Effects of different biochars on antibiotic resistance genes during swine manure thermophilic composting
Abstract
Keywords: biochar, antibiotic resistance genes, thermophilic composting, swine manure
DOI: 10.25165/j.ijabe.20181106.4667
Citation: Wang J, Sui B, Shen Y J, Meng H B, Zhao L X, Zhou H B, et al. Effects of different biochars on antibiotic resistance genes during swine manure thermophilic composting. Int J Agric & Biol Eng, 2018; 11(6): 166–171.
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Zhang Q Q, Ying G G, Pan C G, Liu Y S, Zhao J L. A comprehensive evaluation of antibiotics emission and fate in the river basins of China: source analysis, multimedia modelling, and linkage to bacterial resistance. Environmental Science & Technology, 2015; 49(11): 6772–6782.
Zhao L, Dong Y H, Wang H. Residues of veterinary antibiotics in manures from feedlot livestock in eight provinces of China. Science of the Total Environment, 2010; 408(5): 1069–1075.
Wang J, Ben W W, Yang M, Zhang Y, Qiang Z M. Dissemination of veterinary antibiotics and corresponding resistance genes from a concentrated swine feedlot along the waste treatment paths. Environment International, 2016; 92–93: 317–323.
He L Y, Liu Y S, Su H C, Zhao J L, Liu S S, Chen J, et al. Dissemination of antibiotic resistance genes in representative broiler feedlots environments: Identification of indicator ARGs and correlations with environmental variables. Environmental Science & Technology, 2014; 48(22): 13120–13129.
He L Y, Ying G G, Liu Y S, Su H C, Chen J, Liu S S, et al. Discharge of swine wastes risks water quality and food safety: Antibiotics and antibiotic resistance genes from swine sources to the receiving environments. Environment International, 2016; 92–93: 210–219.
Ho Y B, Zakaria M P, Latif P A, Saari N. Degradation of veterinary antibiotics and hormone during broiler manure composting. Bioresource Technology, 2013; 131: 476–484.
Kim K R, Owens G, Ok Y S, Park W K, Lee D B, Kwon S I. Decline in extractable antibiotics in manure-based composts during composting. Waste Management, 2012; 32(1): 110–116.
Selvam A, Zhao Z Y, Wong J W C. Composting of swine manure spiked with sulfadiazine, chlortetracycline and ciprofloxacin. Bioresource Technology, 2012; 126: 412–417.
Arikan O A, Sikora L J, Mulbry W, Khan S U, Foster G D. Composting rapidly reduces levels of extractable oxytetracycline in manure from therapeutically treated beef calves. Bioresource Technology, 2007; 98(1): 169–176.
Arikan O A, Mulbry W, Rice C. Management of antibiotic residues from agricultural sources: use of composting to reduce chlortetracycline residues in beef manure from treated animals. Journal of Hazardous materials, 2009; 164(2–3): 483–489.
Qian X, Sun W, Gu J, Wang X J, Zhang Y J, Duan M L, et al. Reducing antibiotic resistance genes, integrons, and pathogens in dairy manure by continuous thermophilic composting. Bioresource Technology, 2016; 220: 425–432.
Wang L L, Oda Y, Grewal S, Morrison M, Michel F, Yu Z T. Persistence of resistance to erythromycin and tetracycline in swine manure during simulated composting and lagoon treatments. Microbial Ecology, 2012; 63(1): 32–40.
Selvam A, Xu D L, Zhao Z Y, Wong J W C. Fate of tetracycline, sulfonamide and fluoroquinolone resistance genes and the changes in bacterial diversity during composting of swine manure. Bioresource Technology, 2012; 126: 383–390.
Qian X, Gu J, Sun W, Wang X J, Su J Q, Stedfeld R. Diversity, abundance, and persistence of antibiotic resistance genes in various types of animal manure following industrial composting. Journal of Hazardous materials, 2018; 344: 716–722.
Esperón F, Delgado M M, Iglesias I, Carballo M, Ugarte-Ruíz M, Moreno M Á, et al. Evaluation of tetracycline resistance genes during avian manure composting process. International Journal of Infectious Diseases, 2016; 53: 44.
Wang J, Ben W W, Zhang Y, Yang M, Qiang Z M. Effects of thermophilic composting on oxytetracycline, sulfamethazine, and corresponding resistance genes in swine manure. Environmental Science: Processes & Impacts, 2015; 17: 1654–1660.
Malińska K, Zabochnicka-Świątek M, Dach J. Effects of biochar amendment on ammonia emission during composting of sewage sludge. Ecological Engineering, 2014; 71: 474–478.
Chen Y X, Huang X D, Han Z Y, Huang X, Hu B, Shi D Z, et al. Effects of bamboo charcoal and bamboo vinegar on nitrogen conservation and heavy metals immobility during pig manure composting. Chemosphere, 2010; 78(9): 1177–1181.
Dias B O, Silva C A, Higashikawa F S, Roig A, Sánchezmonedero M A. Use of biochar as bulking agent for the composting of poultry manure: effect on organic matter degradation and humification. Bioresource Technology, 2010; 101(4): 1239–1246.
Chowdhury M A, De N A, Jensen L S. Potential of aeration flow rate and bio-char addition to reduce greenhouse gas and ammonia emissions during manure composting. Chemosphere, 2014; 97(1): 16–25.
Sánchezgarcía M, Alburquerque J A, Sánchezmonedero M A, Roig A, Cayuela M L. Biochar accelerates organic matter degradation and enhances N mineralisation during composting of poultry manure without a relevant impact on gas emissions. Bioresource Technology, 2015; 192: 272–279.
Awasthi M K, Wang Q, Huang H, Li R H, Shen F, Lahori A H, et al. Effect of biochar amendment on greenhouse gas emission and bio-availability of heavy metals during sewage sludge co-composting. Journal of Cleaner Production, 2016; 135: 829–835.
Li H C, Duan M L, Gu J, Zhang Y J, Qian X, Ma J, et al. Effects of bamboo charcoal on antibiotic resistance genes during chicken manure composting. Ecotoxicology and Environmental Safety, 2017; 140: 1–6.
Cui E, Wu Y, Jiao Y, Zuo Y, Rensing C, Chen H. The behavior of antibiotic resistance genes and arsenic influenced by biochar during different manure composting. Environmental Science and Pollution Research, 2017; 24(16): 14484–14490.
Shen Y J, Zhao L X, Meng H B, Hou Y Q, Zhou H B, Wang F, et al. Effect of aeration rate, moisture content and composting period on availability of copper and lead during pig manure composting. Waste Management & Research, 2016; 34(6): 578–583.
Kugelberg E, Löfmark S, Wretlind B, Andersson D I. Reduction of the fitness burden of quinolone resistance in Pseudomonas aeruginosa. Journal of Antimicrobial Chemotherapy, 2005; 55(1): 22–30.
Mu Q H, Li J, Sun Y X, Mao D Q, Wang Q, Luo Y. Occurrence of sulfonamide-, tetracycline-, plasmid-mediated quinolone- and macrolide-resistance genes in livestock feedlots in Northern China. Environmental Science and Pollution Research, 2014; 22(9): 1–9.
Park C H, Robicsek A, Jacoby G A, Sahm D, Hooper D C. Prevalence in the United States of aac(6′)-Ib-cr encoding a ciprofloxacin-modifying enzyme. Antimicrobial Agents and Chemotherapy, 2006; 50(11): 3953–3955.
Kim H B, Wang M H, Park C H, Kim E C, Jacoby G A, Hooper D C. oqxAB encoding a multidrug efflux pump in human clinical isolates of Enterobacteriaceae. Antimicrobial Agents and Chemotherapy, 2009; 53(8): 3582–3584.
Chen J, Yu Z T, Jr F C M, Wittum T, Morrison M. Development and application of real-time PCR assays for quantification of erm genes conferring resistance to macrolides-lincosamides-streptogramin B in livestock manure and manure management systems. Applied and Environmental Microbiology, 2007; 73(14): 4407–4416.
USEPA. Use of Composting for Biosolids Management. https://www.epa.gov/biosolids/use-composting-biosolids-management. August, 2018.
Roberts M C. Acquired tetracycline resistance genes. In: Dougherty TJ, Pucci MJ editors. Antibiotic Discovery and Development. New York: Springer US; 2012. pp. 543–568.
Thaker M, Spanogiannopoulos P, Wright G. The tetracycline resistome. Cellular and Molecular Life Sciences, 2010; 67(3): 419–431.
Xiao R, Awasthi M K, Li R H, Park J, Pensky S M, Wang Q, et al. Recent developments in biochar utilization as an additive in organic solid waste composting: A review. Bioresource Technology, 2017; 246: 203–213.
Sköld O. Sulfonamide resistance: mechanisms and trends. Drug Resistance Updates, 2000; 3(3): 155–160.
Vester B, Douthwaite S. Macrolide resistance conferred by base substitutions in 23S rRNA. Antimicrobial Agents and Chemotherapy, 2001; 45(1): 1–12.
[37] Okitsu N, Kaieda S, Yano H, Nakano R, Hosaka Y, Okamoto R, et al. Characterization of ermB gene transposition by Tn1545 and Tn917 in macrolide-resistant Streptococcus pneumoniae isolates. Journal of Clinical Microbiology, 2005; 43(1): 168–173.
Chung W O, Young K, Leng Z T, Roberts M C. Mobile elements carrying ermF and tetQ genes in Gram-positive and Gram-negative bacteria. Journal of Antimicrobial Chemotherapy, 1999; 44(3): 329–335.
Chung W O, Werckenthin C, Schwarz S, Roberts M C. Host range of the ermF rRNA methylase gene in bacteria of human and animal origin. Journal of Antimicrobial Chemotherapy, 1999; 43(1): 5–14.
Li J, Wang T, Shao B, Shen J Z, Wang S C, Wu Y N. Plasmid-mediated quinolone resistance genes and antibiotic residues in wastewater and soil adjacent to swine feedlots: potential transfer to agricultural lands. Environmental Health Perspectives, 2012; 120(8): 1144–1149.
Zhao J J, Chen Z L, Chen S, Deng Y T, Liu Y H, Tian W, et al. Prevalence and dissemination of oqxAB in Escherichia coli Isolates from animals, farmworkers, and the environment. Antimicrobial Agents and Chemotherapy, 2010; 54(10): 4219–4224.
Casin I, Bordon F, Bertin P, Coutrot A, Podglajen I, Brasseur R, et al. Aminoglycoside 6′-n-acetyltransferase variants of the Ib type with altered substrate profile in clinical isolates of Enterobacter cloacae and Citrobacter freundii. Antimicrobial Agents and Chemotherapy, 1998; 42(2): 209–215.
Cavaco L M, Hasman H, Xia S, Aarestrup F M. qnrD, a novel gene conferring transferable quinolone resistance in Salmonella enterica serovar kentucky and bovismorbificans strains of human origin. Antimicrobial Agents and Chemotherapy, 2009; 53(2): 603–608.
Cui E P, Wu Y, Zuo Y R, Chen H. Effect of different biochars on antibiotic resistance genes and bacterial community during chicken manure composting. Bioresource Technology, 2016; 203: 11–17.
Duan M L, Li H C, Gu J, Tuo X X, Sun W, Qian X, et al. Effects of biochar on reducing the abundance of oxytetracycline, antibiotic resistance genes, and human pathogenic bacteria in soil and lettuce. Environmental Pollution, 2017; 224: 787–795.
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