用于高效构建生物医学纳米平台的聚合诱导自组装
Polymerization-Induced Self-Assembly for Efficient Fabrication of Biomedical Nanoplatforms.
作者信息
Zhao Xiaopeng, Sun Changrui, Xiong Fei, Wang Ting, Li Sheng, Huo Fengwei, Yao Xikuang
机构信息
School of Flexible Electronics (Future Technologies) and Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), Nanjing 211816, P. R. China.
出版信息
Research (Wash D C). 2023 Apr 11;6:0113. doi: 10.34133/research.0113. eCollection 2023.
Amphiphilic copolymers can self-assemble into nano-objects in aqueous solution. However, the self-assembly process is usually performed in a diluted solution (<1 wt%), which greatly limits scale-up production and further biomedical applications. With recent development of controlled polymerization techniques, polymerization-induced self-assembly (PISA) has emerged as an efficient approach for facile fabrication of nano-sized structures with a high concentration as high as 50 wt%. In this review, after the introduction, various polymerization method-mediated PISAs that include nitroxide-mediated polymerization-mediated PISA (NMP-PISA), reversible addition-fragmentation chain transfer polymerization-mediated PISA (RAFT-PISA), atom transfer radical polymerization-mediated PISA (ATRP-PISA), and ring-opening polymerization-mediated PISA (ROP-PISA) are discussed carefully. Afterward, recent biomedical applications of PISA are illustrated from the following aspects, i.e., bioimaging, disease treatment, biocatalysis, and antimicrobial. In the end, current achievements and future perspectives of PISA are given. It is envisioned that PISA strategy can bring great chance for future design and construction of functional nano-vehicles.
两亲性共聚物在水溶液中可自组装成纳米颗粒。然而,自组装过程通常在稀溶液(<1 wt%)中进行,这极大地限制了放大生产和进一步的生物医学应用。随着可控聚合技术的最新发展,聚合诱导自组装(PISA)已成为一种高效的方法,可轻松制备浓度高达50 wt%的纳米结构。在本综述中,引言之后,将详细讨论各种聚合方法介导的PISA,包括氮氧自由基介导的聚合介导的PISA(NMP-PISA)、可逆加成-断裂链转移聚合介导的PISA(RAFT-PISA)、原子转移自由基聚合介导的PISA(ATRP-PISA)和开环聚合介导的PISA(ROP-PISA)。随后,从生物成像、疾病治疗、生物催化和抗菌等方面阐述了PISA最近的生物医学应用。最后,给出了PISA的当前成果和未来展望。可以预见,PISA策略可为未来功能纳米载体的设计和构建带来巨大机遇。