Abstract
Background, aim, and scope
Bed sediments are the major sink for many contaminants in aquatic environments. With increasing knowledge of and research on the environmental occurrence of antibiotics, there has been growing interest in their behaviour and fate in aquatic environments. However, there is little information about the behaviour of antibiotics in a dynamic water/sediment environment, such as river and coastal marine water. Therefore, the aims of the present study were: (1) to study the transport and distribution of four common antibiotics between water and sediment in both dynamic and quiescent water/sediment systems and (2) to understand the persistence and possible degradation of the four antibiotics in the two different systems.
Materials and methods
A lid-driven elongated annular flume, designed to reduce the centrifugal effect, was used to simulate a dynamic water environment. In addition, a quiescent water/sediment experiment was conducted for comparison with the dynamic water system. The seawater and sediment, used in both experiments of flowing and quiescent water/sediment systems, were collected from Victoria Harbour, a dynamic coastal environment in an urban setting. The four antibiotics selected in this study were ofloxacin (OFL), roxithromycin (RTM), erythromycin (ETM), and sulfamethoxazole (SMZ), the most commonly used antibiotics in South China.
Results and discussion
Antibiotics in an overlying solution decreased very quickly in the flume system due to the sorption to suspended particles and surface sediment. There were significant differences in the adsorption of the four antibiotics in sediment. OFL showed a high tendency to be adsorbed by sediment with a high K d value (2980 L/Kg), while the low K d values of SMZ indicated that there was a large quantity in water. The four antibiotics reached a depth of 20–30 mm in the sediment over a period of 60 days in the flume system. However, the compounds were only found in surface sediment (above 10 mm) in the quiescent system, indicating the influence of the dynamic flume system on the distribution of antibiotics in sediment. OFL showed a moderate persistence in the dynamic flume system, while other three antibiotics had less persistence in sediment. However, all of the four compounds showed moderate persistence in the quiescent system.
Recommendations and perspectives
The study showed the rapid diffusive transfer of antibiotics from water to sediment in the dynamic flume system. The four antibiotics exhibited larger differences in their adsorption to sediment in both dynamic and quiescent systems due to their different K d values. The high sorption of antibiotics to marine sediment may reduce their availability to benthic invertebrates.
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References
Allan IJ, House WA, Parker A, Carter JE (2004) Transport and distribution of lindane and simazine in a riverine environment: measurements in bed sediments and modelling. Pest Manage Sci 60:417–433
Allan IJ, House WA, Parker A, Carter JE (2005) Diffusion of the synthetic pyrethroid permethrin into bed-sediments. Environ Sci Technol 39:523–530
Andreozzi R, Raffaele M, Nicklas P (2003) Pharmaceuticals in STP effluents and their solar photodegradation in aquatic environment. Chemosphere 50:1319–1330
Bokuniewicz H, McTiernan L, Davis W (1991) Measurement of sediment resuspension rates in Long-Island sound. Geo Mar Lett 11:159–161
Brannon JM, Price CB, Yost SL, Hayes C, Porter B (2005) Comparison of environmental fate and transport process descriptors of explosives in saline and freshwater systems. Mar Pollut Bull 50:247–251
Cannavan A, Coyne R, Kennedy DG, Smith P (2000) Concentration of 22, 23-dihydroavermectin B-1a detected in the sediments at an Atlantic salmon farm using orally administered ivermectin to control sea-lice infestation. Aquaculture 182:229–240
Chan WY, Wai OWH (2004) Hydrodynamic and sediment transport properties in a lid-driven elongated annular flume (LEAF). Proceedings of the 4th International Symposium on Environmental Hydraulics and 14th Congress of IAHR-APD, Hong Kong, pp 21
Chan WY, Wai OWH, Li YS (2006) Critical shear stress for deposition of cohesive sediments in Mai Po. Proceedings of the Conference of Global Chinese Scholars on Hydrodynamics, pp 300–305
Clymo AS, Shin JY, Holmen BA (2005) Herbicide sorption to fine particulate matter suspended downwind of agricultural operations: Field and laboratory investigations. Environ Sci Technol 39:421–430
Dantas G, Sommer MOA, Oluwasegun RD, Church GM (2008) Bacteria subsisting on antibiotics. Science 320:100–103
Daughton CG, Ternes TA (1999) Pharmaceuticals and personal care products in the environment: Agents of subtle change? Environ Health Perspect 107:907–938
Davison J (1999) Genetic exchange between bacteria in the environment. Plasmid 42:73–91
Drillia P, Stamatelatou K, Lyberatos G (2005) Fate and mobility of pharmaceuticals in solid matrices. Chemosphere 60:1034–1044
Freitag D, Geyer H, Kraus A, Viswanathan R, Kotzias D, Attar A, Klein W, Korte F (1982) Ecotoxicological profile analysis.7. Screening chemicals for their environmental behavior by comparative-evaluation. Ecotoxicol Environ Saf 6:60–81
Freitag D, Ballhorn L, Geyer H, Korte F (1985) Environmental-hazard profile of organic-chemicals—an experimental-method for the assessment of the vehavior of organic-chemicals in the ecosphere by means of simple laboratory tests with C-14-labeled chemicals. Chemosphere 14:1589–1616
Gobel A, Thomsen A, McArdell CS, Joss A, Giger W (2005) Occurrence and sorption behavior of sulfonamides, macrolides, and trimethoprim in activated sludge treatment. Environ Sci Technol 39:3981–3989
Golet EM, Alder AC, Hartmann A, Ternes TA, Giger W (2001) Trace determination of fluoroquinolone antibacterial agents in urban wastewater by solid-phase extraction and liquid chromatography with fluorescence detection. Anal Chem 73:3632–3638
Golet EM, Xifra I, Siegrist H, Alder AC, Giger W (2003) Environmental exposure assessment of fluoroquinolone antibacterial agents from sewage to soil. Environ Sci Technol 37:3243–3249
Gulkowska A, He YH, So MK, Yeung LWY, Leung HW, Giesy JP, Lam PKS, Martin M, Richardson BJ (2007) The occurrence of selected antibiotics in Hong Kong coastal waters. Mar Pollut Bull 54:1287–1293
Halling-Sorensen B, Sengelov G, Ingerslev F, Jensen LB (2003) Reduced antimicrobial potencies of oxytetracycline, tylosin, sulfadiazin, streptomycin, ciprofloxacin, and olaquindox due to environmental processes. Arch Enviro Contam Toxicol 44:7–16
Heberer T (2002) Occurrence, fate, and removal of pharmaceutical residues in the aquatic environment: a review of recent research data. Toxicol Lett 131:5–17
Hirsch R, Ternes T, Haberer K, Kratz K-L (1999) Occurrence of antibiotics in the aquatic environment. Sci Total Environ 225:109–118
Hollis JM (1991) Mapping the vulnerability of aquifers and surface waters to pesticide contamination at the national regional scale. Pestic Soils Water: Current Perspectives 47:165–174
Holtge S, Kreuzig R (2007) Laboratory testing of sulfamethoxazole and its metabolite acetyl-sulfamethoxazole in soil. Clean-Soil Air Water 35:104–110
Jones OAH, Voulvoulis N, Lester JN (2002) Aquatic environmental assessment of the top 25 English prescription pharmaceuticals. Water Res 36:5013–5022
Kummerer K (2001) Emission and biodegradability of pharmaceuticals, contrast media, disinfectants and AOX from hospitals. Pharmaceuticals in the Environment—Sources, Fate, Effects, and Risks. pp 29–41
Kummerer K (2003) Significance of antibiotics in the environment. J Antimicrob Chemother 52:5–7
Kummerer K (2004) Resistance in the environment. J Antimicrob Chemother 54:311–320
Lindberg R, Jarnheimer P-A, Olsen B, Johansson M, Tysklind M (2004) Determination of antibiotic substances in hospital sewage water using solid phase extraction and liquid chromatography/mass spectrometry and group analogue internal standards. Chemosphere 57:1479–1488
Liu GD, Yu HF, Yan HS, Shi ZQ, He BL (2002) Utilization of synergetic effect of weak interactions in the design of polymeric sorbents with high sorption selectivity. J Chromatogr A 952:71–78
Loffler D, Rombke J, Meller M, Ternes TA (2005) Environmental fate of pharmaceuticals in water/sediment systems. Environ Sci Technol 39:5209–5218
Miao XS, Koenig BG, Metcalfe CD (2002) Analysis of acidic drugs in the effluents of sewage treatment plants using liquid chromatography-electrospray ionization tandem mass spectrometry. J Chromatogr A 952:139–147
Nowara A, Burhenne J, Spiteller M (1997) Binding of fluoroquinolone carboxylic acid derivatives to clay minerals. J Agric Food Chem 45:1459–1463
Pan B, Ning P, Xing BS (2009) Part V-sorption of pharmaceuticals and personal care products. Environ Sci Pollut Res 16:106–116
Patel VC (1965) Calibration of Preston tube and limitations on its use in pressure gradients. J Fluid Mech 23:185–208
Pouliquen H, LeBris H (1996) Sorption of oxolinic acid and oxytetracycline to marine sediments. Chemosphere 33:801–815
Pruden A, Pei R, Storteboom H, Carlson KH (2006) Antibiotic resistance genes as emerging contaminants: studies in Northern Colorado. Environ Sci Technol 40:7445–7450
Putschew A, Schittko S, Jekel M (2001) Quantification of triiodinated benzene derivatives and X-ray contrast media in water samples by liquid chromatography-electrospray tandem mass spectrometry. J Chromatogr A 930:127–134
Richardson BJ, Lam PKS, Martin M (2005) Emerging chemicals of concern: Pharmaceuticals and personal care products (PPCPs) in Asia, with particular reference to Southern China. Mar Pollut Bull 50:913–920
Sabaliunas D, Webb SF, Hauk A, Jacob M, Eckhoff WS (2003) Environmental fate of triclosan in the River Aire basin, UK. Water Res 37:3145–3154
Sacher F, Lange FT, Brauch H-J, Blankenhorn I (2001) Pharmaceuticals in groundwaters: Analytical methods and results of a monitoring program in Baden-Wurttemberg, Germany. J Chromatogr A 938:199–210
Sukul P, Lamshoft M, Zuhlke S, Spiteller M (2008) Sorption and desorption of sulfadiazine in soil and soil-manure systems. Chemosphere 73:1344–1350
Suzuki N, Yasuda M, Sakurai T, Nakanishi J (1998) Model simulation of environmental profile transformation and fate of polychlorinated dibenzo-p-dioxins and polychlorinated dibenzofurans by the multimedia environmental fate model. Chemosphere 37:2239–2250
Ternes TA (1998) Occurrence of drugs in German sewage treatment plants and rivers. Water Res 32:3245–3260
Ternes TA, Hirsch R (2000) Occurrence and behavior of X-ray contrast media in sewage facilities and the aquatic environment. Environ Sci Technol 34:2741–2748
Ternes TA, Meisenheimer M, McDowell D, Sacher F, Brauch HJ, Haist-Gulde B, Preuss G, Wilme U, Zulei-Seibert N (2002) Removal of pharmaceuticals during drinking water treatment. Environ Sci Technol 36:3855–3863
Thiele-Bruhn S, Seibicke T, Schulten HR, Leinweber P (2004) Sorption of sulfonamide pharmaceutical antibiotics on whole soils and particle-size fractions. J Environ Qual 33:1331–1342
Tolls J (2001) Sorption of veterinary pharmaceuticals in soils: A review. Environ Sci Technol 35:3397–3406
Wai OWH (2003) A lid-driven elongated annular flume (LEAF) for the determination of sediment transport properties. Proceedings of Sedimentation and Sediment Transport, pp 241–244
Williams RJ, Jurgens MD, Johnson AC (1999) Initial predictions of the concentrations and distribution of 17 beta-oestradiol, oestrone and ethinyl oestradiol in 3 English rivers. Water Res 33:1663–1671
Wu CX, Spongberg AL, Witter JD (2008) Determination of the persistence of pharmaceuticals in biosolids using liquid-chromatography tandem mass spectrometry. Chemosphere 73:511–518
Wu CX, Spongberg AL, Witter JD (2009) Sorption and biodegradation of selected antibiotics in biosolids. J Enviro Sci Health Part a-Toxic/Hazard Subs Environ Eng 44:454–461
Xu WH, Zhang G, Zou SC, Li XD, Liu YC (2007a) Determination of selected antibiotics in the Victoria Harbour and the Pearl River, South China using high-performance liquid chromatography-electrospray ionization tandem mass spectrometry. Environ Pollut 145:672–679
Xu WH, Zhang G, Li XD, Zou SC, Li P, Hu ZH, Li J (2007b) Occurrence and elimination of antibiotics at four sewage treatment plants in the Pearl River Delta (PRD), South China. Water Res 41:4526–4534
Yamamoto H, Nakamura Y, Moriguchi S, Nakamura Y, Honda Y, Tamura I, Hirata Y, Hayashi A, Sekizawa J (2009) Persistence and partitioning of eight selected pharmaceuticals in the aquatic environment: Laboratory photolysis, biodegradation, and sorption experiments. Water Res 43:351–362
Acknowledgements
This work was funded by the Natural Science Foundation of China (No. 40672212) and The Hong Kong Polytechnic University (G-U300). The research for this work was also supported by the CAS/SAFEA International Partnership Programme for Creative Research Teams (KZCX2-YW-T001), the Research Grants Council of Hong Kong (PolyU5152/03E), the Area of Excellence (AoE) project under Grant No. AoE/P-04/2004 from the University Grants Council of Hong Kong, and the China Postdoctoral Science Foundation (No. 20070420149).
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Xu, W.H., Zhang, G., Wai, O.W.H. et al. Transport and adsorption of antibiotics by marine sediments in a dynamic environment. J Soils Sediments 9, 364–373 (2009). https://doi.org/10.1007/s11368-009-0091-z
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DOI: https://doi.org/10.1007/s11368-009-0091-z