Li Yuxuan, Sun Ke, Shao Yi, Wang Cheng, Xue Feng, Chu Chenglin, Gu Zhongze, Chen Zaozao, Bai Jing
School of Materials Science and Engineering, Southeast University, Nanjing, Jiangsu, 211189, China.
Institute of Biomedical Devices (Suzhou), Southeast University, Suzhou, Jiangsu, 215163, China.
Adv Healthc Mater. 2025 Jan;14(1):e2402611. doi: 10.1002/adhm.202402611. Epub 2024 Oct 23.
Biological evaluation of biomedical materials faces constraints imposed by the limitations of traditional in vitro and animal experiments. Currently, miniaturized and biomimetic microfluidic technologies and organ-on-chip systems have garnered widespread attention in the field of drug development. However, their exploration in the context of biomedical material evaluation and medical device development remains relatively limited. In this review, a summary of existing biological evaluation methods, highlighting their respective advantages and drawbacks is provided. The application of microfluidic technologies in the evaluation of biomedical materials, emphasizing the potential of organ-on-chip systems as highly biomimetic in vitro models in material evaluation is then focused. Finally, the challenges and opportunities associated with utilizing organ-on-chip systems to evaluate biomedical materials in the field of material evaluation are discussed. In conclusion, the integration of advanced microfluidic technologies and organ-on-chip systems presents a potential paradigm shift in the biological assessment of biomedical materials, offering the prospective of more accurate and predictive in vitro models in the development of medical devices.
生物医学材料的生物学评价面临着传统体外和动物实验局限性所带来的限制。目前,小型化和仿生微流控技术以及芯片器官系统在药物开发领域受到了广泛关注。然而,它们在生物医学材料评价和医疗器械开发背景下的探索仍然相对有限。在这篇综述中,总结了现有的生物学评价方法,突出了它们各自的优缺点。接着重点介绍了微流控技术在生物医学材料评价中的应用,强调了芯片器官系统作为材料评价中高度仿生的体外模型的潜力。最后,讨论了在材料评价领域利用芯片器官系统评估生物医学材料所面临的挑战和机遇。总之,先进微流控技术和芯片器官系统的整合为生物医学材料的生物学评估带来了潜在的范式转变,为医疗器械开发中更准确和可预测的体外模型提供了前景。