Faculty of Pharmacy, Keio University, 1-5-30 Shibakoen, Minato, Tokyo 105-8512, Japan; Institute of Advanced Biomedical Engineering and Science, Tokyo Women's Medical University, TWIns, 8-1 Kawadacho, Shinjuku, Tokyo 162-8666, Japan.
Institute of Advanced Biomedical Engineering and Science, Tokyo Women's Medical University, TWIns, 8-1 Kawadacho, Shinjuku, Tokyo 162-8666, Japan.
Biomaterials. 2018 Jan;153:27-48. doi: 10.1016/j.biomaterials.2017.10.026. Epub 2017 Oct 27.
Thermoresponsive surfaces, prepared by grafting of poly(N-isopropylacrylamide) (PIPAAm) or its copolymers, have been investigated for biomedical applications. Thermoresponsive cell culture dishes that show controlled cell adhesion and detachment following external temperature changes, represent a promising application of thermoresponsive surfaces. These dishes can be used to fabricate cell sheets, which are currently used as effective therapies for patients. Thermoresponsive microcarriers for large-scale cell cultivation have also been developed by taking advantage of the thermally modulated cell adhesion and detachment properties of thermoresponsive surfaces. Furthermore, thermoresponsive bioseparation systems using thermoresponsive surfaces for separating and purifying pharmaceutical proteins and therapeutic cells have been developed, with the separation systems able to maintain their activity and biological potency throughout the procedure. These applications of thermoresponsive surfaces have been improved with progress in preparation techniques of thermoresponsive surfaces, such as polymerization methods, and surface modification techniques. In the present review, the various types of PIPAAm-based thermoresponsive surfaces are summarized by describing their preparation methods, properties, and successful biomedical applications.
温敏表面通过接枝聚 N-异丙基丙烯酰胺(PIPAAm)或其共聚物制备,已被用于生物医学应用的研究。温敏细胞培养皿在外部温度变化时表现出对细胞的可控黏附和脱附,这代表了温敏表面的一个很有前途的应用。这些培养皿可用于制造细胞片,目前被用作患者的有效治疗方法。利用温敏表面的热调节细胞黏附和脱附特性,还开发了用于大规模细胞培养的温敏微载体。此外,还开发了使用温敏表面的温敏生物分离系统,用于分离和纯化药物蛋白和治疗细胞,分离系统在整个过程中能够保持其活性和生物效力。随着温敏表面的制备技术(如聚合方法和表面改性技术)的进步,这些温敏表面的应用得到了改善。在本综述中,通过描述其制备方法、性质和成功的生物医学应用,总结了各种基于 PIPAAm 的温敏表面。
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