微流控
再生医学
封装(网络)
细胞包封
纳米技术
组织工程
材料科学
微载波
生物相容性材料
药物输送
生化工程
计算机科学
细胞
生物医学工程
干细胞
化学
生物
细胞生物学
工程类
计算机网络
生物化学
作者
Hengameh Dortaj,Ali Mohammad Amani,Lobat Tayebi,Negar Azarpira,Mahtab Ghasemi Toudeshkchouei,Ashraf Hassanpour,Neda Karami,Milad Abbasi,Atefeh Najafian-Najafabadi,Zeinab Zarei‐Behjani,Ahmad Vaez
标识
DOI:10.1080/02652048.2024.2382744
摘要
One of the goals of tissue engineering and regenerative medicine is restoring primary living tissue function by manufacturing a 3D microenvironment. One of the main challenges is protecting implanted non-autologous cells or tissues from the host immune system. Cell encapsulation has emerged as a promising technique for this purpose. It involves entrapping cells in biocompatible and semi-permeable microcarriers made from natural or synthetic polymers that regulate the release of cellular secretions. In recent years, droplet-based microfluidic systems have emerged as powerful tools for cell encapsulation in tissue engineering and regenerative medicine. These systems offer precise control over droplet size, composition, and functionality, allowing for creating of microenvironments that closely mimic native tissue. Droplet-based microfluidic systems have extensive applications in biotechnology, medical diagnosis, and drug discovery. This review summarises the recent developments in droplet-based microfluidic systems and cell encapsulation techniques, as well as their applications, advantages, and challenges in biology and medicine. The integration of these technologies has the potential to revolutionise tissue engineering and regenerative medicine by providing a precise and controlled microenvironment for cell growth and differentiation. By overcoming the immune system's challenges and enabling the release of cellular secretions, these technologies hold great promise for the future of regenerative medicine.
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