Engineering Research Center of Bioreactor and Pharmaceutical Development, Ministry of Education, College of Life Sciences, Jilin Agricultural University, Changchun 130118, PR China.
Institute of Chemistry, Northeast Normal University, Changchun 130024, PR China.
Mater Sci Eng C Mater Biol Appl. 2020 May;110:110735. doi: 10.1016/j.msec.2020.110735. Epub 2020 Feb 11.
The emergence of bacterial resistance has become one of the top global concern, and silver nanoparticles (AgNPs) provide alternative strategies for the development of new antimicrobial agent. Herein, three small sizes (1.5-4.0 nm) of well-dispersed AgNPs were successfully synthesized using a thermo-sensitive P(NIPAM-co-MQ) copolymer with coordination ability as a stabilizer. The copolymer stabilized silver nanoparticles (AgNPs@P) displayed good thermo-sensitive characteristics and solution stability at pH = 6.5-8.0. AgNPs@P had high-efficiency and long-term antimicrobial properties for Gram-positive bacteria (S. aureus) and Gram-negative bacteria (E. coli). In particular, AgNPs@P with ultrasmall size (1.59 nm) exhibited better antimicrobial activity against both normal bacteria and antibiotic-resistant bacteria with a very low MIC value of 4.05 μg/mL. Moreover, AgNPs@P also showed an interesting temperature-dependent antibacterial activity mainly owing to the effect of thermo-sensitive copolymer on AgNPs. It was found that the antibacterial activity of the AgNPs@P also was affected by the proportion of copolymer, sizes of AgNPs, and experimental temperature. The antibacterial mechanism of AgNPs@P involved a variety of ways including destroying cell membranes, internalization of AgNPs and generation of ROS. Our research provides a new perspective for the preparation of effective nanosilver antimicrobial agents.
细菌耐药性的出现已成为全球关注的首要问题之一,而纳米银(AgNPs)为开发新型抗菌剂提供了替代策略。本文采用具有配位能力的温敏型 P(NIPAM-co-MQ)共聚物作为稳定剂,成功合成了三种粒径较小(1.5-4.0nm)、分散性良好的 AgNPs。该共聚物稳定的纳米银颗粒(AgNPs@P)在 pH=6.5-8.0 时表现出良好的温敏特性和溶液稳定性。AgNPs@P 对革兰氏阳性菌(金黄色葡萄球菌)和革兰氏阴性菌(大肠杆菌)具有高效、长效的抗菌性能。特别是粒径较小(1.59nm)的 AgNPs@P 对正常细菌和耐抗生素细菌均表现出更好的抗菌活性,MIC 值低至 4.05μg/mL。此外,AgNPs@P 还表现出有趣的温度依赖性抗菌活性,主要归因于温敏共聚物对 AgNPs 的影响。研究发现,AgNPs@P 的抗菌活性还受到共聚物比例、AgNPs 粒径和实验温度的影响。AgNPs@P 的抗菌机制涉及多种方式,包括破坏细胞膜、AgNPs 的内化和 ROS 的产生。本研究为制备有效纳米银抗菌剂提供了新的视角。