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Bilayer Poly(Lactic-co-glycolic acid)/Nano-Hydroxyapatite Membrane with Barrier Function and Osteogenesis Promotion for Guided Bone Regeneration

机译:具有屏障功能和成骨作用促进引导骨再生的双层聚乳酸-乙醇酸/纳米羟基磷灰石膜

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Guided bone regeneration (GBR) is one such treatment that reconstructs neo-bone tissue by using a barrier membrane to prevent the invasion of soft tissue and to create a space for guiding new bone growth into the bone defect. Herein, we report a novel functionally graded bilayer membrane (FGBM) for GBR application. To fabricate the novel membrane, the composites of poly(lactic-co-glycolic acid) and nano-hydroxyapatite were prepared by phase inversion for the dense layer and by electrospinning for another porous layer, and their corresponding properties were evaluated including surface morphology, mechanics, degradability, cell barrier function, and in vitro osteogenic bioactivity. The results showed that PLGA with 5% nHA in dense layer could meet the requirement of mechanical strength and have excellent barrier function even on condition of post-degradation. Furthermore, PLGA with 30% nHA in porous layer could achieve the good physical and chemical properties. In addition, 30% nHA incorporation would enhance the in vitro mineralization, and have superior capabilities of cell adhesion, proliferation and differentiation compared to other groups. Therefore, the designed FGBM could potentially serve as a barrier for preferential tissue ingrowth and achieve a desirable therapeutic result for bone tissue regeneration.
机译:引导骨再生(GBR)是一种这样的治疗方法,它通过使用屏障膜来重建新骨组织,以防止软组织的侵入并为将新的骨骼生长引导到骨缺损中创造空间。在此,我们报告了一种用于GBR应用的新型功能梯度双层膜(FGBM)。为了制备新型膜,通过相转化致密层和电纺丝形成另一个多孔层,制备了聚乳酸-乙醇酸和纳米羟基磷灰石的复合材料,并评估了它们的相应性能,包括表面形态,力学性能,可降解性,细胞屏障功能和体外成骨生物活性。结果表明,致密层中nHA含量为5%的PLGA可以满足机械强度要求,即使在降解后也具有优异的阻隔功能。此外,多孔层中nHA含量为30%的PLGA可以获得良好的物理和化学性能。此外,与其他组相比,掺入30%的nHA可以增强体外矿化作用,并具有优异的细胞粘附,增殖和分化能力。因此,设计的FGBM可能会成为优先组织向内生长的屏障,并为骨组织再生获得理想的治疗效果。

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