Department of Chemistry and Centre for Advanced Studies in Chemistry, Panjab University, Chandigarh-160014, India.
Central Scientific Instruments Organisation (CSIR-CSIO), Sector 30C, Chandigarh 160030, India.
Colloids Surf B Biointerfaces. 2017 Oct 1;158:397-407. doi: 10.1016/j.colsurfb.2017.07.009. Epub 2017 Jul 9.
The nanoparticles of silver/gold and cationic peptides have been recognized as potent antimicrobials for long, but their combined effect has so far not been explored. The present study reports the green synthesis of short cationic dipeptide stabilized AuNPs/AgNPs based nanohybrid materials. It thoroughly investigates the effect of conjugation of short cationic peptides on the antimicrobial properties of metallic nanoparticles. In the context of the antimicrobial evaluation of synthesized nanoconjugates, it was observed that peptide capped AgNPs exhibited higher antimicrobial activity as compared to peptide capped AuNPs as well as native peptides and unconjugated metallic nanoparticles. Specifically, l-His-l-Arg-OMe capped AgNPs exhibited MIC of 0.50, 0.37 and 0.25μM against E.coli, S. aureus and S. typhimurium respectively and MIC of 0.80 and 10.00μM against C. albicans and C. glabrata respectively. These results indicate that synthetic dipeptides render AgNPs as better antimicrobial agents in comparison to the native AgNPs and positively charged dipeptides. In addition, the time kill profile of cationic peptide (l-His-l-Arg-OMe) capped AgNPs was found to be even better than the known antibiotics. The cytotoxic behavior of all synthesized nanoconjugates of cationic peptides was studied and was found to be within acceptable limits. The present study opens a completely new class of antimicrobials for combating a wide range of bacterial and fungal pathogens. Another interesting and crucial finding was that dipeptide capped AgNPs displayed maximum antimicrobial activity with observed approximate 2-10 fold reduction in nano formulation dosage against tested microbes.
银/金纳米粒子和阳离子肽一直以来都被认为是有效的抗菌剂,但它们的联合作用迄今尚未得到探索。本研究报告了基于短阳离子二肽稳定的 AuNPs/AgNPs 的纳米杂化材料的绿色合成。它彻底研究了短阳离子肽的结合对金属纳米粒子抗菌性能的影响。在合成纳米缀合物的抗菌评价背景下,观察到肽封端的 AgNPs 表现出比肽封端的 AuNPs 以及天然肽和未共轭的金属纳米粒子更高的抗菌活性。具体而言,l-His-l-Arg-OMe 封端的 AgNPs 对大肠杆菌、金黄色葡萄球菌和鼠伤寒沙门氏菌的 MIC 分别为 0.50、0.37 和 0.25μM,对白色念珠菌和近平滑念珠菌的 MIC 分别为 0.80 和 10.00μM。这些结果表明,与天然 AgNPs 和带正电荷的二肽相比,合成二肽使 AgNPs 成为更好的抗菌剂。此外,发现阳离子肽 (l-His-l-Arg-OMe) 封端的 AgNPs 的时间杀伤曲线甚至优于已知的抗生素。所有合成的阳离子肽纳米缀合物的细胞毒性行为均进行了研究,结果发现均在可接受的范围内。本研究为对抗广泛的细菌和真菌病原体开辟了全新类别的抗菌剂。另一个有趣且关键的发现是,二肽封端的 AgNPs 表现出最大的抗菌活性,与测试的微生物相比,观察到纳米制剂剂量减少了约 2-10 倍。