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一种 3D 生物打印系统,可用于生成具有结构完整性的人体尺度组织构建体。

A 3D bioprinting system to produce human-scale tissue constructs with structural integrity.

机构信息

Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Medical Center Boulevard, Winston-Salem, North Carolina, USA.

出版信息

Nat Biotechnol. 2016 Mar;34(3):312-9. doi: 10.1038/nbt.3413. Epub 2016 Feb 15.

Abstract

A challenge for tissue engineering is producing three-dimensional (3D), vascularized cellular constructs of clinically relevant size, shape and structural integrity. We present an integrated tissue-organ printer (ITOP) that can fabricate stable, human-scale tissue constructs of any shape. Mechanical stability is achieved by printing cell-laden hydrogels together with biodegradable polymers in integrated patterns and anchored on sacrificial hydrogels. The correct shape of the tissue construct is achieved by representing clinical imaging data as a computer model of the anatomical defect and translating the model into a program that controls the motions of the printer nozzles, which dispense cells to discrete locations. The incorporation of microchannels into the tissue constructs facilitates diffusion of nutrients to printed cells, thereby overcoming the diffusion limit of 100-200 μm for cell survival in engineered tissues. We demonstrate capabilities of the ITOP by fabricating mandible and calvarial bone, cartilage and skeletal muscle. Future development of the ITOP is being directed to the production of tissues for human applications and to the building of more complex tissues and solid organs.

摘要

组织工程面临的一个挑战是如何制造具有临床相关尺寸、形状和结构完整性的三维(3D)、血管化细胞构建体。我们提出了一种集成组织器官打印机(ITOP),它可以制造任何形状的稳定的、人体规模的组织构建体。通过将细胞负载水凝胶与可生物降解聚合物以集成的图案打印在一起,并固定在牺牲水凝胶上,实现了机械稳定性。通过将临床成像数据表示为解剖缺陷的计算机模型,并将模型转换为控制打印机喷嘴运动的程序,从而实现组织构建体的正确形状,该程序将细胞分配到离散的位置。在组织构建体中加入微通道有助于向打印细胞扩散营养物质,从而克服了工程组织中细胞存活的扩散极限为 100-200μm。我们通过制造下颌骨和颅骨、软骨和骨骼肌来展示 ITOP 的功能。ITOP 的未来发展方向是生产用于人体应用的组织,并构建更复杂的组织和实体器官。

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