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首页> 外文期刊>The Science of the Total Environment >Transient disturbance of engineered ZnO nanoparticles enhances the resistance and resilience of anammox process in wastewater treatment
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Transient disturbance of engineered ZnO nanoparticles enhances the resistance and resilience of anammox process in wastewater treatment

机译:工程ZnO纳米颗粒的瞬态扰动增强了厌氧氨氧化工艺在废水处理中的抵抗力和弹性

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The increasing use of engineered nanoparticles (NPs) in consumer and industrial products raises concerns about their environmental impacts, but their potential influence on anaerobic ammonium oxidation (anammox) process in wastewater treatment remains unknown. In this study, the response of granule-based anammox reactor to different loads of ZnONPs was investigated. The introduction of 1–5mgL−1ZnONPs did not affect reactor performance, but 90% of the nitrogen removal capacity was deprived by a shock of 10mgL−1ZnONPs within 3days. Anammox activity was significantly inhibited, but no significant stimulation of intracellular reactive oxygen species (ROS) production or extracellular lactate dehydrogenase (LDH) activity was observed. The inhibition was thus mainly due to the accumulation of toxic Zn(II) ions in anammox biomass. However, the resistance and resilience of this anammox reactor to ZnONPs were enhanced by intermittent perturbations in the mode of “shock-recovery”. The up-regulated abundance of Zn(II)-exporter ZntA might contribute to the enhanced resistance. In addition, these repeated transient disturbances improved the functional specificity of the anammox community despite the reduction of its diversity. Overall, these results may provide useful references for evaluating and controlling the risk of NPs to anammox process.
机译:消费和工业产品中工程纳米颗粒(NPs)的使用日益增加,引起了人们对其环境影响的担忧,但是它们对废水处理中厌氧铵氧化(anammox)工艺的潜在影响仍然未知。在这项研究中,研究了基于颗粒的厌氧氨氧化反应器对不同ZnONPs负载的响应。引入1-5mgL-1ZnONPs不会影响反应堆的性能,但是在3天之内冲击10mgL-1ZnONPs会剥夺90%的脱氮能力。厌氧氨氧化活性被显着抑制,但未观察到明显刺激细胞内活性氧(ROS)产生或细胞外乳酸脱氢酶(LDH)活性。因此,抑制作用主要是由于有毒的Zn(II)离子在厌氧氨氧化生物质中的积累。但是,这种“厌氧菌”反应器对ZnONPs的抵抗力和弹性通过“休克恢复”模式的间歇性扰动而得以增强。 Zn(II)出口商ZntA的丰度上调可能有助于增强抗性。此外,这些重复的瞬时干扰尽管降低了厌氧菌群落的多样性,却提高了其厌氧菌的功能特异性。总体而言,这些结果可能为评估和控制NPs厌氧氨氧化过程的风险提供有用的参考。

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