Distribution of sulfonamides in liquid and solid anaerobic digestates: effects of hydraulic retention time and swine manure to rice straw ratio

Bioprocess and Biosystems Engineering - Tập 40 - Trang 319-330 - 2016
Hongmei Jin1,2,3,4, Caiyun Xu1,2,5, Jing Du1,2,3,4, Huashan Wu1,2,3,4, Hongying Huang1,2,3,4, Zhizhou Chang1,2,3,4, Yueding Xu1,2,3,4, Lixiang Zhou5
1Institute of Agricultural Resources and Environment, Jiangsu Academy of Agricultural Sciences, Nanjing, China
2Jiangsu Agricultural Waste Treatment and Recycle Engineering Research Center, Nanjing, China
3East China Scientific Observing and Experimental Station of Development and Utilization of Rural Renewable Energy, Ministry of Agriculture, Nanjing, China
4Key Laboratory of Agro-Environment in Downstream of Yangtze Plain, Ministry of Agriculture, Nanjing, China
5College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, China

Tóm tắt

The effects of hydraulic retention time (20 and 15 days) and swine manure to rice straw ratios on distribution of sulfonamides (SAs) in liquid and solid anaerobic digestates were studied using bench-scale completely stirred tank reactors at (37 ± 1) °C. Results showed that anaerobic digestion (AD) treatment exhibited a good removal effect on sulfadiazine (SDZ), sulfadimidine (SM2) and sulfachloropyridazine (SCP), especially at HRT = 20 days and co-digestion with swine manure and rice straw. The removal rates of SDZ and SM2 were more than 90%, but only 72.8% for SCP. The residual SAs were mainly remained in solid digestates, with residual rates ranging from 28.8% to 71.3%, 40.6% to 88.0, and 82.7% to 97.0% for SDZ, SM2 and SCP, respectively. Due to lower pKa and higher log K ow of SCP, its residue in solid digestates was far more than SDZ and SM2. Higher HRT and co-digestion could improve the degradation of SAs, which can also be put down to the occurrence of cometabolism of SAs and COD.

Tài liệu tham khảo

Hvistendahl M (2012) Public health. China takes aim at rampant antibiotic resistance. Science 336:795. doi:10.1126/science.336.6083.795 Alcock RE, Sweetman A, Jones KC (1999) Assessment of organic contaminant fate in waste water treatment plants I: selected compounds and physicochemical properties. Chemosphere 38:2247–2262. doi:10.1016/S0045-6535(98)00444-5 Sarmah AK, Meyer MT, Boxall ABA (2006) A global perspective on the use, sales, exposure pathways, occurrence, fate and effects of veterinary antibiotics (VAs) in the environment. Chemosphere 65:725–759. doi:10.1016/j.chemosphere.2006.03.026 Lamshöft M, Sukul P, Zühlke S, Spiteller M (2007) Metabolism of 14C-labeled and non-labeled sulfadiazine after administration to pigs. Anal Bioanal Chem 388:1733–1745. doi:10.1007/s00216-007-1368-y Baran W, Adamek E, Ziemiańska J, Sobczak A (2011) Effects of the presence of sulfonamides in the environment and their influence on human health. J Hazard Mater 196:1–15. doi:10.1016/j.jhazmat.2011.08.082 Zhu Y-G, Johnson TA, Su J-Q, Qiao M, Guo G-X, Stedtfeld RD, Hashsham SA, Tiedje JM (2013) Diverse and abundant antibiotic resistance genes in Chinese swine farms. PNAS 110:3435–3440. doi:10.1073/pnas.1222743110 Luo Y, Xu L, Rysz M, Wang Y, Zhang H, Alvarez PJJ (2011) Occurence and transport of tetracycline, sulfonamide, quinolone, and macrolide antibiotics in the Haihe river basin, China. Environ Sci Technol 45:1827–1833. doi:10.1021/es104009s Wang M, Sun X, Li P, Zheng G (2014) A novel alternate feeding mode for semi-continuous anaerobic co-digestion of food waste with chicken manure. Bioresour Technol 164:309–314. doi:10.1016/j.biortech.2014.04.077 Zhang Q-Q, Ying G-G, Pan C-G, Liu Y-S, Zhao J-L (2015) A comprehensive evaluation of antibiotics emission and fate in the river basins of China: source analysis, multimedia modelling and linkage to bacterial resistance. Environ Sci Technol 49:6772–6782. doi:10.1021/acs.est.5b00729 Critically Important Antimicrobials for Human Medicine (2009) Report of the WHO Advisory Group on integrated surveillance of antimicrobial resistance (AGISAR, Copenhagen), 3rd edn, pp 1–26 Chen H, Dong YH, Wang H, An Q, Zhang J, Liu X (2008) Residual characteristics of sulfanilamide in animal feces in Jiangsu Province. J Agro Environ Sci 27:0385–0389. doi:10.3321/j.issn:1672-2043.2008.01.072 Langhammer J-P (1989) Untursuchungen zum Verbleib antimikrobiell wirksamer Aezneistoffe als Rückstănde in Gülle und im landwirtschaftlichen Umfeld. Univerität Bonn, Germany, pp 138–145 Li F, Cheng S, Yu H, Yang D (2016) Waste from livestock and poultry breeding and its potential assessment of biogas energy in rural China. J Clean Prod 126:451–460. doi:10.1016/j.jclepro.2016.02.104 Wang X, Lu X, Yang G, Feng Y, Ren G, Han X (2016) Development process and probable future transformations of rural biogas in China. Renew Sust Energ Rev 55:703–712. doi:10.1016/j.rser.2015.09.097 Lu JB, Zhu L, Hu GL, Wu JG (2010) Integrating animal manure-based bioenergy production with invasive species control: a case study at Tongren Pig Farm in China. Biomass Bioenerg 34:821–827. doi:10.1016/j.biombioe.2010.01.026 Aydin S, Ince B, Ince O (2015) Application of real-time PCR to determination of combined effect of antibiotics on bacteria, methanogenic archaea, archaea in anaerobic sequencing batch reactors. Water Res 76:88–98. doi:10.1016/j.watres.2015.02.043 Mitchell SM, Ullman JL, Teel AL, Watts RJ, Frear C (2013) The effects of the antibiotics ampicillin, florfenicol, sulfamethazine, and tylosin on biogas production and their degradation efficiency during anaerobic digestion. Bioresour Technol 149:244–252. doi:10.1016/j.biortech.2013.09.048 Mohring SA, Strzysch I, Fernandes MR, Kiffmeyer TK, Tuerk J, Hamscher G (2009) Degradation and elimination of various sulfonamides during anaerobic fermentation: a promising step on the way to sustainable pharmacy? Environ Sci Technol 43:2569–2574. doi:10.1021/es802042d Sponza DT, Demirden P (2007) Treatability of sulfamerazine in sequential upflow anaerobic sludge blanket reactor (UASB)/completely stirred tank reactor (CSTR) process. Sep Purif Technol 56:108–117. doi:10.1016/j.seppur.2006.07.013 Chen Y, Zhang H, Luo Y, Song J (2012) Occurrence and dissipation of veterinary antibiotics in two typical swine wastewater treatment systems in east China. Environ Monit Assess 184:2205–2217. doi:10.1007/s10661-011-2110-y Tian S, Zhang M, Chen L, Liang C, Huang M (2011) Lab-scale study on removal of sulfamethazine from sewage by UASB-SBR process. Technol Water Treat 37:84–87 Sahar E, Messalem R, Cikurel H, Aharoni A, Brenner A, Godehardt M, Jekel M, Ernst M (2011) Fate of antibiotics in activated sludge followed by ultrafiltration (CAS-UF) and in a membrane bioreactor (MBR). Water Res 45:4827–4836. doi:10.1016/j.watres.2011.06.023 Boe K, Angelidaki I (2009) Serial CSTR digester configuration for improving biogas production from manure. Water Res 43:166–172. doi:10.1016/j.watres.2008.09.041 Oliver GHD, Santos-Neto AJ, Zaiat M (2016) Evaluation of sulfamethazine sorption and biodegradation by anaerobic granular sludge using batch experiments. Bioprocess Biosyst Eng 39:115–124. doi:10.1007/s00449-015-1495-3 Ye X, Chang Z, Qian Y, Pan J, Zhu J (2012) Investigation on large and medium scale biogas plants and biological properties of digestate in Jiangsu Province. Trans Chin Soc Agr Eng 28:222–227. doi:10.3969/j.issn.1002-6819.2012.06.036 Wang N, Guo XY, Xu J, Shan Z (2014) Pollution characteristics and environmental risk assessment of typical veterinary antibiotics in livestock farms in Southeastern China. J Environ Sci Health Part B 49:1–12. doi:10.1080/03601234.2014.896660 APHA, AWWA, WEF (2005) Standard methods for the examination of water and wastewater. American Public Health Association/American Water Works Association/Water Environment Nordell E, Nilsson B, Påledal SN, Karisalmi K, Moestedt J (2016) Co-digestion of manure and industrial waste-The effects of trace element addition. Waste Manag 47:21–27. doi:10.1016/j.wasman.2015.02.032 Zhang T, Mao C, Zhai N, Wang X, Yang G (2015) Influence of initial pH on thermophilic anaerobic co-digestion of swine manure and maize stalk. Waste Manag 35:119–126. doi:10.1016/j.wasman.2014.09.004 Huang W, Huang W, Yuan T, Zhao Z, Cai W, Zhang Z, Lei Z, Feng C (2016) Volatile fatty acid (VFAs) production from swine manure through short-term dry anaerobic digestion and its separation from nitrogen and phosphorus resources in the digestate. Water Res 90:344–353. doi:10.1016/j.watres.2015.12.044 Jiménez J, Guardia-Puebla Y, Cisneros-Ortiz ME, Morgan-Sagastume JM, Guerra G, Noyola A (2015) Optimization of the specific methanogenic activity during the anaerobic co-digestion of pig manure and rice straw, using industrial clay residues as inorganic additive. Chem Eng J 259:703–714. doi:10.1016/j.cej.2014.08.031 Wang J, Shen D, Xu Y (2006) Effect of acidification percentage and volatile organic acids on the anaerobic biological process in simulated landfill bioreactors. Process Biochem 41:1677–1681. doi:10.1016/j.procbio.2006.02.005 Starkenburg WV (1997) Anaerobic treatment of wastewater: state of the art. Microb 66:705–715 Yu TH, Lin AY, Panchangam SC, Hong PK, Yang PY, Lin CF (2011) Biodegradation and bio-sorption of antibiotics and non-steroidal anti-inflammatory drugs using immobilized cell process. Chemosphere 84:1216–1222. doi:10.1016/j.chemosphere.2011.05.045 Ben W, Qiang Z, Yin X, Yin X, Qu J, Pan X (2014) Adsorption behavior of sulfamethazine in an activated sludge process treating swine wastewater. J Environ Sci 26:1623–1629. doi:10.1016/j.jes.2014.06.002 Yu X, Zhang L, Liang M, Sun W (2015) pH-dependent sulfonamides adsorption by carbon nanotubes with different surface oxygen contents. Chem Eng J 279:363–371. doi:10.1016/j.cej.2015.05.044 Hiba A, Carine A, Haifa AR, Ryszard L, Farouk J (2016) Monitoring of twenty-two sulfonamides in edible tissues investigation of new metabolites and their potential toxicity. Food Chem 192:212–227. doi:10.1016/j.foodchem.2015.06.093 Gauthier H, Yaegeau V, Cooper DG (2010) Biodegradation of pharmaceuticals by Rhodococcus rhodochrous and Aspergillus niger by co-metabolism. Sci Total Environ 408:1701–1706. doi:10.1016/j.scitotenv.2009.12.012 Delgadillo-Mirquez L, Lardon L, Steyer JP, Patureau D (2011) A new dynamic model for bioavailability and cometabolism of micropollutants during anaerobic digestion. Water Res 45:4511–4521. doi:10.1016/j.watres.2011.05.047 Lim SJ, Kim BJ, Jeong CM, Choi J, Ahn YH, Chang HN (2008) Anaerobic organic acid production of food waste in once-a-day feeding and drawing-off bioreactor. Bioresour Technol 99:7866–7874. doi:10.1016/j.biortech.2007.06.028 Qin M, Lin Z, Wang D, Long X, Zheng M, Qiu Y (2015) What are the differences between aerobic and anaerobic toxic effects of sulfonamides on Escherichia coli? Environ Toxicol Phar 41:251–258. doi:10.1016/j.etap.2015.12.013 Li B, Zhang T (2010) Biodegradation and adsorption of antibiotics in the activated sludge process. Environ Sci Technol 44:3468–3473. doi:10.1021/es903490h Carballa M, Omil F, Lema JM, Llompart M, García-Jares C, Rodríguez I, Gómez M, Ternes T (2004) Behavior of pharmaceuticals, cosmetics and hormones in a sewage treatment plant. Water Res 38:2918–2926. doi:10.1016/j.watres.2004.03.029 Shah S, Zhang H, Song X, Hao C (2015) Quantum chemical study of the photolysis mechanisms of sulfachloropyridazine and the influence of selected divalent metal ions. Chemosphere 138:765–769. doi:10.1016/j.chemosphere.2015.07.068 Wu CX, Spongberg AL, Witter JD (2009) Sorption and biodegradation of selected antibiotics in biosolids. J Environ Sci Health A 44:454–461. doi:10.1080/10934520902719779