Wu Zhuhao, Liu Rui, Shao Ning, Zhao Yuanjin
Department of Rheumatology and Immunology, Nanjing Drum Tower Hospital, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China.
Shenzhen Research Institute, Southeast University, Shenzhen 518071, China.
Lab Chip. 2025 Feb 25;25(5):1081-1096. doi: 10.1039/d4lc00769g.
Organs-on-chips (OoCs) have significantly advanced biomedical research by precisely reconstructing human microphysiological systems with biomimetic functions. However, achieving greater structural complexity of cell cultures on-chip for enhanced biological mimicry remains a challenge. To overcome these challenges, 3D bioprinting techniques can be used in directly building complex 3D cultures on chips, facilitating the engineering of organ-level models. Herein, we review the distinctive features of OoCs, along with the technical and biological challenges associated with replicating complex organ structures. We discuss recent bioprinting innovations that simplify the fabrication of OoCs while increasing their architectural complexity, leading to breakthroughs in the field and enabling the investigation of previously inaccessible biological problems. We highlight the challenges for the development of 3D bioprinted OoCs, concluding with a perspective on future directions aimed at facilitating their clinical translation.
芯片器官(OoCs)通过精确重建具有仿生功能的人类微生理系统,极大地推动了生物医学研究。然而,在芯片上实现更高结构复杂性的细胞培养以增强生物模拟能力仍然是一项挑战。为了克服这些挑战,可以使用3D生物打印技术直接在芯片上构建复杂的3D培养物,促进器官水平模型的工程化。在此,我们综述了芯片器官的独特特征,以及与复制复杂器官结构相关的技术和生物学挑战。我们讨论了最近的生物打印创新,这些创新简化了芯片器官的制造,同时增加了它们的结构复杂性,带来了该领域的突破,并能够研究以前难以解决的生物学问题。我们强调了3D生物打印芯片器官发展面临的挑战,并以旨在促进其临床转化的未来方向展望作为总结。