Microplastics enhance the denitrification of glycogen-accumulating organisms by regulating electronic transport in carbon-nitrogen coupling

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Journal of Hazardous Materials Pub Date : 2025-02-21 DOI:10.1016/j.jhazmat.2025.137627
Yuchao Liu, Jinrui Cao, Sheng Li, Xinxin He, , Shang Wang, Jingfeng Wang
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Abstract

The increasing presence of microplastics (MPs) in wastewater treatment systems profoundly impacts microbial metabolism and process performance. However, the effects of MPs on the denitrification process of glycogen-accumulating organisms (GAOs) remain unclear. Herein, various types and concentrations of MPs were introduced into the activate sludge of GAOs to assess their impact on denitrification processes and to investigate the underlying mechanisms. Our findings revealed that adding 100 μm PVC increased the denitrification efficiency of GAOs by 14.6%, whereas adding 100 nm PVC decreased efficiency by 8.4%. Additionally, 100 nm PVC inhibited polyhydroxybutyrate (PHB) degradation, while 100 μm PVC promoted it. Furthermore, 100 nm and 100 μm PVC differently influenced metabolic functions, including reactive oxygen species (ROS) levels, electron transport chain (ETC) activity, and intracellular nicotinamide adenine dinucleotide (NADH) content. Metatranscriptome analyses revealed differential expression of genes such as phaC, CS, nuoL, CYC1, and nisK, which are involved in carbon-nitrogen metabolism and oxidative phosphorylation. Consequently, 100 μm PVC enhanced the denitrification rate in GAOs by promoting PHB decomposition, increasing NADH electron-donating capacity, and ultimately enhancing the denitrification rate of GAOs. Our findings reveal a novel mechanism on regulating the carbon-nitrogen coupling in activated sludge under the different particle size of MPs.

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微塑料通过调节碳氮耦合中的电子输运来增强糖原积累生物的反硝化作用
微塑料(MPs)在废水处理系统中日益增加的存在深刻地影响了微生物代谢和工艺性能。然而,MPs对糖原积累生物(GAOs)反硝化过程的影响尚不清楚。本文将不同类型和浓度的MPs引入到GAOs活性污泥中,以评估其对反硝化过程的影响,并研究其潜在机制。结果表明,添加100 μm的PVC可使高聚物的脱氮效率提高14.6%,而添加100 nm的PVC可使高聚物的脱氮效率降低8.4%。此外,100 nm PVC对聚羟基丁酸酯(PHB)的降解有抑制作用,而100 μm PVC对PHB的降解有促进作用。此外,100 nm和100 μm PVC对代谢功能的影响不同,包括活性氧(ROS)水平、电子传递链(ETC)活性和细胞内烟酰胺腺嘌呤二核苷酸(NADH)含量。meta转录组分析揭示了phaC、CS、nuoL、CYC1和isk等基因的差异表达,这些基因参与碳氮代谢和氧化磷酸化。因此,100 μm PVC通过促进PHB分解,增加NADH给电子能力,最终提高了GAOs的反硝化速率,从而提高了GAOs的反硝化速率。我们的研究结果揭示了不同粒径MPs调控活性污泥中碳氮耦合的新机制。
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来源期刊
Journal of Hazardous Materials
Journal of Hazardous Materials 工程技术-工程:环境
CiteScore
25.40
自引率
5.90%
发文量
3059
审稿时长
58 days
期刊介绍: The Journal of Hazardous Materials serves as a global platform for promoting cutting-edge research in the field of Environmental Science and Engineering. Our publication features a wide range of articles, including full-length research papers, review articles, and perspectives, with the aim of enhancing our understanding of the dangers and risks associated with various materials concerning public health and the environment. It is important to note that the term "environmental contaminants" refers specifically to substances that pose hazardous effects through contamination, while excluding those that do not have such impacts on the environment or human health. Moreover, we emphasize the distinction between wastes and hazardous materials in order to provide further clarity on the scope of the journal. We have a keen interest in exploring specific compounds and microbial agents that have adverse effects on the environment.
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