State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou, 310027, China.
Key Laboratory of 3D Printing Process and Equipment of Zhejiang Province, School of Mechanical Engineering, Zhejiang University, Hangzhou, 310027, China.
Small. 2018 Sep;14(39):e1802630. doi: 10.1002/smll.201802630. Epub 2018 Aug 21.
Hydrogel microspheroids are widely used in tissue engineering, such as injection therapy and 3D cell culture, and among which, heterogeneous microspheroids are drawing much attention as a promising tool to carry multiple cell types in separated phases. However, it is still a big challenge to fabricate heterogeneous microspheroids that can reconstruct built-up tissues' microarchitecture with excellent resolution and spatial organization in limited sizes. Here, a novel airflow-assisted 3D bioprinting method is reported, which can print versatile spiral microarchitectures inside the microspheroids, permitting one-step bioprinting of fascinating hydrogel structures, such as the spherical helix, rose, and saddle. A microfluidic nozzle is developed to improve the capability of intricate cell encapsulation with heterotypic contact. Complex structures, such as a rose, Tai chi pattern, and single cell line can be easily printed in spheroids. The theoretical model during printing is established and process parameters are systematically investigated. As a demonstration, a human multicellular organoid of spirally vascularized ossification is reconstructed with this method, which shows that it is a powerful tool to build mini tissues on microspheroids.
水凝胶微球广泛应用于组织工程,如注射治疗和 3D 细胞培养,其中,异质微球作为一种有前途的工具,能够将多种细胞类型分离在不同相中,引起了广泛关注。然而,制造能够以优异的分辨率和空间组织在有限尺寸内重建复杂组织微结构的异质微球仍然是一个巨大的挑战。在这里,报道了一种新颖的气流辅助 3D 生物打印方法,该方法可以在微球内部打印各种螺旋微结构,允许一步法生物打印迷人的水凝胶结构,如球形螺旋、玫瑰和鞍形。开发了一种微流控喷嘴以提高具有异型接触的复杂细胞包封能力。复杂结构,如玫瑰、太极图案和单细胞系,可以很容易地在微球中打印出来。建立了打印过程中的理论模型,并系统地研究了工艺参数。作为演示,使用该方法重建了具有螺旋血管化骨化的人类多细胞类器官,表明这是在微球上构建小型组织的有力工具。