A comprehensive and global evaluation of residual antibiotics in agricultural soils: Accumulation, potential ecological risks, and attenuation strategies.
暂无分享,去创建一个
S. S. Lee | S. Shaheen | Chengyu Chen | B. Sarkar | Gopal Sharma | Xinping Chen | Ran Xiao | Shi-Yang Li | Linfa Fang | Pingping Ye | Yujia Shi
[1] C. Lundborg,et al. The development of an integrated environment-human risk approach for the prioritisation of antibiotics for policy decisions. , 2023, The Science of the total environment.
[2] S. Shaheen,et al. Occurrence profiling and environmental risk assessment of veterinary antibiotics in vegetable soils at Chongqing region, China. , 2023, Environmental research.
[3] L. Qin,et al. Mechanism of time-dependent toxicity of quinolone antibiotics on luminescent bacteria Vibrio qinghaiensis sp.-Q67. , 2023, Ecotoxicology and environmental safety.
[4] Dongpo Xu,et al. Magnetically separable laccase-biochar composite enable highly efficient adsorption-degradation of quinolone antibiotics: Immobilization, removal performance and mechanisms. , 2023, The Science of the total environment.
[5] Guoxiang Zheng,et al. Insight into effects of pyrolysis products and white-rot fungi on co-composting of pig manure and corn stalk , 2023, Biomass Conversion and Biorefinery.
[6] A. Warren,et al. Predation risk affects the ecotoxicity evaluation of antibiotics: Population growth and antioxidase activity in the ciliate Paramecium jenningsi. , 2023, Ecotoxicology and environmental safety.
[7] F. Zvomuya,et al. Critical review of phytoremediation for the removal of antibiotics and antibiotic resistance genes in wastewater. , 2023, The Science of the total environment.
[8] Yuduo Zhang,et al. Fate of antibiotic resistance genes in cultivation substrate and its association with bacterial communities throughout commercial production of Agaricus bisporus. , 2022, Ecotoxicology and environmental safety.
[9] Jianying Wu,et al. Comprehensive analysis of the fates and risks of veterinary antibiotics in a small ecosystem comprising a pig farm and its surroundings in Northeast China. , 2022, Journal of hazardous materials.
[10] Yiming Wang,et al. Persistence of Salmonella Typhimurium and antibiotic resistance genes in different types of soil influenced by flooding and soil properties. , 2022, Ecotoxicology and environmental safety.
[11] F. Baquero,et al. Natural detoxification of antibiotics in the environment: A one health perspective , 2022, Frontiers in Microbiology.
[12] R. Dahlgren,et al. Modification of agricultural wastes to improve sorption capacities for pollutant removal from water – a review , 2022, Carbon Research.
[13] J. Tiedje,et al. Integrating Biochar, Bacteria, and Plants for Sustainable Remediation of Soils Contaminated with Organic Pollutants , 2022, Environmental science & technology.
[14] R. Vyas,et al. A review on antibiotics pervasiveness in the environment and their removal from wastewater , 2022, Separation Science and Technology.
[15] Min Wang,et al. Peroxymonosulfate activation by cobalt particles embedded into biochar for levofloxacin degradation: Efficiency, stability, and mechanism , 2022, Separation and Purification Technology.
[16] W. Khan,et al. Prevalence of ESKAPE pathogens in the environment: Antibiotic resistance status, community-acquired infection and risk to human health. , 2022, International journal of hygiene and environmental health.
[17] Fengxia Yang,et al. Manure application: A trigger for vertical accumulation of antibiotic resistance genes in cropland soils. , 2022, Ecotoxicology and environmental safety.
[18] B. Buszewski,et al. Determination of 15 human pharmaceutical residues in fish and shrimp tissues by high-performance liquid chromatography-tandem mass spectrometry , 2022, Environmental Monitoring and Assessment.
[19] Zilin Song,et al. Dynamics and key drivers of antibiotic resistance genes during aerobic composting amended with plant-derived and animal manure-derived biochars. , 2022, Bioresource technology.
[20] C. Lundborg,et al. Interventions to optimize the use of antibiotics in China: A scoping review of evidence from humans, animals, and the environment from a One Health perspective , 2022, One health.
[21] Xiaojuan Wang,et al. Clarifying the beneficial effects of plant growth-promoting rhizobacteria for reducing abundances of antibiotic resistance genes during swine manure composting. , 2022, Bioresource technology.
[22] N. Cañameras,et al. Occurrence of antibiotics in Lettuce (Lactuca sativa L.) and Radish (Raphanus sativus L.) following organic soil fertilisation under plot-scale conditions: Crop and human health implications. , 2022, Journal of hazardous materials.
[23] Yueqiang Zhang,et al. Impacts of farmland application of antibiotic-contaminated manures on the occurrence of antibiotic residues and antibiotic resistance genes in soil: A meta-analysis study. , 2022, Chemosphere.
[24] Zhaoming Chen,et al. Plants Mitigate Nitrous Oxide Emissions from Antibiotic-Contaminated Agricultural Soils. , 2022, Environmental science & technology.
[25] T. Bollenbach,et al. The physiology and genetics of bacterial responses to antibiotic combinations , 2022, Nature Reviews Microbiology.
[26] Liding Chen,et al. Occurrence, spatial distribution and ecological risks of antibiotics in soil in urban agglomeration. , 2022, Journal of environmental sciences.
[27] Hailiang Song,et al. Enhanced removal of antibiotics and antibiotic resistance genes in a soil microbial fuel cell via in situ remediation of agricultural soils with multiple antibiotics. , 2022, The Science of the total environment.
[28] R. Balasubramanian,et al. Adsorptive removal of sulfonamides, tetracyclines and quinolones from wastewater and water using carbon-based materials: Recent developments and future directions , 2022, Journal of Cleaner Production.
[29] Jinyang Wang,et al. Sulfonamide antibiotics alter gaseous nitrogen emissions in the soil-plant system: A mesocosm experiment and meta-analysis. , 2022, The Science of the total environment.
[30] Xiaojun Li,et al. Joint effects of bacterium and biochar in remediation of antibiotic-heavy metal contaminated soil and responses of resistance gene and microbial community. , 2022, Chemosphere.
[31] E. Cummins,et al. A comparative risk ranking of antibiotic pollution from human and veterinary antibiotic usage - An Irish case study. , 2022, The Science of the total environment.
[32] Xin-ping Chen,et al. Global reactive nitrogen loss in orchard systems: A review. , 2022, The Science of the total environment.
[33] Zilin Song,et al. The fate of antibiotic resistance genes and their influential factors in swine manure composting with sepiolite as additive. , 2022, Bioresource technology.
[34] G. Wang,et al. Sorption properties and mechanisms of erythromycin and ampicillin in loess soil: Roles of pH, ionic strength, and temperature , 2022, Chemical Engineering Journal.
[35] M. Strickland,et al. Antibiotics and temperature interact to disrupt soil communities and nutrient cycling , 2021, Soil Biology and Biochemistry.
[36] Liding Chen,et al. Veterinary antibiotics can reduce crop yields by modifying soil bacterial community and earthworm population in agro-ecosystems. , 2021, The Science of the total environment.
[37] Hongyong Sun,et al. Effects of swine wastewater irrigation on soil properties and accumulation of heavy metals and antibiotics , 2021, Journal of Soils and Sediments.
[38] M. Zaiat,et al. Can different inoculum sources influence the biodegradation of sulfamethoxazole antibiotic during anaerobic digestion? , 2021, Brazilian Journal of Chemical Engineering.
[39] Clinton F. Williams,et al. Sorption and desorption behavior of four antibiotics at concentrations simulating wastewater reuse in agricultural and forested soils. , 2021, Chemosphere.
[40] Linchuan Fang,et al. A critical review of microplastics in the soil-plant system: Distribution, uptake, phytotoxicity and prevention. , 2021, Journal of hazardous materials.
[41] Annu,et al. Critical review on adsorptive removal of antibiotics: Present situation, challenges and future perspective. , 2021, Journal of hazardous materials.
[42] O. Gillor,et al. The dissemination of antibiotics and their corresponding resistance genes in treated effluent-soil-crops continuum, and the effect of barriers. , 2021, The Science of the total environment.
[43] Alan D. Lopez,et al. Global antibiotic consumption and usage in humans, 2000–18: a spatial modelling study , 2021, The Lancet. Planetary health.
[44] Hongju He,et al. The mechanism of uptake and translocation of antibiotics by pak choi (Brassica rapa subsp. chinensis) , 2021, Science of The Total Environment.
[45] Guanghua Wang,et al. Potential role of organic matter in the transmission of antibiotic resistance genes in black soils. , 2021, Ecotoxicology and environmental safety.
[46] W. Ouyang,et al. Profiling of the spatiotemporal distribution, risks, and prioritization of antibiotics in the waters of Laizhou Bay, northern China. , 2021, Journal of hazardous materials.
[47] N. Tam,et al. The effect of rhizosphere and the plant species on the degradation of sulfonamides in model constructed wetlands treating synthetic domestic wastewater. , 2021, Chemosphere.
[48] J. Hansen,et al. Removal of 27 micropollutants by selected wetland macrophytes in hydroponic conditions. , 2021, Chemosphere.
[49] Jinsheng Liang,et al. Preparation of Sepiolite Nanofibers Supported Zero Valent Iron Composite Material for Catalytic Removal of Tetracycline in Aqueous Solution , 2021, Frontiers in Chemistry.
[50] Qunhui Wang,et al. Mesophilic condition is more conducive to methane production yield and tylosin removal on tylosin fermentation dreg anaerobic digestion. , 2021, Bioresource technology.
[51] Yiwen Yuan,et al. A systematic review on antibiotics misuse in livestock and aquaculture and regulation implications in China. , 2021, The Science of the total environment.
[52] V. Réquillart,et al. Review: Why and how to regulate animal production and consumption: The case of the European Union. , 2021, Animal : an international journal of animal bioscience.
[53] Chengyu Chen,et al. Occurrence and risk assessment of tetracycline antibiotics in soils and vegetables from vegetable fields in Pearl River Delta, South China , 2021, Science of The Total Environment.
[54] S. Banwart,et al. Insights into the mechanism of the interference of sulfadiazine on soil microbial community and function. , 2021, Journal of hazardous materials.
[55] Hongdou Liu,et al. Chitosan as additive affects the bacterial community, accelerates the removals of antibiotics and related resistance genes during chicken manure composting. , 2021, The Science of the total environment.
[56] V. Edel-Hermann,et al. Fate of deoxynivalenol (DON) and impact on the soil microflora and soil fauna , 2021 .
[57] Xiaojing Li,et al. Temporal and spatial variability of antibiotics in agricultural soils from Huang-Huai-Hai Plain, northern China. , 2021, Chemosphere.
[58] Yong-guan Zhu,et al. Agricultural land-use change and rotation system exert considerable influences on the soil antibiotic resistome in Lake Tai Basin. , 2021, The Science of the total environment.
[59] Xiaohui Liu,et al. Effect of soil sulfamethoxazole on strawberry (Fragaria ananassa): Growth, health risks and silicon mitigation. , 2021, Environmental pollution.
[60] Daiane Cristina Rocha,et al. Veterinary antibiotics and plant physiology: An overview. , 2021, The Science of the total environment.
[61] André van Eerde,et al. Pollution by Antibiotics and Antimicrobial Resistance in LiveStock and Poultry Manure in China, and Countermeasures , 2021, Antibiotics.
[62] G. Ying,et al. Microalgae-based technology for antibiotics removal: From mechanisms to application of innovational hybrid systems. , 2021, Environment international.
[63] A. torre,et al. Phytotoxic Effects of Antibiotics on Terrestrial Crop Plants and Wild Plants: A Systematic Review , 2021, Archives of Environmental Contamination and Toxicology.
[64] Songjing Li,et al. Ryegrass (Lolium multiflorum L.) and Indian mustard (Brassica juncea L.) intercropping can improve the phytoremediation of antibiotics and antibiotic resistance genes but not heavy metals. , 2021, The Science of the total environment.
[65] B. Badgley,et al. Application of manure from cattle administered antibiotics has sustained multi-year impacts on soil resistome and microbial community structure , 2021 .
[66] R. Dong,et al. A review targeting veterinary antibiotics removal from livestock manure management systems and future outlook. , 2021, Bioresource technology.
[67] J. Tiedje,et al. Antibiotic resistance in the soil ecosystem: A One Health perspective , 2021 .
[68] Rong Huang,et al. Interaction between β-lactam antibiotic and phosphorus-accumulating organisms , 2021, Environmental Science and Pollution Research.
[69] M. Popowska,et al. Antibiotics and Antibiotic Resistance Genes in Animal Manure – Consequences of Its Application in Agriculture , 2021, Frontiers in Microbiology.
[70] Xiaojing Li,et al. Removal of chlortetracycline and antibiotic resistance genes in soil by earthworms (epigeic Eisenia fetida and endogeic Metaphire guillelmi). , 2021, The Science of the total environment.
[71] P. Iji,et al. Can probiotic or prebiotic yeast (Saccharomyces cerevisiae) serve as alternatives to in-feed antibiotics for healthy or disease-challenged broiler chickens? - A Review , 2021 .
[72] M. Arias-Estévez,et al. Environmental relevance of adsorption of doxycycline, enrofloxacin, and sulfamethoxypyridazine before and after the removal of organic matter from soils. , 2021, Journal of environmental management.
[73] T. Christensen,et al. Consumer preferences for reduced antibiotic use in Danish pig production. , 2021, Preventive veterinary medicine.
[74] Min Liu,et al. A systematic review of antibiotics and antibiotic resistance genes in estuarine and coastal environments. , 2021, The Science of the total environment.
[75] Xinzheng Li,et al. Providing a view for toxicity mechanism of tetracycline by analysis of the connections between metabolites and biologic endpoints of wheat. , 2021, Ecotoxicology and environmental safety.
[76] M. Gillings,et al. A survey of sub-inhibitory concentrations of antibiotics in the environment. , 2021, Journal of environmental sciences.
[77] K. Butterbach‐Bahl,et al. Global greenhouse vegetable production systems are hotspots of soil N2O emissions and nitrogen leaching: A meta-analysis. , 2020, Environmental pollution.
[78] T. Ren,et al. Metagenomic analysis reveals functional genes in soil microbial electrochemical removal of tetracycline. , 2020, Journal of hazardous materials.
[79] B. Xie,et al. Study on the remediation of tetracycline antibiotics and roxarsone contaminated soil. , 2020, Environmental pollution.
[80] T. V. Van Boeckel,et al. Global Trends in Antimicrobial Use in Food Animals from 2017 to 2030 , 2020, Antibiotics.
[81] L. Ping,et al. Long-term biogas slurry application increased antibiotics accumulation and antibiotic resistance genes (ARGs) spread in agricultural soils with different properties. , 2020, The Science of the total environment.
[82] Z. Ren,et al. Swine Manure Composting With Compound Microbial Inoculants: Removal of Antibiotic Resistance Genes and Their Associations With Microbial Community , 2020, Frontiers in Microbiology.
[83] Hongwen Sun,et al. Effects of biochar on biodegradation of sulfamethoxazole and chloramphenicol by Pseudomonas stutzeri and Shewanella putrefaciens: Microbial growth, fatty acids, and the expression quantity of genes. , 2020, Journal of hazardous materials.
[84] N. Oh,et al. Antibiotics in surface water of East and Southeast Asian countries: A focused review on contamination status, pollution sources, potential risks, and future perspectives. , 2020, The Science of the total environment.
[85] Yanzheng Gao,et al. Antibiotic resistance gene abundance and bacterial community structure in soils altered by Ammonium and Nitrate Concentrations , 2020 .
[86] I. Ahmed,et al. Growth responses and rubisco activity influenced by antibiotics and organic amendments used for stress alleviation in Lactuca sativa. , 2020, Chemosphere.
[87] Pratima Gupta,et al. Recent advancement in remediation of synthetic organic antibiotics from environmental matrices: Challenges and perspective. , 2020, Bioresource technology.
[88] Haidong Zhou,et al. Zero-valent iron enhanced in-situ advanced anaerobic digestion for the removal of antibiotics and antibiotic resistance genes in sewage sludge. , 2020, The Science of the total environment.
[89] S. V. Kergaravat,et al. Second-, third- and fourth-generation quinolones: Ecotoxicity effects on Daphnia and Ceriodaphnia species. , 2020, Chemosphere.
[90] N. Cañameras,et al. Dose effect of Zn and Cu in sludge-amended soils on vegetable uptake of trace elements, antibiotics, and antibiotic resistance genes: Human health implications. , 2020, Environmental research.
[91] Application of free and immobilized laccase for removal and detoxification of fluoroquinolones from aqueous solution , 2020, Global NEST: the international Journal.
[92] Linsheng Yang,et al. Antibiotics in soil and water in China-a systematic review and source analysis. , 2020, Environmental pollution.
[93] D. Sarkar,et al. Removal of tetracycline and ciprofloxacin from wastewater by vetiver grass (Chrysopogon zizanioides (L.) Roberty) as a function of nutrient concentrations , 2020, Environmental Science and Pollution Research.
[94] Hongtao Wang,et al. Enhanced removal of ciprofloxacin and reduction of antibiotic resistance genes by earthworm Metaphire vulgaris in soil. , 2020, The Science of the total environment.
[95] Khouloud M. Barakat,et al. A novel horizontal subsurface flow constructed wetland planted with Typha angustifolia for treatment of polluted water , 2020, Environmental Science and Pollution Research.
[96] M. Arias-Estévez,et al. Adsorption/desorption of three tetracycline antibiotics on different soils in binary competitive systems. , 2020, Journal of environmental management.
[97] Xiaoming Li,et al. Clarithromycin affect methane production from anaerobic digestion of waste activated sludge , 2020 .
[98] Jian Wang,et al. Antibiotics in animal manure and manure-based fertilizers: Occurrence and ecological risk assessment. , 2020, Chemosphere.
[99] Laura J. Carter,et al. Antibiotic-contaminated wastewater irrigated vegetables pose resistance selection risks to the gut microbiome. , 2020, Environmental pollution.
[100] M. Arias-Estévez,et al. Adsorption-desorption of doxycycline in agricultural soils: Batch and stirred-flow-chamber experiments. , 2020, Environmental research.
[101] Balaraman Ravindran,et al. Veterinary antibiotics in animal manure and manure laden soil: Scenario and challenges in Asian countries , 2020 .
[102] Guanrong Li,et al. Single and joint toxic effects of four antibiotics on some metabolic pathways of zebrafish (Danio rerio) larvae. , 2020, The Science of the total environment.
[103] Yong-guan Zhu,et al. Large-scale patterns of soil antibiotic resistome in Chinese croplands. , 2020, The Science of the total environment.
[104] Long-Jun Ding,et al. Identification of potential electrotrophic microbial community in paddy soils by enrichment of microbial electrolysis cell biocathodes. , 2020, Journal of environmental sciences.
[105] Zhiheng Wang,et al. Aerobic composting as an effective cow manure management strategy for reducing the dissemination of antibiotic resistance genes: An integrated meta-omics study. , 2019, Journal of hazardous materials.
[106] Y. Ge,et al. Biochar accelerates the removal of tetracyclines and their intermediates by altering soil properties. , 2019, Journal of hazardous materials.
[107] Yaoyu Zhou,et al. Current progress in the adsorption, transport and biodegradation of antibiotics in soil. , 2019, Journal of environmental management.
[108] Xiaodan Lin,et al. Spectrum and environmental risks of residual pharmaceuticals in stream water with emphasis on its relation to epidemic infectious disease and anthropogenic activity in watershed. , 2019, Journal of hazardous materials.
[109] Jianlong Wang,et al. Degradation of antibiotics by advanced oxidation processes: An overview. , 2019, The Science of the total environment.
[110] V. Inglezakis,et al. Application of zeolites in organic waste composting: A review , 2019, Biocatalysis and Agricultural Biotechnology.
[111] M. Arias-Estévez,et al. Competitive adsorption of tetracycline, oxytetracycline and chlortetracycline on soils with different pH value and organic matter content. , 2019, Environmental research.
[112] Yuanfang Liu,et al. A review on removing antibiotics and antibiotic resistance genes from wastewater by constructed wetlands: Performance and microbial response. , 2019, Environmental pollution.
[113] Yongyou Hu,et al. Simultaneous sulfamethoxazole biodegradation and nitrogen conversion by Achromobacter sp. JL9 using with different carbon and nitrogen sources. , 2019, Bioresource technology.
[114] V. Litskas,et al. The xenobiotic doxycycline affects nitrogen transformations in soil and impacts earthworms and cultivated plants , 2019, Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.
[115] Xiaolin Zhu,et al. Pollution characteristics of antibiotics and antibiotic resistance of coliform bacteria in the Yitong River, China , 2019, Environmental Monitoring and Assessment.
[116] T. Ren,et al. Shifting interactions among bacteria, fungi and archaea enhance removal of antibiotics and antibiotic resistance genes in the soil bioelectrochemical remediation , 2019, Biotechnology for Biofuels.
[117] Liding Chen,et al. Soil contamination with antibiotics in a typical peri-urban area in eastern China: Seasonal variation, risk assessment, and microbial responses. , 2019, Journal of environmental sciences.
[118] T. Mahmood,et al. Bacteria-assisted removal of fluoroquinolones from wheat rhizospheres in an agricultural soil. , 2019, Chemosphere.
[119] A. Mrozik,et al. Antibiotics in the Soil Environment—Degradation and Their Impact on Microbial Activity and Diversity , 2019, Front. Microbiol..
[120] Jianteng Sun,et al. Occurrence and distribution of antibiotics and resistance genes in greenhouse and open-field agricultural soils in China. , 2019, Chemosphere.
[121] Dayi Zhang,et al. Changes in atrazine speciation and the degradation pathway in red soil during the vermiremediation process. , 2019, Journal of hazardous materials.
[122] Xiaojing Li,et al. Long-term effect of biochar amendment on the biodegradation of petroleum hydrocarbons in soil microbial fuel cells. , 2019, The Science of the total environment.
[123] Jinsheng He,et al. Environmental filtering of bacterial functional diversity along an aridity gradient , 2019, Scientific Reports.
[124] C. Almeida,et al. Biodegradation of oxytetracycline and enrofloxacin by autochthonous microbial communities from estuarine sediments. , 2019, The Science of the total environment.
[125] A. Meharg,et al. Degradation of tetracyclines in manure-amended soil and their uptake by litchi (Litchi chinensis Sonn.) , 2019, Environmental Science and Pollution Research.
[126] Nan Li,et al. Repeated transfer enriches highly active electrotrophic microbial consortia on biocathodes in microbial fuel cells. , 2018, Biosensors & bioelectronics.
[127] Edward J Calabrese,et al. Human and veterinary antibiotics induce hormesis in plants: Scientific and regulatory issues and an environmental perspective. , 2018, Environment international.
[128] D. Patureau,et al. Human and veterinary antibiotics during composting of sludge or manure: Global perspectives on persistence, degradation, and resistance genes. , 2018, Journal of hazardous materials.
[129] Xiaoyuan Yan,et al. Effects of long-term pig manure application on antibiotics, abundance of antibiotic resistance genes (ARGs), anammox and denitrification rates in paddy soils. , 2018, Environmental pollution.
[130] M. Arias-Estévez,et al. Biotic and abiotic dissipation of tetracyclines using simulated sunlight and in the dark. , 2018, The Science of the total environment.
[131] W. Xing,et al. Antibiotics and antibiotic resistance genes in global lakes: A review and meta-analysis. , 2018, Environment international.
[132] Yong Bok Lee,et al. Veterinary antibiotics (VAs) contamination as a global agro-ecological issue: A critical view , 2018 .
[133] P. Lara-Martín,et al. Monitoring the occurrence of pharmaceuticals in soils irrigated with reclaimed wastewater. , 2018, Environmental pollution.
[134] R. Youngman,et al. Structures and mechanisms in clay nanopore trapping of structurally-different fluoroquinolone antimicrobials. , 2018, Journal of colloid and interface science.
[135] Q. Shen,et al. Antibiotics and antibiotic resistance from animal manures to soil: a review , 2018 .
[136] Yuting Zhou,et al. Occurrence, abundance, and distribution of sulfonamide and tetracycline resistance genes in agricultural soils across China. , 2017, The Science of the total environment.
[137] Daniel C W Tsang,et al. Antibiotics in the agricultural soils from the Yangtze River Delta, China. , 2017, Chemosphere.
[138] Baoling Yuan,et al. Biodegradation of chlortetracycline by acclimated microbiota , 2017 .
[139] Dawen Gao,et al. Occurrence, distribution, and risk assessment of antibiotics in the Songhua River in China , 2017, Environmental Science and Pollution Research.
[140] C. Li,et al. Toxicity of 13 different antibiotics towards freshwater green algae Pseudokirchneriella subcapitata and their modes of action. , 2017, Chemosphere.
[141] Hefa Cheng,et al. Health risk from veterinary antimicrobial use in China's food animal production and its reduction. , 2016, Environmental pollution.
[142] J. Cho,et al. Veterinary antibiotics in animal waste, its distribution in soil and uptake by plants: A review. , 2016, The Science of the total environment.
[143] Bernd Huwe,et al. Effect of pH and soil structure on transport of sulfonamide antibiotics in agricultural soils. , 2016, Environmental pollution.
[144] Haibo Zhang,et al. Residues and risks of veterinary antibiotics in protected vegetable soils following application of different manures. , 2016, Chemosphere.
[145] Qian Lou,et al. Simultaneous removal and degradation characteristics of sulfonamide, tetracycline, and quinolone antibiotics by laccase-mediated oxidation coupled with soil adsorption. , 2016, Journal of hazardous materials.
[146] Yan-Wen Li,et al. Occurrence and risk assessment of tetracycline antibiotics in soil from organic vegetable farms in a subtropical city, south China , 2016, Environmental Science and Pollution Research.
[147] Mingqing Pan,et al. Phytotoxicity of veterinary antibiotics to seed germination and root elongation of crops. , 2016, Ecotoxicology and environmental safety.
[148] G. Owens,et al. Enhanced antibiotic removal by the addition of bamboo charcoal during pig manure composting , 2016 .
[149] Yong-guan Zhu,et al. Behavior of antibiotics and antibiotic resistance genes in eco-agricultural system: A case study. , 2016, Journal of hazardous materials.
[150] C. Marichal,et al. Enhanced interlayer trapping of a tetracycline antibiotic within montmorillonite layers in the presence of Ca and Mg. , 2016, Journal of colloid and interface science.
[151] M. P. Francino,et al. Antibiotics and the Human Gut Microbiome: Dysbioses and Accumulation of Resistances , 2016, Front. Microbiol..
[152] Jihua Wang,et al. Occurrence of antibiotics in soils and manures from greenhouse vegetable production bases of Beijing, China and an associated risk assessment. , 2015, The Science of the total environment.
[153] Yaqi Cai,et al. Occurrence and distribution of antibiotics in urban soil in Beijing and Shanghai, China , 2015, Environmental Science and Pollution Research.
[154] Marius Gilbert,et al. Global trends in antimicrobial use in food animals , 2015, Proceedings of the National Academy of Sciences.
[155] J. Hou,et al. Occurrence and distribution of sulfonamides, tetracyclines, quinolones, macrolides, and nitrofurans in livestock manure and amended soils of Northern China , 2015, Environmental Science and Pollution Research.
[156] Hui Li,et al. Distribution and risk assessment of quinolone antibiotics in the soils from organic vegetable farms of a subtropical city, Southern China. , 2014, The Science of the total environment.
[157] Lingli Huang,et al. Antibiotic alternatives: the substitution of antibiotics in animal husbandry? , 2014, Front. Microbiol..
[158] S. Rath,et al. Sorption and desorption of sulfadimethoxine, sulfaquinoxaline and sulfamethazine antimicrobials in Brazilian soils. , 2014, The Science of the total environment.
[159] T. Knepper,et al. Photodegradation of sulfonamides and their N4-acetylated metabolites in water by simulated sunlight irradiation: kinetics and identification of photoproducts , 2013, Environmental Science and Pollution Research.
[160] Heather K. Allen,et al. Treatment, promotion, commotion: antibiotic alternatives in food-producing animals. , 2013, Trends in microbiology.
[161] Liang Wang,et al. Quantitatively modeling soil-water distribution coefficients of three antibiotics using soil physicochemical properties. , 2012, Chemosphere.
[162] B. Teppen,et al. Sorption of Lincomycin at Low Concentrations from Water by Soils , 2012 .
[163] H. Hamdi,et al. Assessment of the genotoxicity of quinolone and fluoroquinolones contaminated soil with the Vicia faba micronucleus test. , 2012, Ecotoxicology and environmental safety.
[164] X. Qiu,et al. Effective removal of antibiotic metronidazole from water by nanoscale zero-valent iron particles , 2011 .
[165] Rolf U Halden,et al. Occurrence and loss over three years of 72 pharmaceuticals and personal care products from biosolids-soil mixtures in outdoor mesocosms. , 2010, Water research.
[166] R. Schwarzenbach,et al. Dissipation and transport of veterinary sulfonamide antibiotics after manure application to grassland in a small catchment. , 2007, Environmental science & technology.
[167] S. Allaire,et al. Sorption kinetics of chlortetracyline and tylosin on sandy loam and heavy clay soils. , 2006, Journal of environmental quality.
[168] Lei Zhou,et al. Valorization of livestock manure for bioenergy production: A perspective on the fates and conversion of antibiotics , 2022, Resources, Conservation and Recycling.
[169] T. Mahmood,et al. Fluoroquinolones (FQs) in the environment: A review on their abundance, sorption and toxicity in soil. , 2018, Chemosphere.
[170] Yinbao Wu,et al. No evidential correlation between veterinary antibiotic degradation ability and resistance genes in microorganisms during the biodegradation of doxycycline. , 2018, Ecotoxicology and environmental safety.
[171] Yanlin Zhang,et al. Effects of the pH and anions on the adsorption of tetracycline on iron-montmorillonite , 2016 .
[172] Xu Qiutong,et al. Residues of eight antibiotics in vegetable soils affected by fertilization methods. , 2014 .
[173] B. Halling‐Sørensen,et al. Dialysis experiments for assessing the pH-dependent sorption of sulfonamides to soil clay fractions. , 2014, Chemosphere.
[174] Nicole Kemper,et al. Veterinary antibiotics in the aquatic and terrestrial environment , 2008 .