Santos-Beato Patricia, Midha Swati, Pitsillides Andrew A, Miller Aline, Torii Ryo, Kalaskar Deepak M
Biochemical Engineering Department, University College London, London, UK.
Kennedy Institute of Rheumatology, University of Oxford, Oxford, UK.
J Tissue Eng. 2022 Nov 6;13:20417314221133480. doi: 10.1177/20417314221133480. eCollection 2022 Jan-Dec.
Multiple prevalent diseases, such as osteoarthritis (OA), for which there is no cure or full understanding, affect the osteochondral unit; a complex interface tissue whose architecture, mechanical nature and physiological characteristics are still yet to be successfully reproduced in vitro. Although there have been multiple tissue engineering-based approaches to recapitulate the three dimensional (3D) structural complexity of the osteochondral unit, there are various aspects that still need to be improved. This review presents the different pre-requisites necessary to develop a human osteochondral unit construct and focuses on 3D bioprinting as a promising manufacturing technique. Examples of 3D bioprinted osteochondral tissues are reviewed, focusing on the most used bioinks, chosen cell types and growth factors. Further information regarding the applications of these 3D bioprinted tissues in the fields of disease modelling, drug testing and implantation is presented. Finally, special attention is given to the limitations that currently hold back these 3D bioprinted tissues from being used as models to investigate diseases such as OA. Information regarding improvements needed in bioink development, bioreactor use, vascularisation and inclusion of additional tissues to further complete an OA disease model, are presented. Overall, this review gives an overview of the evolution in 3D bioprinting of the osteochondral unit and its applications, as well as further illustrating limitations and improvements that could be performed explicitly for disease modelling.
多种常见疾病,如骨关节炎(OA),目前尚无治愈方法,人们对其也未完全了解,这些疾病会影响骨软骨单元;骨软骨单元是一种复杂的界面组织,其结构、力学性质和生理特征仍有待在体外成功再现。尽管已经有多种基于组织工程的方法来重现骨软骨单元的三维(3D)结构复杂性,但仍有多个方面需要改进。本文综述了构建人体骨软骨单元所需的不同先决条件,并重点介绍了3D生物打印这一有前景的制造技术。对3D生物打印的骨软骨组织实例进行了综述,重点介绍了最常用的生物墨水、所选的细胞类型和生长因子。还介绍了这些3D生物打印组织在疾病建模、药物测试和植入领域的应用的更多信息。最后,特别关注了目前阻碍这些3D生物打印组织用作研究OA等疾病模型的局限性。介绍了生物墨水开发、生物反应器使用、血管化以及纳入其他组织以进一步完善OA疾病模型所需改进的信息。总体而言,本文综述了骨软骨单元3D生物打印的发展及其应用,同时进一步阐述了可针对疾病建模明确进行的局限性和改进。