Institute of Chemistry of New Materials, National Academy of Sciences of Belarus, 36 F. Skaryna Str., 220084 Minsk, Belarus.
Institute of Chemistry of New Materials, National Academy of Sciences of Belarus, 36 F. Skaryna Str., 220084 Minsk, Belarus.
Int J Biol Macromol. 2023 Nov 1;251:126302. doi: 10.1016/j.ijbiomac.2023.126302. Epub 2023 Aug 12.
Pseudomonas species are among the main pathogens causing rainbow trout infections. The present study provides a simple, green, sustainable, and rapid technique to synthesize of biogenic alginate-capped silver nanoparticles (Alg-Ag NPs) suitable for the treatment of Pseudomonas infections. It has been shown that the mechanism (aggregative or autocatalytic) of Alg-Ag NPs formation depended on Alg concentration and the heating approach used. The rate constants and activation energy were calculated. Alg-Ag NPs were characterized by UV-Vis, FTIR, XRD, TEM, AFM, XPS, and DLS. The optimal conditions for the fabrication of spherically-shaped (17-19 nm) and negatively-charged (zeta-potential <-50 mV) Alg-Ag NPs, which are stable during 9 months, included hot-plate assisted synthesis at 100 °C in diluted (1 mg/mL) Alg solutions. In vitro studies showed that Alg-Ag NPs exhibited prominent antimicrobial activity against collection Pseudomonas strains (inhibition zones ranged from 9.0 ± 1.0 to 19.0 ± 1.0 mm), with no significant loss of antibacterial efficacy after 9 months of storage. AFM analysis confirmed that the antibacterial effect of Alg-Ag NPs dealt with the direct nanomechanical disrupting of bacterial cells. The ability of Alg-Ag NPs to inhibit the growth of virulent P.aeruginosa, P.fluorescens and P. putida strains isolated from infected rainbow trout was evaluated. All tested strains were susceptible to Alg(10)-Ag NPs, while Alg(1)-Ag NPs demonstrated a limited strain-specific antibacterial effect. The obtained data displayed the prospects for the application of biogenic Alg-Ag NPs to create novel delivery systems for combating Pseudomonas infections in rainbow trout.
铜绿假单胞菌是引起虹鳟鱼感染的主要病原体之一。本研究提供了一种简单、绿色、可持续和快速的技术,用于合成生物源海藻酸钠包覆的银纳米粒子(Alg-Ag NPs),适用于治疗铜绿假单胞菌感染。研究表明,Alg-Ag NPs 的形成机制(聚集或自催化)取决于 Alg 浓度和使用的加热方法。计算了速率常数和活化能。通过 UV-Vis、FTIR、XRD、TEM、AFM、XPS 和 DLS 对 Alg-Ag NPs 进行了表征。制备具有球形(17-19nm)和带负电荷(zeta 电位 <-50mV)的 Alg-Ag NPs 的最佳条件是在 100°C 下使用稀释(1mg/mL)Alg 溶液在热板上辅助合成。体外研究表明,Alg-Ag NPs 对收集的铜绿假单胞菌菌株表现出显著的抗菌活性(抑菌圈范围为 9.0±1.0 至 19.0±1.0mm),储存 9 个月后抗菌效果无明显损失。AFM 分析证实,Alg-Ag NPs 的抗菌作用是通过直接纳米机械破坏细菌细胞来实现的。评估了 Alg-Ag NPs 抑制从感染虹鳟鱼中分离的毒力铜绿假单胞菌、荧光假单胞菌和恶臭假单胞菌菌株生长的能力。所有测试菌株均对 Alg(10)-Ag NPs 敏感,而 Alg(1)-Ag NPs 对菌株表现出有限的特异性抗菌作用。所得数据显示了生物源 Alg-Ag NPs 在开发用于防治虹鳟鱼铜绿假单胞菌感染的新型输送系统方面的应用前景。