Biomedical Engineering Research Center, Asan Institute for Life Sciences, Asan Medical Center, 88 Olympic-Ro 43 Gil, Songpa-Gu, Seoul, 05505, Republic of Korea.
Department of Convergence Medicine, University of Ulsan College of Medicine, 88 Olympic-Ro 43 Gil, Songpa-Gu, Seoul, 05505, Republic of Korea.
Tissue Eng Regen Med. 2020 Dec;17(6):731-745. doi: 10.1007/s13770-020-00245-9. Epub 2020 Mar 23.
Three-dimensional (3D) cell cultures with architectural and biomechanical properties similar to those of natural tissue have been the focus for generating liver tissue. Microarchitectural organization is believed to be crucial to hepatic function, and 3D cell culture technologies have enabled the construction of tissue-like microenvironments, thereby leading to remarkable progress in vitro models of human tissue and organs. Recently, to recapitulate the 3D architecture of tissues, spheroids and organoids have become widely accepted as new practical tools for 3D organ modeling. Moreover, the combination of bioengineering approach offers the promise to more accurately model the tissue microenvironment of human organs. Indeed, the employment of sophisticated bioengineered liver models show long-term viability and functional enhancements in biochemical parameters and disease-orient outcome.
Various 3D in vitro liver models have been proposed as a new generation of liver medicine. Likewise, new biomedical engineering approaches and platforms are available to more accurately replicate the in vivo 3D microarchitectures and functions of living organs. This review aims to highlight the recent 3D in vitro liver model systems, including micropatterning, spheroids, and organoids that are either scaffold-based or scaffold-free systems. Finally, we discuss a number of challenges that will need to be addressed moving forward in the field of liver tissue engineering for biomedical applications.
The ongoing development of biomedical engineering holds great promise for generating a 3D biomimetic liver model that recapitulates the physiological and pathological properties of the liver and has biomedical applications.
具有类似于天然组织的建筑和生物力学特性的三维(3D)细胞培养一直是生成肝组织的重点。微架构组织被认为对肝脏功能至关重要,并且 3D 细胞培养技术能够构建类似组织的微环境,从而在人体组织和器官的体外模型方面取得了显著进展。最近,为了再现组织的 3D 结构,球体和类器官已被广泛接受为 3D 器官建模的新实用工具。此外,生物工程方法的结合有望更准确地模拟人体器官的组织微环境。事实上,采用复杂的生物工程化肝脏模型可以显示出在生化参数和疾病导向结果方面的长期生存能力和功能增强。
各种 3D 体外肝脏模型已被提议作为新一代肝脏医学。同样,新的生物医学工程方法和平台可用于更准确地复制活体器官的体内 3D 微观结构和功能。本综述旨在强调最近的 3D 体外肝脏模型系统,包括基于支架和无支架的微图案化、球体和类器官。最后,我们讨论了在生物医学应用的肝脏组织工程领域中需要解决的一些挑战。
生物医学工程的不断发展为生成 3D 仿生肝脏模型提供了很大的希望,该模型可以再现肝脏的生理和病理特性,并具有生物医学应用。