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Three dimensional printed macroporous polylactic acid/hydroxyapatite composite scaffolds for promoting bone formation in a critical-size rat calvarial defect model

机译:三维打印的大孔聚乳酸/羟基磷灰石复合支架用于在关键尺寸大鼠颅盖骨缺损模型中促进骨形成

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摘要

We have explored the applicability of printed scaffold by comparing osteogenic ability and biodegradation property of three resorbable biomaterials. A polylactic acid/hydroxyapatite (PLA/HA) composite with a pore size of 500 μm and 60% porosity was fabricated by three-dimensional printing. Three-dimensional printed PLA/HA, β-tricalcium phosphate (β-TCP) and partially demineralized bone matrix (DBM) seeded with bone marrow stromal cells (BMSCs) were evaluated by cell adhesion, proliferation, alkaline phosphatase activity and osteogenic gene expression of osteopontin (OPN) and collagen type I (COL-1). Moreover, the biocompatibility, bone repairing capacity and degradation in three different bone substitute materials were estimated using a critical-size rat calvarial defect model in vivo. The defects were evaluated by micro-computed tomography and histological analysis at four and eight weeks after surgery, respectively. The results showed that each of the studied scaffolds had its own specific merits and drawbacks. Three-dimensional printed PLA/HA scaffolds possessed good biocompatibility and stimulated BMSC cell proliferation and differentiation to osteogenic cells. The outcomes in vivo revealed that 3D printed PLA/HA scaffolds had good osteogenic capability and biodegradation activity with no difference in inflammation reaction. Therefore, 3D printed PLA/HA scaffolds have potential applications in bone tissue engineering and may be used as graft substitutes in reconstructive surgery.
机译:通过比较三种可吸收生物材料的成骨能力和生物降解特性,我们探索了印刷支架的适用性。通过三维印刷制备了孔径为500μm,孔隙率为60%的聚乳酸/羟基磷灰石(PLA / HA)复合材料。通过细胞粘附,增殖,碱性磷酸酶活性和成骨基因表达来评估接种了骨髓基质细胞(BMSCs)的三维印刷PLA / HA,β-磷酸三钙(β-TCP)和部分去矿质骨基质(DBM)。骨桥蛋白(OPN)和I型胶原(COL-1)。此外,使用体内临界大小的大鼠颅骨缺损模型评估了三种不同骨替代材料的生物相容性,骨修复能力和降解能力。分别在术后四周和八周通过显微计算机断层扫描和组织学分析评估缺陷。结果表明,每种研究的支架都有其独特的优缺点。三维印刷的PLA / HA支架具有良好的生物相容性,并刺激BMSC细胞增殖和分化为成骨细胞。体内结果表明3D打印的PLA / HA支架具有良好的成骨能力和生物降解活性,炎症反应无差异。因此,3D打印的PLA / HA支架在骨组织工程中具有潜在的应用,并可在重建手术中用作移植物的替代品。

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