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In Vitro Antimycobacterial Activities of Short Peptide-Functionalized Silver Nanoparticle and Its In Silico Mechanistic Insight

抗细菌 银纳米粒子 霉酸 化学 细胞毒性 动态光散射 组合化学 纳米颗粒 对接(动物) 生物膜 生物化学 抗菌剂 立体化学 生物物理学 结核分枝杆菌 纳米技术 微生物学 生物合成 傅里叶变换红外光谱 抗菌剂 活动站点 结构-活动关系
作者
Uday Suryakanta,Sunil Kumar Mishra,Ajit Kumar Dhal,Bijayananda Panigrahi,Rohit Kumar Singh,Dindyal Mandal
出处
期刊:ACS applied bio materials [American Chemical Society]
标识
DOI:10.1021/acsabm.5c02302
摘要

The rise of drug-resistant microbes has made antimicrobial therapy increasingly challenging, and despite several reports on peptide-functionalized silver nanoparticles, their efficacy against Mycobacterium species remains largely unexplored. In this study, we synthesized short peptide functionalized silver nanoparticles to develop an effective antimycobacterial agent, where peptides acted as both reducing and stabilizing agents for the one-pot synthesis of silver nanoparticles (AgNPs). The developed nanoparticles were characterized by high-resolution transmission electron microscopy (HR-TEM), dynamic light scattering (DLS), Fourier transform infrared spectroscopy (FTIR), and UV-visible spectroscopy (UV-vis). The positively charged peptide-capped silver nanoparticles exhibited significant antimycobacterial activity against acid-fast mycobacterial strains, including Mycobacterium smegmatis, Mycobacterium bovis, and Mycobacterium marinum, compared to peptides alone, which could be due to the integrated effect of the peptide-functionalized AgNPs. Among the synthesized nanoparticles, linear peptide 2 (LP 2) functionalized AgNP exhibited the highest antimycobacterial efficacy against the Mycobacterium strains, with the lowest MIC (5 μM). AgNP LP 2 was found to be efficient to penetrate the mycobacterial cell wall, inducing membranolytic activity, triggering oxidative stress and degrading DNA, which led to the death of mycobacterial cells. Molecular docking and molecular dynamics (MD) simulations of the peptides with key enzyme FadD32 (MsmFadD32), Mycobacterium smegmatis, demonstrated strong interactions near the active site cleft, indicating potential inhibition of the mycolic acid biosynthesis pathway by the LP 2 peptide. This disruption likely challenges the organism's pathogenicity and supports the peptides' role in contributing to membranolytic activity. Additionally, AgNP LP 2 demonstrated the ability to inhibit biofilm formation and effectively disrupt preformed mycobacterial biofilms while exhibiting negligible cytotoxicity toward human embryonic kidney (HEK293) cells. In summary, our results suggest that newly developed AgNPs exhibit antimycobacterial activity without compromising the cell viability of normal cells, making them highly potent as prospective antimycobacterial agents.
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