Micro(nano)plastic size and concentration co-differentiate the treatment performance and toxicity mechanism in aerobic granular sludge systems
暂无分享,去创建一个
[1] L. Gan,et al. Toxicity of nanoplastics to aquatic organisms: Genotoxicity, cytotoxicity, individual level and beyond individual level. , 2022, Journal of hazardous materials.
[2] Xiao-Ying Zheng,et al. Response of aerobic granular sludge under polyethylene microplastics stress: Physicochemical properties, decontamination performance, and microbial community. , 2022, Journal of environmental management.
[3] Xueming Chen,et al. Hydrochar Alleviated the Inhibitory Effects of Polyvinyl Chloride Microplastics and Nanoplastics on Anaerobic Granular Sludge for Wastewater Treatment , 2022, Chemical Engineering Journal.
[4] B. Ni,et al. The changes of microplastics' behavior in adsorption and anaerobic digestion of waste activated sludge induced by hydrothermal pretreatment. , 2022, Water research.
[5] Yi Chen,et al. Micro(nano)plastic size and concentration co-differentiate nitrogen transformation, microbiota dynamics, and assembly patterns in constructed wetlands. , 2022, Water research.
[6] Gang Liu,et al. Impact of microplastics on the treatment performance of constructed wetlands: Based on substrate characteristics and microbial activities. , 2022, Water research.
[7] E. Lichtfouse,et al. The protective layer formed by soil particles on plastics decreases the toxicity of polystyrene microplastics to earthworms (Eisenia fetida). , 2022, Environment international.
[8] S. Bhatia,et al. Finding of novel lactate utilizing Bacillus sp. YHY22 and its evaluation for polyhydroxybutyrate (PHB) production. , 2022, International journal of biological macromolecules.
[9] Yili Xie,et al. Use of extracellular polymeric substances as natural redox mediators to enhance denitrification performance by accelerating electron transfer and carbon source metabolism. , 2021, Bioresource technology.
[10] Qian Zhang,et al. The metabolic patterns of the complete nitrates removal in the biofilm denitrification systems supported by polymer and water-soluble carbon sources as the electron donors. , 2021, Bioresource technology.
[11] J. Hou,et al. Polystyrene nanoplastics change the functional traits of biofilm communities in freshwater environment revealed by GeoChip 5.0. , 2021, Journal of hazardous materials.
[12] Juan Huang,et al. Comprehensive metagenomic and enzyme activity analysis reveals the negatively influential and potentially toxic mechanism of polystyrene nanoparticles on nitrogen transformation in constructed wetlands. , 2021, Water research.
[13] M. Junaid,et al. Interaction of nanoplastics with extracellular polymeric substances (EPS) in the aquatic environment: A special reference to eco-corona formation and associated impacts. , 2021, Water research.
[14] J. Vollertsen,et al. A complete mass balance for plastics in a wastewater treatment plant - Macroplastics contributes more than microplastics. , 2021, Water research.
[15] Qi Zhou,et al. Metagenomic analyses of microbial structure and metabolic pathway in solid-phase denitrification systems for advanced nitrogen removal of wastewater treatment plant effluent: A pilot-scale study. , 2021, Water research.
[16] P. Lens,et al. Evolution of the sludge mineral composition enhances operation performance of the aerobic granular sludge reactor coupled with iron electrolysis , 2021 .
[17] Chenxi Wu,et al. Understanding plastic degradation and microplastic formation in the environment: A review. , 2021, Environmental pollution.
[18] Fazhi Xie,et al. Effect of microplastic particle size to the nutrients removal in activated sludge system. , 2021, Marine pollution bulletin.
[19] Wanjun Duan,et al. Microplastics affect the ammonia oxidation performance of aerobic granular sludge and enrich the intracellular and extracellular antibiotic resistance genes. , 2020, Journal of hazardous materials.
[20] Xueming Chen,et al. The entering of polyethylene terephthalate microplastics into biological wastewater treatment system affects aerobic sludge digestion differently from their direct entering into sludge treatment system. , 2020, Water research.
[21] Shaohua Wu,et al. Fate and effects of microplastics in wastewater treatment processes. , 2020, The Science of the total environment.
[22] Qiang He,et al. Nanoplastics Disturb Nitrogen Removal in Constructed Wetlands: Responses of Microbes and Macrophytes. , 2020, Environmental science & technology.
[23] Kun Qi,et al. Microplastics as an emerging anthropogenic vector of trace metals in freshwater: Significance of biofilms and comparison with natural substrates. , 2020, Water research.
[24] Q. Hao,et al. Polystyrene nanoplastics reshape the anaerobic granular sludge for recovering methane from wastewater. , 2020, Water research.
[25] Jingfeng Gao,et al. Behavior of nitrogen, phosphorus and antibiotic resistance genes under polyvinyl chloride microplastics pressures in an aerobic granular sludge system , 2020 .
[26] M. V. van Loosdrecht,et al. Stable granulation of seawater-adapted aerobic granular sludge with filamentous Thiothrix bacteria. , 2020, Water research.
[27] S. Valiyaveettil,et al. Toxicity of Microplastics and Nanoplastics in Mammalian Systems , 2020, International journal of environmental research and public health.
[28] Yinguang Chen,et al. Effects of microplastics on wastewater and sewage sludge treatment and their removal: A review , 2020 .
[29] Zhengpeng Chen,et al. Effects of exposure to polyether sulfone microplastic on the nitrifying process and microbial community structure in aerobic granular sludge. , 2020, Bioresource technology.
[30] Jun Nan,et al. Start-up of aerobic granular biofilm at low temperature: Performance and microbial community dynamics. , 2020, The Science of the total environment.
[31] Peifang Wang,et al. Effects of Ag NPs on denitrification in suspended sediments via inhibiting microbial electron behaviors. , 2019, Water research.
[32] R. Rosal,et al. Fate of microplastics in wastewater treatment plants and their environmental dispersion with effluent and sludge. , 2019, Environmental pollution.
[33] Medine Türkoğlu,et al. Polystyrene Nanoplastics (20 nm) are able to bioaccumulate and cause oxidative DNA damages in the brain tissue of zebrafish embryo (Danio rerio). , 2019, Neurotoxicology.
[34] Linqin Tang,et al. Exposure to polyamide 66 microplastic leads to effects performance and microbial community structure of aerobic granular sludge. , 2019, Ecotoxicology and environmental safety.
[35] Yayi Wang,et al. Characterization of stratified EPS and their role in the initial adhesion of anammox consortia. , 2019, Water research.
[36] Ludovic F. Dumée,et al. Nano/microplastics in water and wastewater treatment processes - Origin, impact and potential solutions. , 2019, Water research.
[37] B. Ni,et al. Revealing the Mechanisms of Polyethylene Microplastics Affecting Anaerobic Digestion of Waste Activated Sludge. , 2019, Environmental science & technology.
[38] Xiangyang Xu,et al. The regulation of N-acyl-homoserine lactones (AHLs)-based quorum sensing on EPS secretion via ATP synthetic for the stability of aerobic granular sludge. , 2019, The Science of the total environment.
[39] Jing Sun,et al. Microplastics in wastewater treatment plants: Detection, occurrence and removal. , 2019, Water research.
[40] Gaofeng Chen,et al. Thiothrix eikelboomii interferes oxygen transfer in activated sludge. , 2019, Water research.
[41] Qiang He,et al. Short-term responses of denitrification to chlorothalonil in riparian sediments: Process, mechanism and implication , 2019, Chemical Engineering Journal.
[42] F. Cui,et al. Enhanced aerobic granulation by applying the low-intensity direct current electric field via reactive iron anode. , 2019, Water research.
[43] P. Zheng,et al. Oxidation of organic electron donor by denitratation: Performance, pathway and key microorganism , 2018, Chemical Engineering Journal.
[44] P. Lens,et al. Enhancement of aerobic granulation and nutrient removal by an algal–bacterial consortium in a lab-scale photobioreactor , 2018 .
[45] M. V. van Loosdrecht,et al. The acid soluble extracellular polymeric substance of aerobic granular sludge dominated by Defluviicoccus sp. , 2017, Water research.
[46] Zhao-hui Yang,et al. Extracellular polymeric substances are transient media for microbial extracellular electron transfer , 2017, Science Advances.
[47] J. van der Oost,et al. NADPH-generating systems in bacteria and archaea , 2015, Front. Microbiol..
[48] R. Nabizadeh,et al. 4-Chlorophenol inhibition on flocculent and granular sludge sequencing batch reactors treating synthetic industrial wastewater , 2012 .
[49] Yu Liu,et al. Roles of ATP-dependent N-acylhomoserine lactones (AHLs) and extracellular polymeric substances (EPSs) in aerobic granulation. , 2012, Chemosphere.
[50] Xiong Zheng,et al. Response of anaerobic granular sludge to a shock load of zinc oxide nanoparticles during biological wastewater treatment. , 2012, Environmental science & technology.
[51] A. Nerurkar,et al. Assessment of denitrifying bacterial composition in activated sludge. , 2011, Bioresource technology.
[52] Zhiwei Wang,et al. Extracellular polymeric substances (EPS) properties and their effects on membrane fouling in a submerged membrane bioreactor. , 2009, Water research.
[53] J. Tay,et al. Aerobic granular sludge: recent advances. , 2008, Biotechnology advances.
[54] G. Peterson,et al. A simplification of the protein assay method of Lowry et al. which is more generally applicable. , 1977, Analytical biochemistry.
[55] F. Meng,et al. Spectroscopic characterization of extracellular polymeric substances from a mixed culture dominated by ammonia-oxidizing bacteria. , 2015, Water research.
[56] H. Oh,et al. Enhancing microalgal biomass productivity by engineering a microalgal-bacterial community. , 2015, Bioresource Technology.
[57] F. Smith,et al. COLORIMETRIC METHOD FOR DETER-MINATION OF SUGAR AND RELATED SUBSTANCE , 1956 .