Pacheco Marisa O, Eccles Lauren E, Davies Nickolas A, Armada Jostin, Cakley Alaura S, Kadambi Isiri P, Stoppel Whitney L
Department of Chemical Engineering, Herbert Wertheim College of Engineering, University of Florida, Gainesville, FL.
College of Medicine, University of Florida, Gainesville, FL.
Front Chem Eng. 2022;4. doi: 10.3389/fceng.2022.1044431. Epub 2022 Dec 19.
The fields of drug and gene delivery have been revolutionized by the discovery and characterization of polymer-based materials. Polymeric nanomaterials have emerged as a strategy for targeted delivery because of features such as their impressive biocompatibility and improved availability. Use of naturally derived polymers in these nanomaterials is advantageous due to their biodegradability and bioresorption. Natural biopolymer-based particles composed of silk fibroins and other silk fiber-inspired proteins have been the focus of research in drug delivery systems due to their simple synthesis, tunable characteristics, and ability to respond to stimuli. Several silk and silk-inspired polymers contain a high proportion of reactive side groups, allowing for functionalization and addition of targeting moieties. In this review, we discuss the main classes of silk and silk-inspired polymers that are being used in the creation of nanomaterials. We also focus on the fabrication techniques used in generating a tunable design space of silk-based polymeric nanomaterials and detail how that translates into use for drug delivery to several distinct microenvironments.
聚合物基材料的发现和特性表征彻底改变了药物和基因递送领域。聚合物纳米材料因其出色的生物相容性和更高的可用性等特性,已成为一种靶向递送策略。在这些纳米材料中使用天然衍生聚合物具有优势,因为它们具有生物可降解性和生物吸收性。由丝素蛋白和其他受丝纤维启发的蛋白质组成的基于天然生物聚合物的颗粒,因其合成简单、特性可调以及对刺激作出反应的能力,一直是药物递送系统研究的重点。几种丝绸和受丝绸启发的聚合物含有高比例的反应性侧基,允许进行功能化和添加靶向部分。在这篇综述中,我们讨论了用于制造纳米材料的主要丝绸和受丝绸启发的聚合物类别。我们还关注用于生成基于丝绸的聚合物纳米材料可调设计空间的制造技术,并详细说明这如何转化为用于向几种不同微环境进行药物递送的应用。