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Characterization and Preliminary Biological Evaluation of 3D-Printed Porous Scaffolds for Engineering Bone Tissues

机译:用于工程骨组织的3D打印多孔支架的表征和初步生物学评估

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摘要

Some basic requirements of bone tissue engineering include cells derived from bone tissues, three-dimensional (3D) scaffold materials, and osteogenic factors. In this framework, the critical architecture of the scaffolds plays a crucial role to support and assist the adhesion of the cells, and the subsequent tissue repairs. However, numerous traditional methods suffer from certain drawbacks, such as multi-step preparation, poor reproducibility, high complexity, difficulty in controlling the porous architectures, the shape of the scaffolds, and the existence of solvent residue, which limits their applicability. In this work, we fabricated innovative poly(lactic-co-glycolic acid) (PLGA) porous scaffolds, using 3D-printing technology, to overcome the shortcomings of traditional approaches. In addition, the printing parameters were critically optimized for obtaining scaffolds with normal morphology, appropriate porous architectures, and sufficient mechanical properties, for the accommodation of the bone cells. Various evaluation studies, including the exploration of mechanical properties (compressive strength and yield stress) for different thicknesses, and change of structure (printing angle) and porosity, were performed. Particularly, the degradation rate of the 3D scaffolds, printed in the optimized conditions, in the presence of hydrolytic, as well as enzymatic conditions were investigated. Their assessments were evaluated using the thermal gravimetric analyzer (TGA), differential scanning calorimetry (DSC), and gel permeation chromatography (GPC). These porous scaffolds, with their biocompatibility, biodegradation ability, and mechanical properties, have enabled the embryonic osteoblast precursor cells (MC3T3-E1), to adhere and proliferate in the porous architectures, with increasing time. The generation of highly porous 3D scaffolds, based on 3D printing technology, and their critical evaluation, through various investigations, may undoubtedly provide a reference for further investigations and guide critical optimization of scaffold fabrication, for tissue regeneration.
机译:骨组织工程学的一些基本要求包括源自骨组织的细胞,三维(3D)支架材料和成骨因子。在此框架中,支架的关键结构在支持和协助细胞粘附以及随后的组织修复中起着关键作用。然而,许多传统方法具有某些缺点,例如多步骤制备,可重复性差,复杂性高,难以控制多孔结构,支架的形状以及溶剂残留物的存在,这限制了它们的适用性。在这项工作中,我们使用3D打印技术制造了创新的聚乳酸-乙醇酸(PLGA)多孔支架,以克服传统方法的缺点。另外,为了获得具有正常形态,适当的多孔结构和足够的机械性能的支架,可以严格地优化印刷参数,以容纳骨细胞。进行了各种评估研究,包括探索不同厚度的机械性能(抗压强度和屈服应力)以及结构(印刷角度)和孔隙率的变化。特别地,研究了在存在水解条件和酶促条件下在最佳条件下印刷的3D支架的降解率。使用热重分析仪(TGA),差示扫描量热法(DSC)和凝胶渗透色谱法(GPC)对他们的评估进行了评估。这些多孔支架具有生物相容性,生物降解能力和机械性能,使得胚胎成骨细胞前体细胞(MC3T3-E1)能够随着时间的增长而在多孔结构中粘附并增殖。基于3D打印技术的高度多孔3D支架的产生及其关键评估,通过各种研究,无疑可以为进一步研究提供参考,并指导支架再生的关键优化用于组织再生。

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