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3D-Printing of Microfibrous Porous Scaffolds Based on Hybrid Approaches for Bone Tissue Engineering

机译:基于混合方法的骨组织工程微纤维多孔支架的3D打印

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摘要

In recent times, tremendous progress has been evidenced by the advancements in various methods of generating three-dimensional (3D) porous scaffolds. However, the applicability of most of the traditional approaches intended for generating these biomimetic scaffolds is limited due to poor resolution and strict requirements in choosing materials. In this work, we fabricated 3D porous scaffolds based on the composite inks of gelatin (Gel), nano-hydroxyapatite (n-HA), and poly(lactide-co-glycolide) (PLGA) using an innovative hybrid strategy based on 3D printing and freeze-drying technologies for bone tissue engineering. Initially, the PLGA scaffolds were printed using the 3D printing method, and they were then coated with the Gel-HA complex, yielding the Gel-HA/PLGA scaffolds. These Gel-HA/PLGA scaffolds with exceptional biodegradation, mechanical properties, and biocompatibility have enabled osteoblasts (MC3T3-E1) for their convenient adhesion as a layer and have efficiently promoted their growth, as well as differentiation. We further demonstrated the bone growth by measuring the particular biomarkers that act as key players in the ossification process (i.e., alkaline phosphatase (ALP), osteocalcin (OC), and collagen type-I (COL-I)) and the total proteins of the MC3T3-E1 cells. We anticipate that the convenient generation of highly porous 3D scaffolds based on Gel-HA/PLGA fabricated through an innovative combinatorial approach of 3D printing technology and freeze-drying methods may undoubtedly find widespread applications in regenerative medicine.
机译:近年来,通过产生三维(3D)多孔支架的各种方法的进步已证明了巨大的进步。然而,由于较差的分辨率和选择材料的严格要求,旨在产生这些仿生支架的大多数传统方法的适用性受到限制。在这项工作中,我们使用基于3D打印的创新混合策略,基于明胶(Gel),纳米羟基磷灰石(n-HA)和聚(丙交酯-共-乙交酯)(PLGA)的复合油墨制造了3D多孔支架骨组织工程的冷冻干燥技术。最初,使用3D打印方法打印PLGA支架,然后将它们涂上Gel / n-HA复合物,得到Gel / n-HA / PLGA支架。这些具有出色的生物降解性,机械性能和生物相容性的Gel / n-HA / PLGA支架,使成骨细胞(MC3T3-E1)可以方便地粘附成一层,并有效地促进了它们的生长和分化。我们通过测量在骨化过程中起关键作用的特定生物标志物(即碱性磷酸酶(ALP),骨钙蛋白(OC)和I型胶原蛋白(COL-1))和总蛋白来进一步证明骨骼的生长MC3T3-E1细胞。我们预期通过3D打印技术和冷冻干燥方法的创新组合方法制造的,基于Gel / n-HA / PLGA的高孔隙度3D支架的方便生产无疑会在再生医学中找到广泛的应用。

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