Department of Chemical & Biomolecular Engineering, Clemson University, Clemson, SC 29631, USA.
Department of Chemical Engineering & Material Science, University of Minnesota, Minneapolis, MN 55455, USA.
Nanomedicine (Lond). 2021 Dec;16(30):2679-2693. doi: 10.2217/nnm-2021-0194. Epub 2021 Dec 6.
In drug delivery, enzyme-responsive drug carriers are becoming increasingly relevant because of the growing association of disease pathology with enzyme overexpression. Polymersomes are of interest to such applications because of their tunable properties. While polymersomes open up a wide range of chemical and physical properties to explore, they also present a challenge in developing generalized rules for the synthesis of novel systems. Motivated by this issue, in this perspective, we summarize the existing knowledge on enzyme-responsive polymersomes and outline the main design choices. Then, we propose heuristics to guide the design of novel systems. Finally, we discuss the potential of an integrated approach using computer simulations and experimental studies to streamline this design process and close the existing knowledge gaps.
在药物输送中,由于疾病病理与酶过度表达的关联日益密切,酶响应药物载体变得越来越重要。聚合物囊泡因其可调的性质而受到此类应用的关注。虽然聚合物囊泡为探索各种化学和物理性质提供了可能性,但它们在为新型系统的合成制定通用规则方面也提出了挑战。受此问题的启发,在本观点中,我们总结了酶响应聚合物囊泡的现有知识,并概述了主要的设计选择。然后,我们提出了一些启发式方法来指导新型系统的设计。最后,我们讨论了使用计算机模拟和实验研究相结合的综合方法的潜力,以简化该设计过程并弥补现有知识差距。