。将间充质干细胞播种并在三维(3D)PLGA / NHA支架中培养,以制备体外组织工程骨,可通过粘附率,细胞形态,细胞数量和碱性磷酸酶测定法对其进行研究。结果显示,PLGA / NHA支架比PLGA支架,特别是具有10 wt。%NHA的PLGA / NHA支架,具有更高的细胞生长和碱性磷酸酶活性。结果表明,新开发的PLGA / NHA复合支架可以作为骨组织工程中细胞附着和迁移的出色3D基质。

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