Summer Muhammad, Tahir Hafiz Muhammad, Ali Shaukat, Abaidullah Rimsha, Mumtaz Shumaila, Nawaz Saira
Department of Zoology, Government College University Lahore, Lahore, Pakistan.
J Basic Microbiol. 2023 Sep;63(9):1016-1029. doi: 10.1002/jobm.202200632. Epub 2023 Mar 6.
Present study was aimed to assess the bactericidal potential of sericin-capped silver nanoparticles (Se-AgNPs) synthesized by heat, light, and sonication. Se-AgNPs were characterized by size analyzer, UV spectrophotometry, energy-dispersive X-ray spectroscopy, and Fourier transform infrared spectroscopy. Average size of Se-AgNPs synthesized by heat, light and sonication was 53.60, 78.12, and 7.49 nm, respectively. All (10) bacterial strains were exposed to Se-AgNPs prepared from different methods to compare their antibacterial potentials. Largest zone of inhibition (13 ± 1.15 mm) was observed for sonication-based nanoparticles (NPs) against Klebseilla pneumoniae while the smallest zone of light assisted NPs against Serratia rubidaea (5 ± 1 mm). Bacterial strains were also exposed to different concentrations (0.2%, 0.3%, and 0.6%) of Se-AgNPs which showed largest zone (12 ± 1 mm) of inhibition for 0.4% of Se-AgNPs against Protius mirabilis and smallest zone (5 ± 1.154 mm) for 0.3% of Se-AgNPs against Escherichia coli. Furthermore, effect of different temperatures (5°C, 37°C, and 60°C) and pH (3, 7, and 12) on the efficacy and stability of Se-AgNPs was also evaluated against different bacterial strains. Sonication mediated NPs showed highest bactericidal results against K. pneumoniae (F = 6.154; p = 0.018) with smallest size NPs (7.49 nm) while lowest bactericidal results against S. rubidaea (5 ± 1 mm) were shown with largest size (78.12 nm) NPs prepared by natural light. These variations of bactericidal activities of NPs with difference size endorse that the Se-AgNPs with smallest size have highest antibacterial activity than larger size NPs. Moreover, Se-AgNPs maintain their bactericidal potency at wide range of temperature and pH, hence seemed stable.
本研究旨在评估通过加热、光照和超声合成的丝胶包覆银纳米颗粒(Se-AgNPs)的杀菌潜力。通过尺寸分析仪、紫外分光光度法、能量色散X射线光谱法和傅里叶变换红外光谱法对Se-AgNPs进行表征。通过加热、光照和超声合成的Se-AgNPs的平均尺寸分别为53.60、78.12和7.49纳米。将所有(10种)细菌菌株暴露于用不同方法制备的Se-AgNPs中,以比较它们的抗菌潜力。基于超声的纳米颗粒(NPs)对肺炎克雷伯菌的抑菌圈最大(13±1.15毫米),而光辅助NPs对深红沙雷菌的抑菌圈最小(5±1毫米)。细菌菌株还暴露于不同浓度(0.2%、0.3%和0.6%)的Se-AgNPs中,其中0.4%的Se-AgNPs对奇异变形杆菌的抑菌圈最大(12±1毫米),0.3%的Se-AgNPs对大肠杆菌的抑菌圈最小(5±1.154毫米)。此外,还评估了不同温度(5°C、37°C和60°C)和pH值(3、7和12)对Se-AgNPs针对不同细菌菌株的功效和稳定性的影响。超声介导的NPs对肺炎克雷伯菌显示出最高的杀菌效果(F = 6.154;p = 0.018),其NPs尺寸最小(7.49纳米),而通过自然光制备的尺寸最大(78.12纳米)的NPs对深红沙雷菌的杀菌效果最低(5±1毫米)。NPs杀菌活性随尺寸的这些变化表明,尺寸最小的Se-AgNPs比尺寸较大的NPs具有更高的抗菌活性。此外,Se-AgNPs在很宽的温度和pH范围内都能保持其杀菌效力,因此似乎很稳定。