Osonga Francis J, Akgul Ali, Yazgan Idris, Akgul Ayfer, Ontman Renata, Kariuki Victor M, Eshun Gaddi B, Sadik Omowunmi A
Department of Chemistry, Center for Research in Advanced Sensing Technologies, Environmental Sustainability (CREATES) State University of New York at Binghamton, PO Box 6000, Binghamton, NY 13902-6000, USA.
Department of Basic Sciences, College of Veterinary Medicine Mississippi State University, P. O. Box 6100, MS 39762-6100, USA.
RSC Adv. 2018;8(9):4649-4661. doi: 10.1039/c7ra13480k. Epub 2018 Jan 25.
We hereby present a novel greener and ecofriendly synthesis of anisotropic silver nanoparticles (AgNPs) using water soluble quercetin diphosphate (QDP). QDP was employed as a reducing, capping and stabilizing agent at room temperature without any extraneous reagents. The purpose of this study was to determine the effects of modified quercetin pentaphosphate silver nanoparticles (QPP-AgNPs) and quercetin diphosphate derived silver nanoparticles (QDP-AgNPs) on microbial growth and expressions of virulence-related genes in Escherichia coli SM10. The gene expression analysis was carried out for 12 genes which are related to virulence and stress in E. coli SM10, namely: RpoD, RpoS, ibpB, clpB, uspA, fliC, fimH, fimF, kdpE, artJ, hyaA, and gyrA. Results showed that QDP-AgNPs reduced the swarming motility by 98% which correlated with the reduction in the expression of FliC flagellar gene. A simultaneous increase in the expression of the fimbrial genes FimH and FimF that are related to motility was recorded. In contrast, treatment of the microbes with QPP-AgNPs resulted in 90% of the swarming motility at different patterns compared to QDP-AgNPs treatment for the gene expressions of motility elements. The study revealed that QDP-AgNPs up-regulated the stress related RpoD and ibpB expressions, while QPP-AgNPs up-regulated the stress related RpoS and uspA gene expressions. However, both QDP-AgNPs and QPP-AgNPs up-regulated kpdE, artJ and gry at different levels. QDP-AgNPs were also tested for their antibacterial and antifungal activities, which showed µmolar cidal activity. The growth kinetics of both Gram (-) and Gram (+) bacteria were strongly altered by QDP-AgNPs activity. Energy dispersive absorption spectroscopy (EDS) studies revealed that silver ions and/or the nanoparticles themselves transferred into bacterial cells. To the best of our knowledge, this is the first report ofstudying the genetic and kinetic response of bacteria to modified quercetin phosphate mediated silver nanoparticles and we hereby report that the molecules used to synthesize AgNPs bring about a strong effect on AgNPs manipulatory activity on the tested 12-genes.
我们在此展示了一种使用水溶性二磷酸槲皮素(QDP)合成新型绿色环保各向异性银纳米颗粒(AgNPs)的方法。在室温下,QDP被用作还原剂、封端剂和稳定剂,无需任何额外试剂。本研究的目的是确定改性五磷酸槲皮素银纳米颗粒(QPP-AgNPs)和二磷酸槲皮素衍生银纳米颗粒(QDP-AgNPs)对大肠杆菌SM10中微生物生长及毒力相关基因表达的影响。对大肠杆菌SM10中12个与毒力和应激相关的基因进行了基因表达分析,这些基因分别是:RpoD、RpoS、ibpB、clpB、uspA、fliC、fimH、fimF、kdpE、artJ、hyaA和gyrA。结果表明,QDP-AgNPs使群体运动性降低了98%,这与鞭毛基因FliC表达的降低相关。同时,记录到与运动性相关的菌毛基因FimH和FimF的表达增加。相比之下,用QPP-AgNPs处理微生物,在运动性元件基因表达方面,与QDP-AgNPs处理相比,导致不同模式下90%的群体运动性。研究表明,QDP-AgNPs上调了与应激相关的RpoD和ibpB表达,而QPP-AgNPs上调了与应激相关的RpoS和uspA基因表达。然而,QDP-AgNPs和QPP-AgNPs均不同程度地上调了kpdE、artJ和gry。还测试了QDP-AgNPs的抗菌和抗真菌活性,其显示出微摩尔级的杀菌活性。QDP-AgNPs的活性强烈改变了革兰氏阴性菌和革兰氏阳性菌的生长动力学。能量色散吸收光谱(EDS)研究表明,银离子和/或纳米颗粒本身转移到了细菌细胞中。据我们所知,这是关于研究细菌对改性磷酸槲皮素介导的银纳米颗粒的遗传和动力学反应的首次报告,我们在此报告,用于合成AgNPs的分子对AgNPs对所测试的12个基因的操纵活性产生了强烈影响。