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Hybrid microscaffold-based 3D bioprinting of multi-cellular constructs with high compressive strength: A new biofabrication strategy

机译:基于混合微支架的具有高抗压强度的多细胞构建体的3D生物打印:一种新的生物制造策略

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摘要

A hybrid 3D bioprinting approach using porous microscaffolds and extrusion-based printing method is presented. Bioink constitutes of cell-laden poly(D,L-lactic-co-glycolic acid) (PLGA) porous microspheres with thin encapsulation of agarose-collagen composite hydrogel (AC hydrogel). Highly porous microspheres enable cells to adhere and proliferate before printing. Meanwhile, AC hydrogel allows a smooth delivery of cell-laden microspheres (CLMs), with immediate gelation of construct upon printing on cold build platform. Collagen fibrils were formed in the AC hydrogel during culture at body temperature, improving the cell affinity and spreading compared to pure agarose hydrogel. Cells were proven to proliferate in the bioink and the bioprinted construct. High cell viability up to 14 days was observed. The compressive strength of the bioink is more than 100 times superior to those of pure AC hydrogel. A potential alternative in tissue engineering of tissue replacements and biological models is made possible by combining the advantages of the conventional solid scaffolds with the new 3D bioprinting technology.
机译:提出了一种使用多孔微支架和基于挤出的打印方法的混合3D生物打印方法。 Bioink由充满细胞的聚(D,L-乳酸-乙醇酸共聚物)(PLGA)多孔微球组成,其中琼脂糖-胶原复合水凝胶(AC水凝胶)的包封较薄。高度多孔的微球使细胞能够在印刷前粘附并增殖。同时,AC水凝胶可平稳递送细胞内微球(CLM),并在冷构建平台上印刷后立即使构建体胶凝。胶原蛋白原纤维在体温培养过程中在AC水凝胶中形成,与纯琼脂糖水凝胶相比,可改善细胞亲和力和铺展性。事实证明,细胞可以在生物墨水和生物印刷的构建物中增殖。观察到长达14天的高细胞活力。生物墨水的抗压强度是纯AC水凝胶的抗压强度的100倍以上。通过将常规固体支架的优势与新的3D生物打印技术相结合,可以在组织工程中进行组织替代和生物学模型的潜在替代选择。

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