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RNA-sequencing reveals a multitude of effects of silver nanoparticles on Pseudomonas aeruginosa biofilms

机译:RNA测序揭示了银纳米粒子对假单胞菌铜绿假单胞菌生物膜的众多影响

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摘要

The recent years have witnessed the capabilities of silver nanoparticles (SNP) as a potent antimicrobial agent. This has resulted in discharge of SNP in the environment and the concentration of particles is steadily increasing. The microbicidal effects of SNP are a serious cause of concern because even low concentrations are likely to cause perturbations in microbial biofilms in aquatic ecosystems causing cascading effects on higher life forms. A clear understanding about 'particle-specific' versus 'ion-specific' effects on functional genes, particularly in biofilms, is still lacking. We performed a genome-wide transcriptome analysis (via RNA-Seq) of pre-formed P. aeruginosa biofilms in the presence of SNP and Ag+ at a concentration of 3.12 mu g mL(-1). The results of RNA-Seq analysis indicate differential expression of transcripts, 1599 in response to SNP and 2458 for Ag+ (i.e. 28 and 43%) as compared to the untreated biofilms. 'Particle-specific' effects were evident in the genes involved in biofilm adhesion and dispersion, including vital cellular processes, and genes involved in alkane degradation and denitrification were downregulated. qRT-PCR data on selected genes substantiated our observations. Scanning electron microscopy and confocal microscopy revealed alterations in the cell morphology and a significant reduction in biofilm thickness, indicating dispersion. In medical settings, SNP can eradicate biofilms probably resolving the antibiotic crisis and reducing emerging drug resistance but overuse of particles in consumer products needs regulations so that nutrient cycling, bioremediation, degradation of xenobiotics, etc. are not adversely affected. These results indeed warrant additional studies involving complex microbial communities.
机译:近年来目睹了银纳米颗粒(SNP)作为有效抗微生物剂的能力。这导致在环境中排出SNP,颗粒的浓度稳定地增加。 SNP的杀微生物作用是令人担忧的严重原因,因为即使是低浓度也可能导致微生物生物膜中的微生物生物膜扰动,导致级联效应更高的寿命。清楚地了解对功能基因的“粒子特异性”对功能基因的影响,特别是在生物膜中仍然缺乏。我们在SNP和Ag +存在下进行3.12μg(-1)的浓度,在SNP和Ag +存在下进行了预先形成的P.铜绿假单胞菌的基因组转录组分析(通过RNA-SEQ)。 RNA-SEQ分析的结果表明,与未处理的生物膜相比,响应于SNP和2458的转录物,1599的差异表达,响应于Ag +(即28和43%)。在涉及生物膜粘附的基因中,颗粒特异性的效果是明显的,包括重要细胞过程,并且烷基烷烃的基因下调。所选基因的QRT-PCR数据证实了我们的观察结果。扫描电子显微镜和共聚焦显微镜显示细胞形态的改变和生物膜厚度显着降低,表明分散。在医疗环境中,SNP可以根除生物膜可能解决抗生素危机并减少出现的耐药性,但在消费产品中过度使用颗粒需要规定,以便营养循环,生物修复,异种症的降解等都不会受到不利影响。这些结果确实是涉及复杂的微生物群落的额外研究。

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