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Effects of silver nanoparticles on microbial growth dynamics.

机译:银纳米颗粒对微生物生长动力学的影响。

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Aims: Engineered metal nanoparticles are increasingly used in consumer products, in part as additives that exhibit advantageous antimicrobial properties. Conventional nanoparticle susceptibility testing is based largely on determination of nontemporal growth profiles such as measurements of inhibition zones in common agar diffusion tests, counting of colony-forming units, or endpoint or regular-interval growth determination via optical density measurements. For better evaluation of the dynamic effects from exposure to nanoparticles, a cultivation-based assay was established in a 96-well format and adapted for time-resolved testing of the effects of nanoparticles on micro-organisms. Methods and Results: The modified assay allowed simultaneous cultivation and on-line analysis of microbial growth inhibition. The automated high-throughput assay combined continuous monitoring of microbial growth with the analysis of many replicates and was applied to Cupriavidus necator H16 test organisms to study the antimicrobial effects of spherical silver [Ag(0)] nanoparticles (primary particle size distribution D90 <15 nm). Ag(0) concentrations above 80 micro g ml-1 resulted in complete and irreversible inhibition of microbial growth, whereas extended lag phases and partial growth inhibition were observed at Ag(0) concentrations between 20 and 80 micro g ml-1. Addition of Ag(0) nanoparticles at different growth stages led to either complete inhibition (addition of 40 micro g ml-1 Ag(0) from 0 h to 6 h) or resulted in full recovery (40 micro g ml-1 Ag(0) addition >=9 h). Conclusions: Contrary to the expected results, our data indicate growth stimulation of C. necator at certain Ag(0) nanoparticle concentrations, as well as varying susceptibility to nanoparticles at different growth stages. Significance and Impact of the Study: These results underscore the need for time-resolved analyses of microbial growth inhibition by Ag(0) nanoparticles. Due to the versatility of the technique, the assay will likely complement existing microbiological methods for cultivation and diagnostics of microbes, in addition to tests of other antimicrobial nanoparticles.
机译:目的:工程金属纳米颗粒越来越多地用于消费产品中,部分用作具有优越抗菌性能的添加剂。常规的纳米粒子敏感性测试主要基于非临时性生长曲线的确定,例如普通琼脂扩散测试中抑制区的测量,菌落形成单位的计数或通过光密度测量确定终点或规则间隔的生长。为了更好地评估由于暴露于纳米颗粒而产生的动态影响,建立了一种基于培养的测定,并采用96孔格式,适用于时间分辨测试纳米颗粒对微生物的影响。方法和结果:改良的分析方法可以同时培养和在线分析微生物生长抑制作用。自动化的高通量分析方法结合了微生物生长的连续监测和许多重复分析的结果,并应用于Cupriavidus necator H16测试生物,以研究球形银[Ag(0)]纳米颗粒的抗菌作用(主要粒径分布D90 <15 nm)。高于80微克ml -1 的Ag(0)浓度导致对微生物生长的完全和不可逆的抑制,而当Ag(0)浓度在20至80 microl之间时,观察到延长的滞后阶段和部分生长抑制g ml -1 。在不同的生长阶段添加Ag(0)纳米粒子会导致完全抑制(从0 h到6 h添加40 micro g ml -1 Ag(0))或导致完全恢复(40微克ml -1 Ag(0)添加> = 9 h)。结论:与预期结果相反,我们的数据表明在某些Ag(0)纳米颗粒浓度下,C。necator的生长受到刺激,并且在不同的生长阶段对纳米颗粒的敏感性不同。研究的意义和影响:这些结果强调了需要时间分辨分析Ag(0)纳米颗粒对微生物生长的抑制作用。由于该技术的多功能性,该检测方法除对其他抗菌纳米颗粒的检测外,还可能补充现有的微生物培养和诊断方法。

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