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In vitro biocompatibility study of biodegradable polyester scaffolds constructed using Fused Deposition Modeling (FDM)

机译:使用熔融沉积建模(FDM)构建的可生物降解聚酯支架的体外生物相容性研究

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The growing interest in tissue engineering has stimulated the research of biomaterials that can be used as cellular supports and/or scaffolds to subsequently stimulate and/or regenerate tissues. Based on this premise, biodegradable polyesters: amorphous Poly (Lactic-acid) (PLA) and semi-crystalline Poly(ε-caprolactone) (PCL), were used for manufacturing 3D scaffolds. These structures were designed using a a free software called Rhinoceros version 4.0. The software parameters considered for the design of these structures were: the distance between adjacent filaments, number of layers and the filaments orientation between layers. Through this information, and using PLA and PCL filaments (with diameters 2mm ≤ o ≤ 3 mm, obtained by extrusion), scaffolds were fabricated using Fused Deposition Modeling (FDM), a rapid prototyping technology. The Morphology of all structures was observed by Scanning Electron Microscopy (SEM). To assess biocompatibility, human fibroblasts were seeded on these scaffolds, and cultured for 4 and 8 days. The biocompatibility was assessed by a metabolic activity assay based on MTT, where an increase in metabolic activity is interpreted as cell proliferation. The results led to appreciate the interaction of fibroblast cultures with these materials, with a noticeable increase in the cellular metabolism indicative of the material's cytocompatibility and its capacity to support proliferation, making them strong candidates for tissue engineering.
机译:在组织工程中越来越令人兴趣刺激了生物材料的研究,这些生物材料可以用作细胞载体和/或支架以随后刺激和/或再生组织。基于该前提,可生物降解的聚酯:无定形聚(乳酸)(PLA)和半结晶多(ε-己内酯)(PCL)用于制造3D支架。这些结构使用一个名为Rhinoceros 4.0版的自由软件设计。考虑了这些结构的设计的软件参数是:相邻长丝之间的距离,层数和层之间的细丝取向。通过该信息,使用PLA和PCL长丝(通过挤出获得的直径≤1mm≤1mm),使用熔融沉积建模(FDM),一种快速的原型设计技术制造支架。通过扫描电子显微镜(SEM)观察所有结构的形态。为了评估生物相容性,将人的成纤维细胞接种在这些支架上,并培养4和8天。通过基于MTT的代谢活性测定评估生物相容性,其中代谢活性的增加被解释为细胞增殖。结果导致了培养成纤维细胞培养物与这些材料的相互作用,具有明显的细胞代谢的增加,这表明材料的细胞相容性及其支持增殖的能力,使其成为组织工程的强烈候选者。

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