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FABRICATION OF BIOMIMETIC SCAFFOLDS WITH WELL-DEFINED PORE GEOMETRY BY FUSED DEPOSITION MODELING

机译:通过熔合沉积模型建立具有明确孔几何的生物假架

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摘要

It is well established that the pore size and distribution affect the rate of cell migration and the extent of extracellular matrix formation. The objective of this work was to develop a process for fabrication of biodegradable and shape-specific polymeric scaffolds with well-defined pore geometry, functionalized with covalently attached bioactive peptides, for applications in tissue regeneration. We have used the Fused Deposition Modeling (FDM) RP technology to fabricate degradable and functional scaffolds with well-defined pore geometry. Computer aided design (CAD) using SolidWorks was used to create models of the cubic orthogonal geometry. The models were used to create the machine codes necessary to build the scaffolds with FDM with wax as the build material. A novel biodegradable in-situ crosslinkable macromer, poly(lactide-co-glycolide fumarate) or PLGF, mixed with reactive functional peptides was infused in the scaffold and allowed to crosslink. The scaffold was then immersed in a hydrocarbon solvent to remove the wax, leaving just the PLGF behind as the support material dissolved. The pore morphology of the PLGF scaffold was imaged with micro-computed tomography and scanning electron microscopy. Cellular function in the PLFG scaffolds with well-defined pore geometry was studied with bone marrow stromal cells isolated from rats. Results demonstrate that the scaffolds support homogeneous formation of mineralized tissue.
机译:公认的是,孔径和分布会影响细胞迁移的速度和细胞外基质形成的程度。这项工作的目的是开发一种具有可定义的孔几何形状的可生物降解的和形状特异性的聚合物支架的制造方法,该支架可通过共价连接的生物活性肽功能化,用于组织再生。我们已经使用熔融沉积建模(FDM)RP技术来制造具有明确孔几何形状的可降解和功能性支架。使用SolidWorks的计算机辅助设计(CAD)用于创建三次正交几何的模型。这些模型用于创建必要的机器代码,这些机器代码是使用FDM以蜡为构建材料构建脚手架的必要条件。将新型的可生物降解的原位交联的大分子单体,聚(丙交酯-共-乙交酯富马酸酯)或PLGF,与反应性功能肽混合,注入支架中并进行交联。然后将支架浸入碳氢化合物溶剂中以除去蜡,仅留下PLGF作为支撑材料溶解。用微计算机断层扫描和扫描电子显微镜对PLGF支架的孔形态进行成像。用从大鼠分离的骨髓基质细胞研究了具有明确定义的孔几何形状的PLFG支架中的细胞功能。结果表明支架支持矿化组织的均匀形成。

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