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首页> 外文期刊>Journal of biomedical materials research, Part A >Influence of internal pore architecture on biological and mechanical properties of three-dimensional fiber deposited scaffolds for bone regeneration
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Influence of internal pore architecture on biological and mechanical properties of three-dimensional fiber deposited scaffolds for bone regeneration

机译:内部孔结构对三维纤维沉积骨再生支架生物力学性能的影响

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Fused deposition modeling has been used to fabricate three-dimensional (3D) scaffolds for tissue engineering applications, because it allows to tailor their pore network. Despite the proven flexibility in doing so, a limited amount of studies have been performed to evaluate whether specific pore shapes have an influence on cell activity and tissue formation. Our study aimed at investigating the influence of internal pore architecture on the biological and mechanical properties of 3D scaffolds seeded with mesenchymal stromal cells. Polycaprolactone scaffolds with six different geometries were fabricated. The 3D samples were manufactured with different lay-down pattern of the fibers by varying the layer deposition angle from 0 degrees/15 degrees/30 degrees, to 0 degrees/30 degrees/60 degrees, 0 degrees/45 degrees/90 degrees, 0 degrees/60 degrees/120 degrees, 0 degrees/75 degrees/150 degrees, and 0 degrees/90 degrees/180 degrees. The scaffolds were investigated by scanning electron microscopy and micro computed tomographical analysis and displayed a fully interconnected pore network. Cell proliferation and differentiation toward the osteogenic lineage were evaluated by DNA, alkaline phosphatase activity, and polymerase chain reaction. The obtained scaffolds had structures with open porosity (50%-60%) and interconnected pores ranging from 380 to 400 mu m. Changing the angle deposition affected significantly the mechanical properties of the scaffolds. With increasing the angle deposition between successive layers, the elastic modulus increased as well. Cellular studies also showed influence of the internal architecture on cell adhesion and proliferation within the 3D construct, yet limited influence on cell differentiation was observed. (c) 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 104A: 991-1001, 2016.
机译:熔融沉积建模已被用于制造用于组织工程应用的三维(3D)支架,因为它可以定制其孔网络。尽管这样做具有灵活性,但已进行了有限的研究来评估特定的孔形状是否对细胞活性和组织形成有影响。我们的研究旨在调查内部孔结构对植入间充质基质细胞的3D支架的生物学和机械性能的影响。制作了具有六种不同几何形状的聚己内酯支架。通过将层沉积角度从0度/ 15度/ 30度更改为0度/ 30度/ 60度,0度/ 45度/ 90度,0来制作具有不同纤维沉积图案的3D样品度/ 60度/ 120度,0度/ 75度/ 150度和0度/ 90度/ 180度。通过扫描电子显微镜和显微计算机断层扫描分析研究了支架,并显示了完全互连的孔网络。通过DNA,碱性磷酸酶活性和聚合酶链反应评估细胞向成骨细胞系的增殖和分化。所获得的支架具有开孔率(50%-60%)和相互连通的孔的范围为380至400μm的结构。改变角度沉积会显着影响支架的机械性能。随着连续层之间的角度沉积增加,弹性模量也增加。细胞研究还显示了内部结构对3D构造内细胞粘附和增殖的影响,但观察到对细胞分化的影响有限。 (c)2016 Wiley Periodicals,Inc.J Biomed Mater Res Part A:104A:991-1001,2016年。

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