Marciel Amanda B, Chung Eun Ji, Brettmann Blair K, Leon Lorraine
Institute for Molecular Engineering, University of Chicago, Chicago, IL 60637, United States.
Institute for Molecular Engineering, University of Chicago, Chicago, IL 60637, United States; Department of Biomedical Engineering, University of Southern California, Los Angeles, CA 90089, United States.
Adv Colloid Interface Sci. 2017 Jan;239:187-198. doi: 10.1016/j.cis.2016.06.012. Epub 2016 Jul 2.
Polyelectrolyte complexes (PECs) formed using polypeptides have great potential for developing new self-assembled materials, in particular for the development of drug and gene delivery vehicles. This review discusses the latest advancements in PECs formed using polypeptides as the polyanion and/or the polycation in both polyelectrolyte complexes that form bulk materials and block copolymer complexes that form nanoscale assemblies such as PEC micelles and other self-assembled structures. We highlight the importance of secondary structure formation between homogeneous polypeptide complexes, which, unlike PECs formed using other polymers, introduces additional intermolecular interactions in the form of hydrogen bonding, which may influence precipitation over coacervation. However, we still include heterogeneous complexes consisting of polypeptides and other polymers such as nucleic acids, sugars, and other synthetic polyelectrolytes. Special attention is given to complexes formed using nucleic acids as polyanions and polypeptides as polycations and their potential for delivery applications.
使用多肽形成的聚电解质复合物(PEC)在开发新型自组装材料方面具有巨大潜力,特别是在药物和基因递送载体的开发中。本文综述了在形成块状材料的聚电解质复合物以及形成纳米级组装体(如PEC胶束和其他自组装结构)的嵌段共聚物复合物中,使用多肽作为聚阴离子和/或聚阳离子形成的PEC的最新进展。我们强调了均相多肽复合物之间二级结构形成的重要性,与使用其他聚合物形成的PEC不同,这会以氢键的形式引入额外的分子间相互作用,这可能会影响凝聚相分离过程中的沉淀现象。然而,我们仍然纳入了由多肽与其他聚合物(如核酸、糖类和其他合成聚电解质)组成的非均相复合物。特别关注了使用核酸作为聚阴离子、多肽作为聚阳离子形成的复合物及其在递送应用中的潜力。