Biotechnology-Medical Science, KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul 136-701, Republic of Korea.
Department of Biomedical Engineering, College of Health Science, Korea University, Seoul 136-703, Republic of Korea.
Biomaterials. 2014 Mar;35(9):2651-63. doi: 10.1016/j.biomaterials.2013.12.073. Epub 2014 Jan 15.
The encapsulation of living cells in a variety of soft polymers or hydrogels is important, particularly, for the rehabilitation of functional tissues capable of repairing or replacing damaged organs. Cellular encapsulation segregates cells from the surrounding tissue to protect the implanted cell from the recipient's immune system after transplantation. Diverse hydrogel membranes have been popularly used as encapsulating materials and permit the diffusion of gas, nutrients, wastes and therapeutic products smoothly. This review describes a variety of methods that have been developed to achieve cellular encapsulation using microscale platform. Microtechnologies have been adopted to precisely control the encapsulated cell number, size and shape of a cell-laden polymer structure. We provide a brief overview of recent microtechnology-based cell encapsulation methods, with a detailed description of the relevant processes. Finally, we discuss the current challenges and future directions likely to be taken by cell microencapsulation approaches toward tissue engineering and cell therapy applications.
将活细胞封装在各种软聚合物或水凝胶中很重要,特别是对于能够修复或替代受损器官的功能性组织的康复。细胞封装将细胞与周围组织隔离开来,以在移植后保护植入细胞免受受体免疫系统的攻击。各种水凝胶膜已被广泛用作封装材料,并允许气体、营养物质、废物和治疗产品顺利扩散。本文综述了使用微尺度平台实现细胞封装的各种方法。微技术已被采用来精确控制封装细胞的数量、大小和形状。我们简要概述了基于微技术的细胞封装方法,并详细描述了相关过程。最后,我们讨论了细胞微封装方法在组织工程和细胞治疗应用中可能面临的当前挑战和未来方向。