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用于骨软骨构建体混合生物制造的含同种异体干细胞的具有细胞诱导性的软骨生成和成骨水凝胶微球的3D生物组装体。

3D bioassembly of cell-instructive chondrogenic and osteogenic hydrogel microspheres containing allogeneic stem cells for hybrid biofabrication of osteochondral constructs.

作者信息

Cui Xiaolin, Alcala-Orozco Cesar R, Baer Kenzie, Li Jun, Murphy Caroline A, Durham Mitch, Lindberg Gabriella, Hooper Gary J, Lim Khoon S, Woodfield Tim B F

机构信息

Christchurch Regenerative Medicine & Tissue Engineering Group (CReaTE), Department of Orthopaedic Surgery and Musculoskeletal Medicine, University of Otago, Christchurch 8011, New Zealand.

Department of Bone and Joint, The First Affiliated Hospital of Dalian Medical University, Dalian 116000, Liaoning, People's Republic of China.

出版信息

Biofabrication. 2022 Apr 12;14(3). doi: 10.1088/1758-5090/ac61a3.

DOI:10.1088/1758-5090/ac61a3
PMID:35344942
Abstract

Recently developed modular bioassembly techniques hold tremendous potential in tissue engineering and regenerative medicine, due to their ability to recreate the complex microarchitecture of native tissue. Here, we developed a novel approach to fabricate hybrid tissue-engineered constructs adopting high-throughput microfluidic and 3D bioassembly strategies. Osteochondral tissue fabrication was adopted as an example in this study, because of the challenges in fabricating load bearing osteochondral tissue constructs with phenotypically distinct zonal architecture. By developing cell-instructive chondrogenic and osteogenic bioink microsphere modules in high-throughput, together with precise manipulation of the 3D bioassembly process, we successfully fabricated hybrid engineered osteochondral tissuewith integrated but distinct cartilage and bone layers. Furthermore, by encapsulating allogeneic umbilical cord blood-derived mesenchymal stromal cells, and demonstrating chondrogenic and osteogenic differentiation, the hybrid biofabrication of hydrogel microspheres in this 3D bioassembly model offers potential for an off-the-shelf, single-surgery strategy for osteochondral tissue repair.

摘要

最近开发的模块化生物组装技术在组织工程和再生医学中具有巨大潜力,因为它们能够重现天然组织的复杂微观结构。在此,我们开发了一种采用高通量微流体和3D生物组装策略制造混合组织工程构建体的新方法。本研究以骨软骨组织制造为例,因为制造具有表型不同的分层结构的承重骨软骨组织构建体存在挑战。通过高通量开发具有细胞诱导性的软骨生成和成骨生物墨水微球模块,以及对3D生物组装过程的精确操控,我们成功制造出了具有整合但不同的软骨和骨层的混合工程化骨软骨组织。此外,通过封装同种异体脐带血来源的间充质基质细胞,并证明其软骨生成和成骨分化,这种3D生物组装模型中凝胶微球的混合生物制造为骨软骨组织修复提供了一种即用型、单次手术策略的潜力。

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