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Multiscale porosity in a 3D printed gellan-gelatin composite for bone tissue engineering

机译:用于骨组织工程的3D印刷的Gellan-Gelatin复合材料中的多尺度孔隙度

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The aim of this work was to develop a complex-shaped gelatin-gellan composite scaffold with multiscale porosity using a combination of cryogenic 3D printing and lyophilization for bone tissue engineering. Cryogenic 3D printing was used to fabricate a low-concentration composite of complex-shaped macroporous gelatin-gellan structures with a pore size of 919 +/- 89 mu m. This was followed by lyophilization to introduce micropores of size 20-250 mu m and nanometre-level surface functionalities, thus achieving a hierarchical porous structure. These multiscale porous scaffolds (GMu) were compared with two other types of scaffolds having only microporosity (GMi) and macroporosity (GMa) with regard to their physical and in vitro biological properties. GMu scaffolds were found to be better than GMi and GMa in terms of swelling percentage, degradation rate, uniform pore distribution, cellular infiltration, attachment, proliferation, protein generation and mineralization. In conclusion, we have developed a controlled hierarchical bone-like structure, biomimicking natural bone, together with a reproducible process of manufacture by coupling soft hydrogel 3D printing with lyophilization. This enables the development of complex-shaped patient-specific 3D printed hydrogel scaffolds with enhanced performance in vitro and great potential in the fields of tissue engineering, bioprinting and regenerative medicine.
机译:这项工作的目的是使用低温3D印刷和骨组织工程冻干的组合,使用多尺度孔隙发育复杂的明胶-Gellan复合支架。使用低温3D印刷用于制造具有919 +/-89μm的孔径的复合形大孔明胶 - 胶原结构的低浓度复合物。然后通过冻干引入尺寸20-250μm和纳米水平表面官能团的微孔,从而实现分层多孔结构。将这些多尺度多孔支架(GMU)与另外两种类型的支架进行比较,其具有微孔(GMI)和大孔(GMA)关于其物理和体外生物学性质。在溶胀百分比,降解率,孔隙分布,细胞浸润,附着,增殖,蛋白质产生和矿化方面,发现GMU支架比GMI和GMA更好。总之,我们已经开发了一种受控的等级骨状结构,通过通过冻干耦合软水凝胶3D印刷和可再现的制造方法。这使得能够在组织工程,生物印刷和再生医学领域的体外具有增强的性能和巨大潜力的复杂形状的患者特异性3D印刷水凝胶支架。

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