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Evidence for positive response of soil bacterial community structure and functions to biosynthesized silver nanoparticles: An approach to conquer nanotoxicity?

机译:土壤细菌群落结构和功能对生物合成的银纳米颗粒有积极反应的证据:征服纳米毒性的方法吗?

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The environmental impacts of biosynthesized nanoparticles on the soil bacterial community assemblage and functions are not sufficiently understood. Given the broad application of silver nanoparticles (AgNPs), the present study aims to reveal the effects of biosynthesized AgNPs (similar to 12 nm) on the soil bacterial community structure and functions. Specifically, we used a quantitative real-time PCR (qPCR) approach to quantify the relative abundance of bacterial taxon/group and representative functional genes (AOA, AOB, NirK, NirS, NosZ, and PhoD). Results showed high relative abundance of Actinobacteria (1.53 x 10(7), p = 0.000) followed by Alphaproteobacteria (1.18 x 10(6), p = 0.000) and Betaproteobacteria (2.01 x 10(6), p = 0.000) in the soil exposed to biosynthesized AgNPs (100 mg/kg soil) after 30 days of treatment. Bacteroidetes group was observed to be negatively affected by AgNPs treatment. In the case of functional genes abundance, more pronounced impact was observed after 30 days of application. The biosynthesized AgNPs treatment accounted for significant increase in the relative abundance of all targeted functional genes except NirS. We conclude that the biosynthesized AgNPs did not cause toxic effects on nitrifiers, denitrifiers and organic phosphorus metabolizing bacterial community. While AgNO3 caused higher toxicity in the soil bacterial community structure and function. Based on our findings, we propose two key research questions for further studies; (i) is there any adaptation strategy or silver resistance embraced by the soil microbial community? and (ii) are biosynthesized nanoparticles environmentally safe and do not pose any risk to the soil microbial community? There is a necessity to address these questions to predict the environmental safety of biosynthesized AgNPs and to apply appropriate soil management policies to avoid nanotoxicity. Since this study provides preliminary evidence for the positive response of the soil bacterial community structure and functions to biosynthesized AgNPs, additional investigations under different soil conditions with varying soil physico-chemical properties are required to authenticate their environmental impact.
机译:尚未充分了解生物合成的纳米颗粒对土壤细菌群落组成和功能的环境影响。鉴于银纳米颗粒(AgNPs)的广泛应用,本研究旨在揭示生物合成的AgNPs(类似于12 nm)对土壤细菌群落结构和功能的影响。具体来说,我们使用了定量实时PCR(qPCR)方法来量化细菌分类群/群体和代表性功能基因(AOA,AOB,NirK,NirS,NosZ和PhoD)的相对丰度。结果显示,放线菌的相对丰度较高(1.53 x 10(7),p = 0.000),其次是Alphaproteobacteria(1.18 x 10(6),p = 0.000)和Betaproteobacteria(2.01 x 10(6),p = 0.000)。处理30天后暴露于生物合成的AgNPs的土壤(100 mg / kg土壤)。观察到拟杆菌属组受到AgNPs处理的负面影响。在功能基因丰富的情况下,施用30天后观察到更明显的影响。生物合成的AgNPs处理导致除NirS以外的所有目标功能基因的相对丰度显着增加。我们得出的结论是,生物合成的AgNPs不会对硝化器,反硝化器和有机磷代谢细菌群落产生毒性作用。而AgNO3在土壤细菌群落的结构和功能中引起较高的毒性。根据我们的发现,我们提出了两个需要进一步研究的关键研究问题; (i)土壤微生物群落是否有任何适应策略或抗银性? (ii)生物合成的纳米颗粒对环境安全吗,并且对土壤微生物群落没有任何风险?有必要解决这些问题,以预测生物合成的AgNP的环境安全性,并应用适当的土壤管理政策来避免纳米毒性。由于这项研究为土壤细菌群落结构和功能对生物合成的AgNPs的积极反应提供了初步证据,因此需要在不同土壤条件下,具有不同土壤理化性质的条件下进行其他研究,以验证其对环境的影响。

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