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首页> 外文期刊>Antimicrobial agents and chemotherapy. >Cationic antimicrobial peptides and biogenic silver nanoparticles kill mycobacteria without eliciting dna damage and cytotoxicity in mouse macrophages
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Cationic antimicrobial peptides and biogenic silver nanoparticles kill mycobacteria without eliciting dna damage and cytotoxicity in mouse macrophages

机译:阳离子抗菌肽和生物银纳米颗粒可杀死分枝杆菌而不会引起小鼠巨噬细胞的dna损伤和细胞毒性

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With the emergence of multidrug-resistant mycobacterial strains, better therapeutic strategies are required for the successful treatment of the infection. Although antimicrobial peptides (AMPs) and silver nanoparticles (AgNPs) are becoming one of the popular antibacterial agents, their antimycobacterial potential is not fully evaluated. In this study, we synthesized biogenic-silver nanoparticles using bacterial, fungal, and plant biomasses and analyzed their antibacterial activities in combination with AMPs against mycobacteria. Mycobacterium smegmatis was found to be more susceptible to AgNPs compared to M. marinum. We found that NK-2 showed enhanced killing effect with NP-1 and NP-2 biogenic nanoparticles at a 0.5-ppm concentration, whereas LLKKK-18 showed antibacterial activity only with NP-2 at 0.5-ppm dose against M. smegmatis. In case of M. marinum NK-2 did not show any additive activity with NP-1 and NP-2 and LLKKK-18 alone completely inhibited the bacterial growth. Both NP-1 and NP-2 also showed increased killing of M. smegmatis in combination with the antituberculosis drug rifampin. The sizes and shapes of the AgNPs were determined by transmission electron microscopy and dynamic light scattering. AgNPs showed no cytotoxic or DNA damage effects on macrophages at the mycobactericidal dose, whereas treatment with higher doses of AgNPs caused toxicity and micronuclei formation in cytokinesis blocked cells. Macrophages actively endocytosed fluorescein isothiocyanate-labeled AgNPs resulting in nitric oxide independent intracellular killing of M. smegmatis. Apoptosis and cell cycle studies showed that treatment with higher dose of AgNPs arrested macrophages at the G1-phase. In summary, our data suggest the combined effect of biogenic-AgNPs and antimicrobial peptides as a promising antimycobacterial template.
机译:随着多重耐药性分枝杆菌菌株的出现,成功治疗感染需要更好的治疗策略。尽管抗菌肽(AMPs)和银纳米颗粒(AgNPs)成为流行的抗菌剂之一,但它们的抗分枝杆菌潜力尚未得到充分评估。在这项研究中,我们使用细菌,真菌和植物生物量合成了生物银纳米颗粒,并结合AMPs对分枝杆菌进行了分析,分析了它们的抗菌活性。发现与耻垢分枝杆菌相比,耻垢分枝杆菌对AgNP更敏感。我们发现,NK-2在浓度为0.5-ppm的NP-1和NP-2生物纳米颗粒中显示出增强的杀伤作用,而LLKKK-18仅在浓度为0.5-ppm的NP-2中对耻垢分枝杆菌表现出抗菌活性。在海藻支原体的情况下,NK-2没有表现出与NP-1和NP-2的任何加和活性,而单独的LLKKK-18完全抑制了细菌的生长。 NP-1和NP-2与抗结核药利福平联用也显示了对耻垢分枝杆菌的杀灭作用增加。 AgNP的大小和形状通过透射电子显微镜和动态光散射确定。在分枝杆菌杀菌剂量下,AgNPs对巨噬细胞没有细胞毒性或DNA损伤作用,而更高剂量的AgNPs处理则在细胞分裂阻滞细胞中引起毒性和微核形成。巨噬细胞主动内吞荧光素异硫氰酸酯标记的AgNPs,导致耻垢分枝杆菌的一氧化氮依赖性细胞内杀伤。凋亡和细胞周期研究表明,用较高剂量的AgNPs处理可使巨噬细胞停滞在G1期。总而言之,我们的数据表明生物型AgNPs和抗菌肽的结合作用是一种有前途的抗分枝杆菌模板。

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