School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150006, PR China.
Plants for Human Health Institute, North Carolina State University, Kannapolis, North Carolina 28081, United States.
J Agric Food Chem. 2024 Sep 11;72(36):19549-19565. doi: 10.1021/acs.jafc.4c04372. Epub 2024 Aug 26.
Prolamin-based particles loaded with bioactive molecules have attracted widespread attention from scientists due to their novel properties in chemistry, physics, and biology. In the self-assembly process of biopolymer-based nanocapsules, noncovalent interactions are the main driving forces for reducing bulk materials to the nanoscale and controlling the release of bioactive molecules. This article reviews the types of interaction forces, binding strength, binding active sites, molecular orientation, and binding affinity that affect the release profile of bioactive molecules during the preparation of protein stabilizer particles. Different preparation formulations, the use of different biopolymers, the inherent nature of the loaded bioactive molecules, and external factors (including pH, biopolymer concentration, temperature, salt, ultrasonication, and atmospheric cold plasma treatment) lead to different types and strengths of intra- and intermolecular interactions. Strategies, such as pH, ultrasonication, and atmospheric cold plasma, to change the protein conformation are key to improving the binding strength between proteins and bioactive substances or stabilizers. This review provides some guidance for scientists and technicians dedicated to improving loading efficiency, delaying release, enhancing colloidal stability, and exploring the binding behavior among proteins, stabilizers, and bioactive molecules.
基于醇溶蛋白的载药颗粒由于其在化学、物理和生物学方面的新颖特性,引起了科学家们的广泛关注。在生物聚合物基纳米胶囊的自组装过程中,非共价相互作用是将块状材料降低到纳米尺度并控制生物活性分子释放的主要驱动力。本文综述了在制备蛋白稳定剂颗粒过程中,影响生物活性分子释放特性的相互作用力类型、结合强度、结合活性位点、分子取向和结合亲和力。不同的制备配方、不同生物聚合物的使用、负载的生物活性分子的固有性质以及外部因素(包括 pH 值、生物聚合物浓度、温度、盐、超声和大气压冷等离子体处理)导致了不同类型和强度的分子内和分子间相互作用。改变蛋白质构象的策略,如 pH 值、超声和大气压冷等离子体处理,是提高蛋白质与生物活性物质或稳定剂之间结合强度的关键。本文综述为致力于提高载药效率、延迟释放、增强胶体稳定性以及探索蛋白质、稳定剂和生物活性分子之间的结合行为的科学家和技术人员提供了一些指导。