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用于3D生物打印具有高刚度的复杂独立结构的先进生物墨水。

Advanced Bioink for 3D Bioprinting of Complex Free-Standing Structures with High Stiffness.

作者信息

Gu Yawei, Schwarz Benjamin, Forget Aurelien, Barbero Andrea, Martin Ivan, Shastri V Prasad

机构信息

Institute for Macromolecular Chemistry, University of Freiburg, 79104 Freiburg, Germany.

Tissue Engineering Laboratory, Department of Biomedicine, University Hospital Basel, University of Basel, 4031 Basel, Switzerland.

出版信息

Bioengineering (Basel). 2020 Nov 7;7(4):141. doi: 10.3390/bioengineering7040141.

Abstract

One of the challenges in 3D-bioprinting is the realization of complex, volumetrically defined structures, that are also anatomically accurate and relevant. Towards this end, in this study we report the development and validation of a carboxylated agarose (CA)-based bioink that is amenable to 3D printing of free-standing structures with high stiffness at physiological temperature using microextrusion printing without the need for a fugitive phase or post-processing or support material (FRESH). By blending CA with negligible amounts of native agarose (NA) a bioink formulation (CANA) which is suitable for printing with nozzles of varying internal diameters under ideal pneumatic pressure was developed. The ability of the CANA ink to exhibit reproducible sol-gel transition at physiological temperature of 37 °C was established through rigorous characterization of the thermal behavior, and rheological properties. Using a customized bioprinter equipped with temperature-controlled nozzle and print bed, high-aspect ratio objects possessing anatomically-relevant curvature and architecture have been printed with high print reproducibility and dimension fidelity. Objects printed with CANA bioink were found to be structurally stable over a wide temperature range of 4 °C to 37 °C, and exhibited robust layer-to-layer bonding and integration, with evenly stratified structures, and a porous interior that is conducive to fluid transport. This exceptional layer-to-layer fusion (bonding) afforded by the CANA bioink during the print obviated the need for post-processing to stabilize printed structures. As a result, this novel CANA bioink is capable of yielding large (5-10 mm tall) free-standing objects ranging from simple tall cylinders, hemispheres, bifurcated 'Y'-shaped and 'S'-shaped hollow tubes, and cylinders with compartments without the need for support and/or a fugitive phase. Studies with human nasal chondrocytes showed that the CANA bioink is amenable to the incorporation of high density of cells (30 million/mL) without impact on printability. Furthermore, printed cells showed high viability and underwent mitosis which is necessary for promoting remodeling processes. The ability to print complex structures with high cell densities, combined with excellent cell and tissue biocompatibility of CA bodes well for the exploitation of CANA bioinks as a versatile 3D-bioprinting platform for the clinical translation of regenerative paradigms.

摘要

3D生物打印面临的挑战之一是如何实现复杂的、具有精确体积定义的结构,这些结构在解剖学上也要准确且相关。为此,在本研究中,我们报告了一种基于羧化琼脂糖(CA)的生物墨水的开发与验证。这种生物墨水适用于在生理温度下通过微挤压打印3D打印独立结构,且具有高刚度,无需牺牲相、后处理或支撑材料(FRESH)。通过将CA与少量天然琼脂糖(NA)混合,开发出了一种生物墨水配方(CANA),该配方适合在理想气压下使用不同内径的喷嘴进行打印。通过对热行为和流变特性的严格表征,确定了CANA墨水在37℃生理温度下具有可重复的溶胶-凝胶转变能力。使用配备有温度控制喷嘴和打印床的定制生物打印机,已打印出具有解剖学相关曲率和结构的高纵横比物体,打印重复性高且尺寸保真度好。发现用CANA生物墨水打印的物体在4℃至37℃的宽温度范围内结构稳定,并表现出强大的层间粘结和整合,具有均匀分层的结构以及有利于流体传输的多孔内部。CANA生物墨水在打印过程中提供的这种出色的层间融合(粘结)消除了对后处理以稳定打印结构的需求。因此,这种新型CANA生物墨水能够生产大型(5-10毫米高)独立物体,包括简单的高圆柱体、半球体、分叉的“Y”形和“S”形空心管以及带有隔室的圆柱体,而无需支撑和/或牺牲相。对人鼻软骨细胞的研究表明,CANA生物墨水适合掺入高密度细胞(3000万/毫升)而不影响可打印性。此外,打印的细胞显示出高活力并进行有丝分裂,这对促进重塑过程是必要的。以高细胞密度打印复杂结构的能力,再加上CA出色的细胞和组织生物相容性,预示着CANA生物墨水作为一种通用的3D生物打印平台在再生模式临床转化中的良好应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3954/7711998/cdb6f801b0a5/bioengineering-07-00141-g001.jpg

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