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Physicochemical factors and dominant bacterial groups affecting antibiotic degradation in chicken manure aerobic compost |
HUANG Fei-fei1, LIU Jian-kun2, WANG Xiao-ming2, LEI Meng-long1, TIAN Xiao-mei2, CUI Yan-ru3,4, ZHANG Da-lei1,2 |
1. School of Energy and Enviroment, Shenyang Aerospace University, Shenyang 110136, China; 2. Liaoning Energy Research Institute Co, LTD, Yingkou 115000, China; 3. Jilin Academy of Agricultural sciences, Changchun 130000, China; 4. Key Laboratory of Rural Toilet and Sewage Treatment Technology, Ministry of Agriculture and Rural Areas, Changchun 130000, China |
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Abstract Taking chicken manure as raw material, the influence of EM microbial agent on the key dominant bacterial groups controlling the degradation of antibiotics were studied in the compost simulated by adding oxytetracycline and tylosin to simulate antibiotic residues. The objective is to explore the bioenhancing mechanism of antibiotic removal in aerobic composting. The experiment was carried out consisting of four treatments, that is, OCK (oxytetracycline), OTK (oxytetracycline +EM bactericide), TCK (Tylomycin + EM bactericide), TTK (Tylomycin + EM bactericide. The amounts of added antibiotics and EM microbial agent were 100mg/kg and 5% of the total mass, respectively. The results showed that the residue of antibiotics had little effect on compost maturation, and all treatments could reach the maturation standard. The composting temperature exceeded 60℃ for more than 6days, the pH value ranged from 8.5 to 9.0, the EC was 3~3.5mS/cm. The removal of both antibiotic mostly happened at high temperature stage, When the removal rates of antibiotics were correspondingly OCK: 71.63%,OTK: 76.40%,TCK: 93.86%,TTK: 92.95%. The EM microbial agent accelerated the degradation of antibiotics, especially for oxytetracycline, which could increase the degradation rate of oxytetracycline by 5 times and that of Tylomycin by 2.24 times. At mature stage, aerobic compost effectively removed the antibiotic residues, with higher antibiotic removal rates of four treatments, OCK 89.97%, OTK 91.32%, TCK 99.99%, TTK 99.99%. pH value is identified as a key physicochemical factor affecting the degradation of oxytetracycline and tylomycin, which was negatively correlated with the content of both antibiotics, so proper adjustment of the pH was conducive to faster degradation of antibiotics. The dominant bacterial groups conducive to oxytetracycline degradation mainly include Planifilum, Thermobifida, Bacillus and Paenibacillus, with Relative abundance (RAs) were 0.24%~8.76%, 2.70%~10.91%, 11.38%~26.16%, and 1.95%~4.56%. While Thermobacillus and Bacillus was helpful for degradation of Tylomycin with RAs were 7.19%~39.09% and 41.70%~44.29%, respectively. Bacillus can promote the degradation of oxytetracycline and tylosin.
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Received: 23 January 2024
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Corresponding Authors:
田晓美,农艺师,7314115@qq.com;崔彦如,nkycyr@126.com
E-mail: 7314115@qq.com;nkycyr@126.com
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[1] Chan R, Wandee S, Wang M, et al. Fate, transport and ecological risk of antibiotics from pig farms along the bang pakong River, Thailand [J]. Agriculture, Ecosystems & Environment, 2020,304:107-123. [2] Hanna N, Sun P, Sun Q, et al. Presence of antibiotic residues in various environmental compartments of Shandong province in eastern China: Its potential for resistance development and ecological and human risk [J]. Environment International, 2018,114:42-131. [3] Kim B, Ji K, Kim C, et al. Pharmaceutical residues in streams near concentrated animal feeding operations of Korea - Occurrences and associated ecological risks [J]. Science of the Total Environment, 2019,655:13-408. [4] Menz J, Olsson O, Kümmerer K. Antibiotic residues in livestock manure: Does the EU risk assessment sufficiently protect against microbial toxicity and selection of resistant bacteria in the environment? [J]. Journal of Hazardous Materials, 2019,379:120-807. [5] Tolls J. Sorption of Veterinary Pharmaceuticals in Soils: A Review [J]. Environmental Science & Technology, 2001,35(17):406-3397. [6] Alcock R E, Sweetman A, Jones K C. Assessment of organic contanhnant fate in waste water treatment plants I: Selected compounds and physicochemical properties [J]. Chemosphere, 1999, 38(10):62-2247. [7] He Y, Yuan Q, Mathieu J, et al. Antibiotic resistance genes from livestock waste: occurrence, dissemination, and treatment [J]. npj Clean Water, 2020,3(1):4. [8] Bengtsson-Palme J, Larsson D G J. Concentrations of antibiotics predicted to select for resistant bacteria: Proposed limits for environmental regulation [J]. Environment International, 2016,86:9-140. [9] 曹云,黄红英,吴华山,等.畜禽粪便超高温堆肥产物理化性质及其对小白菜生长的影响[J]. 农业工程学报, 2018,34(12):7-251. Cao Y, Huang H Y, Wu H S, et al Physico-chemical properties of hyperthermophilic composting from livestock manures and its effects on growth of Chinese cabbage [J]. Transactions of the Chinese Society of Agricultural Engineering, 2018,34(12):7-251. [10] Ho Y B, Zakaria M P, Latif P A, et al. Simultaneous determination of veterinary antibiotics and hormone in broiler manure, soil and manure compost by liquid chromatography-tandem mass spectrometry [J]. Journal of Chromatography A, 2012,1262:8-160. [11] Hu Z, Liu Y, Chen G, et al. Characterization of organic matter degradation during composting of manure-straw mixtures spiked with tetracyclines [J]. Bioresource Technology, 2011,102(15):34-7329. [12] Turker G, Aydin S, Akyol Ç, et al. Changes in microbial community structures due to varying operational conditions in the anaerobic digestion of oxytetracycline-medicated cow manure [J]. Applied Microbiology and Biotechnology, 2016,100(14):79-6469. [13] 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 [J]. Journal of Hazardous Materials, 2009,164(2):9-483. [14] 沈东升,何虹蓁,汪美贞,等.土霉素降解菌TJ-1在猪粪无害化处理中的作用[J] 环境科学学报, 2013,33(1):53-147. Shen D S, He H Z, Wang M Z, et al. Role of oxytetracycline degrading bacteria TJ-1in harmless treatment of pig manure [J] Acta Scientiae Circumstantise, 2013,33(1):53-147. [15] Gou C, Wang Y, Zhang X, et al. Inoculation with a psychrotrophic- thermophilic complex microbial agent accelerates onset and promotes maturity of dairy manure-rice straw composting under cold climate conditions [J]. Bioresource Technology, 2017,243:46-339. [16] Nightingale J, Carter L, Sinclair C J, et al. Assessing the influence of pig slurry pH on the degradation of selected antibiotic compounds [J]. Chemosphere, 2022,290:133-191. [17] Liu N, Han H, Yin H, et al. Variations in the fate and risk analysis of amoxicillin and its degradation products during pig manure aerobic composting [J]. Journal of Hazardous Materials, 2018,346:41-234. [18] Wu X, Wei Y, Zheng J, et al. The behavior of tetracyclines and their degradation products during swine manure composting [J]. Bioresource Technology, 2011,102(10):31-5924. [19] Liao H, Zhao Q, Cui P, et al. Efficient reduction of antibiotic residues and associated resistance genes in tylosin antibiotic fermentation waste using hyperthermophilic composting [J]. Environment International, 2019,133:105-203. [20] NY525-2021有机肥料[S]. NY525-2021 Organic fertilizer [S]. [21] NY/T 1116-2014肥料硝态氮、铵态氮、酰胺态氮含量的测定[S]. NY/T 1116-2014 Fertilizers-Determination of nitrate nitrogen, ammonium nitrogen, amide nitrogen contents [S]. [22] NY/T 3787-2020土壤中四环素类、氟喹诺酮类、磺胺类、大环内酯类和氯霉素类抗生素含量同步检测方法高效液相色谱法[S]. 2020. NY/T 3787-2020 Simultaneous determination of tetracyclines, fluoroquinolones, sulfonamides,macrolides and chloramphenicols in ssoil by HPLC method [S]. 2020. [23] 张红玉.通风量对厨余垃圾堆肥腐熟度和氨气排放的影响[J]. 环境工程, 2013,31(S1):6-483. Zhang H Y. Effect of ventilation on compost maturation and ammonia emission of kitchen waste [J]. Environmental Engineering, 2013, 31(S1):6-483. [24] 中国疾病预防控制中心环境与健康相关产品安全所.粪便无害化卫生要求[Z]. 中华人民共和国卫生部;中国国家标准化管理委员会. 2012:40. [25] Zhao H, Li S, Jiang Y, et al. Independent and combined effects of antibiotic stress and EM microbial agent on the nitrogen and humus transformation and bacterial community successions during the chicken manure composting [J]. Bioresource Technology, 2022,354: 127-237. [26] 尹子铭,杨燕,唐若兰,等.秸秆对猪粪静态兼性堆肥无害化和腐熟度的影响[J]. 农业工程学报, 2023,39(7):26-218. Yin Z M, Yang Y, Tang R L, et al. Effects of straw on the harmlessness and maturation of static facultative composting of pig manure [J]. Transactions of the Chinese Society of Agricultural Engineering, 2023, 39(7):26-218. [27] 李太魁,王小非,郭战玲,等.添加生物炭对猪粪好氧堆肥过程氮素转化与氨挥发的影响[J]. 生态环境学报, 2021,30(4):9-874. Li T K, Wang X F, Guo Z L, et al. Effects of biochar addition on nitrogen conversion and ammonia volatilization during aerobic composting of pig manure [J]. Ecology and Environmental Sciences, 2021,30(4):9-874. [28] Yu Y, Chen L, fang Y, et al. High temperatures can effectively degrade residual tetracyclines in chicken manure through composting [J]. Journal of Hazardous Materials, 2019,380:120-862. [29] He Y, Xie K, Xu P, et al. Evolution of microbial community diversity and enzymatic activity during composting [J]. Research in Microbiology, 2013,164(2):98-189. [30] Lin C. A negative-pressure aeration system for composting food wastes [J]. Bioresource Technology, 2008,99(16):6-7651. [31] 常瑞雪,甘晶晶,陈清,等.碳源调理剂对黄瓜秧堆肥进程和碳氮养分损失的影响[J]. 农业工程学报, 32(z2):9-254. Chang R X, Gan J J, Chen Q, et al. Yiziming, Yangyan, Tangruolan Effects of carbon source conditioner on composting process and loss of carbon and nitrogen nutrients in yellow melon seedlings [J]. Transactions of the Chinese Society of Agricultural Engineering, 32(z2):9-254. [32] Soumaré M, Demeyer A, Tack F M G, et al. Chemical characteristics of Malian and Belgian solid waste composts [J]. Bioresource Technology, 2002,81(2):97-101. [33] Gómez-Brandón M, Lazcano C, Domínguez J. The evaluation of stability and maturity during the composting of cattle manure [J]. Chemosphere, 2008,70(3):44-436. [34] Bernal M P, Alburquerque J A, Moral R. Composting of animal manures and chemical criteria for compost maturity assessment. A review [J]. Bioresource Technology, 2009,100(22):53-5444. [35] Wu J, Zhao Y, Zhao W, et al. Effect of precursors combined with bacteria communities on the formation of humic substances during different materials composting [J]. Bioresource Technology, 2017, 226:9-191. [36] Qu J, Zhang L, Zhang X, et al. Biochar combined with gypsum reduces both nitrogen and carbon losses during agricultural waste composting and enhances overall compost quality by regulating microbial activities and functions [J]. Bioresource Technology, 2020, 314:123-781. [37] Ren X, Wang Q, Zhang Y, et al. Improvement of humification and mechanism of nitrogen transformation during pig manure composting with Black Tourmaline [J]. Bioresource Technology, 2020,307:123-236. [38] Wang Q, Yates S R. Laboratory Study of Oxytetracycline Degradation Kinetics in Animal Manure and Soil [J]. Journal of Agricultural and Food Chemistry, 2008,56(5):8-1683. [39] Thiele-Bruhn S. Pharmaceutical antibiotic compounds in soils - a review [J]. Journal of Plant Nutrition and Soil Science, 2003,166(2):67-145. [40] Wei Y, Liang Z, Zhang Y. Evolution of physicochemical properties and bacterial community in aerobic composting of swine manure based on a patent compost tray [J]. Bioresource Technology, 2022,343:126-136. [41] Vesth T, Ozen A, Andersen S C, et al. Veillonella, Firmicutes: Microbes disguised as Gram negatives [J]. Standards in Genomic Sciences, 2013,9(2):48-431. [42] Broussolle V, Carlin F, Lereclus D, et al. Beneficial and detrimental spore-formers: a world of diversity [J]. Research in Microbiology, 2017,168(4):8-307. [43] Tran H T, Lin C, Bui X T, et al. Bacterial community progression during food waste composting containing high dioctyl terephthalate (DOTP) concentration [J]. Chemosphere, 2021,265:12-9064. [44] Zhu Y, Wang Y, Jiang X, et al. Microbial community compositional analysis for membrane bioreactor treating antibiotics containing wastewater [J]. Chemical Engineering Journal, 2017,325:9-300. [45] Zhang L, Jia Y, Zhang X, et al. Wheat straw: An inefficient substrate for rapid natural lignocellulosic composting [J]. Bioresource Technology, 2016,209:6-402. [46] Wang J, Gu J, Wang X, et al. Enhanced removal of antibiotic resistance genes and mobile genetic elements during swine manure composting inoculated with mature compost [J]. Journal of Hazardous Materials, 2021,411:125-135. [47] Nightingale J, Carter L, Sinclair C J, et al. Assessing the influence of pig slurry pH on the degradation of selected antibiotic compounds [J]. Chemosphere, 2022,290:133-191. |
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