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Articles

A rapid and economical sample pretreatment method using molecularly imprinted polymers for bioavailable content analyses of oxytetracycline in soils

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Pages 1108-1123 | Received 28 Oct 2018, Accepted 09 Dec 2018, Published online: 14 Jan 2019

References

  • Aga DS, Lenczewski M, and Snow D. 2016. Challenges in the measurement of antibiotics and in evaluating their impacts in agroecosystems: a critical review. J Environ Qual 45:407–19
  • Alavi N, Babaei AA, Shirmardi M, et al. 2015. Assessment of oxytetracycline and tetracycline antibiotics in manure samples in different cities of Khuzestan Province, Iran. Environ Sci Pollut Res 22:17948–54
  • Alexander M. 2000. Aging, bioavailability, and overestimation of risk from environmental pollutants. Environ Sci Technol 34:4259–65
  • Alizadeh T, Ganjali MR, and Akhoundian M. 2012. Synthesis and application of different nano-sized imprinted polymers for the preparation of promethazine membrane electrodes and comparison of their efficiencies. Int J Electrochem Sc 7:7655–74
  • An J, Chen H, Wei S, et al. 2015. Antibiotic contamination in animal manure, soil, and sewage sludge in Shenyang, northeast China. Environ Earth Sci 74:5077–86
  • Arikan OA, Sikora LJ, Mulbry W, et al. 2006. The fate and effect of oxytetracycline during the anaerobic digestion of manure from therapeutically treated calves. Process Biochem 41:1637–43.
  • Bartikova H, Podlipna R, and Skalova L. 2016. Veterinary drugs in the environment and their toxicity to plants. Chemosphere 144:2290–301
  • Bian K, Liu Y, Wang Z, et al. 2015. Determination of multi-class antimicrobials residues in soil by liquid chromatography–tandem mass spectrometry. RSC Adv 5:27584–93
  • Boonsaner M, and Hawker DW. 2013. Evaluation of food chain transfer of the antibiotic oxytetracycline and human risk assessment. Chemosphere 93:1009–114
  • Caro E, Marcé RM, Cormack PAG, et al. 2005. Synthesis and application of an oxytetracycline imprinted polymer for the solid-phase extraction of tetracycline antibiotics. Anal Chim Acta 552:81–6
  • Chen Z, Zhang W, Wang G, et al. 2017. Bioavailability of soil-sorbed tetracycline to Escherichia coli under unsaturated conditions. Environ Sci Technol 51:6165–73
  • Chen CQ, Zheng L, Zhou JL, et al. 2017. Persistence and risk of antibiotic residues and antibiotic resistance genes in major mariculture sites in Southeast China. Sci Total Environ 580:1175–84
  • Chung HS, Choi JH, Abd El-Aty AM, et al. 2016. Simultaneous determination of seven multiclass veterinary antibiotics in surface water samples in the Republic of Korea using liquid chromatography with tandem mass spectrometry. J Sep Sci 39:4688–99
  • Cormack PAG, and Elorza AZ. 2004. Molecularly imprinted polymers: synthesis and characterisation. J Chromatogr B Analyt Technol Biomed Life Sci 804:173–82
  • Cui X, Mayer P, and Gan J. 2013. Methods to assess bioavailability of hydrophobic organic contaminants: principles, operations, and limitations. Environ Pollut 172:223–34
  • Figueroa RA, Leonard A, and Mackay AA. 2004. Modeling tetracycline antibiotic sorption to clays. Environ Sci Technol 38:476–83
  • Folberth C, Scherb H, Suhadolc M, et al. 2009. In situ mass distribution quotient (iMDQ)—a new factor to compare bioavailability of chemicals in soils? Chemosphere 75:707–13
  • Goulas A, Haudin CS, Bergheaud V, et al. 2016. A new extraction method to assess the environmental availability of ciprofloxacin in agricultural soils amended with exogenous organic matter. Chemosphere 165:460–9
  • Gu C, and Karthikeyan KG. 2005. Interaction of tetracycline with aluminum and iron hydrous oxides. Environ Sci Technol 39:2660–7
  • Halling-Sørensen B. 2000. Algal toxicity of antibacterial agents used in intensive farming. Chemosphere 40:731–9
  • Ho YB, Zakaria MP, Latif PA, et al. 2014. Occurrence of veterinary antibiotics and progesterone in broiler manure and agricultural soil in Malaysia. Sci Total Environ 488-489:261–7
  • Hu W, Ma L, Guo C, et al. 2012. Simultaneous extraction and determination of fluoroquinolones, tetracyclines and sulfonamides antibiotics in soils using optimised solid phase extraction chromatography-tandem mass spectrometry. Int J Environ Ch 92:698–713
  • Im H, Yeo I, and Choi H. 2016. Fate of veterinary antibiotics in riverine soils: evaluation of applicability in riverbank filtration. Desalin Water Treat 57:20457–63
  • Karci A, and Balcioglu IA. 2009. Investigation of the tetracycline, sulfonamide, and fluoroquinolone antimicrobial compounds in animal manure and agricultural soils in Turkey. Sci Total Environ 407:4652–64
  • Kemper N. 2008. Veterinary antibiotics in the aquatic and terrestrial environment. Ecol Indic 8:1–13
  • Kim SY, Kuppusamy S, Kim JH, et al. 2016. Occurrence and diversity of tetracycline resistance genes in the agricultural soils of South Korea. Environ Sci Pollut Res 23:22190–6
  • Kong W, Li C, Dolhi JM, et al. 2012. Characteristics of oxytetracycline sorption and potential bioavailability in soils with various physical-chemical properties. Chemosphere 87:542–8
  • Lai BM, Zhang K, Shen DS, et al. 2017. Control of the pollution of antibiotic resistance genes in soils by quorum sensing inhibition. Environ Sci Pollut Res 24:5259–67
  • Lanno R, Wells J, Conder J, et al. 2004. The bioavailability of chemicals in soil for earthworms. Ecotoxicol Environ Saf 57:39–47
  • Li C, Chen J, Wang J, et al. 2015. Occurrence of antibiotics in soils and manures from greenhouse vegetable production bases of Beijing, China and an associated risk assessment. Sci Total Environ 521-522:101–7.
  • Li K, Yediler A, Yang M, et al. 2008. Ozonation of oxytetracycline and toxicological assessment of its oxidation by-products. Chemosphere 72:473–8
  • Lian Z, and Wang J. 2016. Determination of ciprofloxacin in Jiaozhou Bay using molecularly imprinted solid-phase extraction followed by high-performance liquid chromatography with fluorescence detection. Mar Pollut Bull 111:411–7
  • Lindberg RH, Olofsson U, Rendahl P, et al. 2006. Behavior of fluoroquinolones and trimethoprim during mechanical, chemical, and active sludge treatment of sewage water and digestion of sludge. Environ Sci Technol 40:1042–8
  • Lu W, Wang X, Wu X, et al. 2017. Multi-template imprinted polymers for simultaneous selective solid-phase extraction of six phenolic compounds in water samples followed by determination using capillary electrophoresis. J Chromatogr A 1483:30–9
  • Ma J, Jiang L, Wu G, et al. 2016. Determination of six sulfonylurea herbicides in environmental water samples by magnetic solid-phase extraction using multi-walled carbon nanotubes as adsorbents coupled with high-performance liquid chromatography. J Chromatogr A 1466:12–20
  • Nagar R, Sarkar D, Makris KC, et al. 2009. Bioavailability and bioaccessibility of arsenic in a soil amended with drinking-water treatment residuals. Arch Environ Contam Toxicol 57:755–66
  • Nie M, Yan C, Dong W, et al. 2015. Occurrence, distribution and risk assessment of estrogens in surface water, suspended particulate matter, and sediments of the Yangtze Estuary. Chemosphere 127:109–16
  • Schmitt OM, and Schneider S. 2000. Spectroscopic investigation of complexation between various tetracyclines and Mg2+ or Ca2+. PhysChemComm 3:42–55
  • Ostovan A, Ghaedi M, Arabi M, et al. 2018. Hydrophilic multitemplate molecularly imprinted biopolymers based on a green synthesis strategy for determination of B-family vitamins. ACS Appl Mater Interfaces 10:4140–50
  • Pruden A, Larsson DG, Amezquita A, et al. 2013. Management options for reducing the release of antibiotics and antibiotic resistance genes to the environment. Environ Health Persp 121:878–85
  • Rauret G. 1998. Extraction procedures for the determination of heavy metals in contaminated soil and sediment. Talanta 46:449–55
  • Reid BJ, Jones KC, and Semple KT. 2000. Bioavailability of persistent organic pollutants in soils and sediments—a perspective on mechanisms, consequences and assessment. Environ Pollut 108:103–12
  • Ren Y, Wei X, and Zhang M. 2008. Adsorption character for removal Cu(II) by magnetic Cu(II) ion imprinted composite adsorbent. J Hazard Mater 158:14–22
  • Sassman SA, and Lee LS. 2005. Sorption of three tetracyclines by several soils: assessing the role of pH and cation exchange. Environ Sci Technol 39:7452–9
  • Spielmeyer A, Hoper H, and Hamscher G. 2017. Long-term monitoring of sulfonamide leaching from manure amended soil into groundwater. Chemosphere 177:232–8
  • Sun Y, Li D, He S, et al. 2013. Determination and dynamics of kanamycin A residue in soil by HPLC with SPE and precolumn derivatization. Int J Environ Ch 93:472–81
  • Tasho RP, and Cho JY. 2016. Veterinary antibiotics in animal waste, its distribution in soil and uptake by plants: a review. Sci Total Environ 563:366–76
  • Wang Y, Chen G, Liang J, et al. 2015. Comparison of oxytetracycline degradation behavior in pig manure with different antibiotic addition methods. Environ Sci Pollut Res 22:18469–76
  • Wu X, Wang X, Lu W, et al. 2016. Water-compatible temperature and magnetic dual-responsive molecularly imprinted polymers for recognition and extraction of bisphenol A. J Chromatogr A 1435:30–8
  • Yan H, and Row KH. 2006. Characteristic and synthetic approach of molecularly imprinted polymer. IJMS 7:155–78
  • Yang Y, Owino AA, Gao Y, et al. 2016. Occurrence, composition and risk assessment of antibiotics in soils from Kenya, Africa. Ecotoxicology 25:1194–201
  • Yeom JR, Yoon SU, and Kim CG. 2017. Quantification of residual antibiotics in cow manure being spread over agricultural land and assessment of their behavioral effects on antibiotic resistant bacteria. Chemosphere 182:771–80
  • Yuan S, Wang Q, Yates SR, et al. 2010. Development of an efficient extraction method for oxytetracycline in animal manure for high performance liquid chromatography analysis. J Environ Sci Health B 45:612–20
  • Zhang H, Zhou Y, Huang Y, et al. 2016. Residues and risks of veterinary antibiotics in protected vegetable soils following application of different manures. Chemosphere 152:229–37

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