extracts from cress (Lepidium sativum) grown hydroponically in water containing four
non-steroidal anti-inflammatory drugs. J Chromatogr A 1491:137–144
48. Emhofer L, Himmelsbach M, Buchberger W, Klampfl CW (2019) High-performance liquid
chromatography drift-tube ion-mobility quadrupole time-of-flight/mass spectrometry for the
identity confirmation and characterization of metabolites from three statins (lipid-lowering
drugs) in the model plant cress (Lepidium sativum) after uptake from water. J Chromatogr A
1592:122–132
49. Huber C, Bartha B, Schröder P (2012) Metabolism of diclofenac in plants--hydroxylation is
followed by glucose conjugation. J Hazard Mater 243:250–256
50. Carvalho PN, Basto MCP, Almeida CMR (2012) Potential of phragmites australis for the
removal of veterinary pharmaceuticals from aquatic media. Bioresour Technol 116:497–501
51. Liu L, Liu Y, Liu C, Wang Z, Dong J, Zhu G, Huang X (2013) Potential effect and
accumulation of veterinary antibiotics in phragmites australis under hydroponic conditions.
Ecol Eng 53:138–143
52. He Y, Nie E, Li C, Ye Q, Wang H (2017) Uptake and subcellular distribution of triclosan in
typical hydrophytes under hydroponic conditions. Environ Pollut 220(Pt A):400–406
53. Cui H, Schröder P (2016) Uptake, translocation and possible biodegradation of the antidiabetic
agent metformin by hydroponically grown typha latifolia. J Hazard Mater 308:355–361
54. Li Y, Zhang J, Zhu G, Liu Y, Wu B, Ng WJ, Appan A, Tan SK (2016) Phytoextraction,
phytotransformation and rhizodegradation of ibuprofen associated with typha angustifolia in a
horizontal subsurface flow constructed wetland. Water Res 102:294–304
55. Bartha B, Huber C, Schröder P (2014) Uptake and metabolism of diclofenac in Typha latifolia
-- how plants cope with human pharmaceutical pollution. Plant Sci 227:12–20
56. Verlicchi P, Zambello E (2014) How efficient are constructed wetlands in removing pharmaceuticals from untreated and treated urban wastewaters? A review. Sci Total Environ
470–471:1281–1306
57. Boxall A, Johnson P, Smith E, Sinclair C, Stutt E, Levy L (2006) Uptake of veterinary
medicines from soils into plants. J Agric Food Chem 54:2288–2297
58. Briggs G, Bromilow R, Evans A (1982) Relationships between lipophilicity and root uptake
and translocation of non-ionized chemicals by barley. Pestic Sci 13:495–504
59. Chiou CT, Sheng G, Manes M (2001) A partition-limited model for the plant uptake of organic
contaminants from soil and water. Environ Sci Technol 35(7):1437–1444
60. Trapp S (2004) Plant uptake and transport models for neutral and ionic chemicals. Environ Sci
Pollut Res 11:33
61. Li M, Ding T, Wang H, Wang W, Li J, Ye Q (2018) Uptake and translocation of
14
C-carbamazepine in soil-plant systems. Environ Pollut 243(B):1352–1359
62. Carter LJ, Agatz A, Kumar A, Williams M (2020) Translocation of pharmaceuticals from
wastewater into beehives. Environ Int 134:105248
63. Eggen T, Asp TN, Grave K, Hormazabal V (2011) Uptake and translocation of metformin,
ciprofloxacin and narasin in forage- and crop plants. Chemosphere 85:26–33
64. Herklotz P, Gurung P, Heuvel B, Kinney C (2010) Uptake of human pharmaceuticals by plants
grown under hydroponic conditions. Chemosphere 78:1416–1421
65. Migliore L, Brambilla G, Cozzolino S, Gaudio L (1995) Effect on plants of sulphadimethoxine
used in intensive farming (Panicum miliaceum, Pisum sativum and Zea mays). Agric Ecosyst
Environ 52(2–3):103–110
66. Karnjanapiboonwong A, Chase DA, Cañas JE, Jackson WA, Maul JD, Morse AN, Anderson
TA (2011) Uptake of 17α-ethynylestradiol and triclosan in pinto bean, Phaseolus vulgaris.
Ecotoxicol Environ Saf 74(5):1336–13342
67. Bromilow R, Chamberlain K (1995) Trapp S, Mc Farlane JC (eds) Principles governing uptake
and transport of chemicals in plant contamination. Lewis/CRC Press, Boca Raton, pp 37–68
68. Wu C, Spongberg A, Witter J, Sridhar B (2012) Transfer of wastewater associated pharmaceuticals and personal care products to crop plants from biosolids treated soil. Ecotoxicol
Environ Saf 85:104–109
Uptake and Effects of Pharmaceuticals in the Soil-Plant-Earthworm System
215
non-steroidal anti-inflammatory drugs. J Chromatogr A 1491:137–144
48. Emhofer L, Himmelsbach M, Buchberger W, Klampfl CW (2019) High-performance liquid
chromatography drift-tube ion-mobility quadrupole time-of-flight/mass spectrometry for the
identity confirmation and characterization of metabolites from three statins (lipid-lowering
drugs) in the model plant cress (Lepidium sativum) after uptake from water. J Chromatogr A
1592:122–132
49. Huber C, Bartha B, Schröder P (2012) Metabolism of diclofenac in plants--hydroxylation is
followed by glucose conjugation. J Hazard Mater 243:250–256
50. Carvalho PN, Basto MCP, Almeida CMR (2012) Potential of phragmites australis for the
removal of veterinary pharmaceuticals from aquatic media. Bioresour Technol 116:497–501
51. Liu L, Liu Y, Liu C, Wang Z, Dong J, Zhu G, Huang X (2013) Potential effect and
accumulation of veterinary antibiotics in phragmites australis under hydroponic conditions.
Ecol Eng 53:138–143
52. He Y, Nie E, Li C, Ye Q, Wang H (2017) Uptake and subcellular distribution of triclosan in
typical hydrophytes under hydroponic conditions. Environ Pollut 220(Pt A):400–406
53. Cui H, Schröder P (2016) Uptake, translocation and possible biodegradation of the antidiabetic
agent metformin by hydroponically grown typha latifolia. J Hazard Mater 308:355–361
54. Li Y, Zhang J, Zhu G, Liu Y, Wu B, Ng WJ, Appan A, Tan SK (2016) Phytoextraction,
phytotransformation and rhizodegradation of ibuprofen associated with typha angustifolia in a
horizontal subsurface flow constructed wetland. Water Res 102:294–304
55. Bartha B, Huber C, Schröder P (2014) Uptake and metabolism of diclofenac in Typha latifolia
-- how plants cope with human pharmaceutical pollution. Plant Sci 227:12–20
56. Verlicchi P, Zambello E (2014) How efficient are constructed wetlands in removing pharmaceuticals from untreated and treated urban wastewaters? A review. Sci Total Environ
470–471:1281–1306
57. Boxall A, Johnson P, Smith E, Sinclair C, Stutt E, Levy L (2006) Uptake of veterinary
medicines from soils into plants. J Agric Food Chem 54:2288–2297
58. Briggs G, Bromilow R, Evans A (1982) Relationships between lipophilicity and root uptake
and translocation of non-ionized chemicals by barley. Pestic Sci 13:495–504
59. Chiou CT, Sheng G, Manes M (2001) A partition-limited model for the plant uptake of organic
contaminants from soil and water. Environ Sci Technol 35(7):1437–1444
60. Trapp S (2004) Plant uptake and transport models for neutral and ionic chemicals. Environ Sci
Pollut Res 11:33
61. Li M, Ding T, Wang H, Wang W, Li J, Ye Q (2018) Uptake and translocation of
14
C-carbamazepine in soil-plant systems. Environ Pollut 243(B):1352–1359
62. Carter LJ, Agatz A, Kumar A, Williams M (2020) Translocation of pharmaceuticals from
wastewater into beehives. Environ Int 134:105248
63. Eggen T, Asp TN, Grave K, Hormazabal V (2011) Uptake and translocation of metformin,
ciprofloxacin and narasin in forage- and crop plants. Chemosphere 85:26–33
64. Herklotz P, Gurung P, Heuvel B, Kinney C (2010) Uptake of human pharmaceuticals by plants
grown under hydroponic conditions. Chemosphere 78:1416–1421
65. Migliore L, Brambilla G, Cozzolino S, Gaudio L (1995) Effect on plants of sulphadimethoxine
used in intensive farming (Panicum miliaceum, Pisum sativum and Zea mays). Agric Ecosyst
Environ 52(2–3):103–110
66. Karnjanapiboonwong A, Chase DA, Cañas JE, Jackson WA, Maul JD, Morse AN, Anderson
TA (2011) Uptake of 17α-ethynylestradiol and triclosan in pinto bean, Phaseolus vulgaris.
Ecotoxicol Environ Saf 74(5):1336–13342
67. Bromilow R, Chamberlain K (1995) Trapp S, Mc Farlane JC (eds) Principles governing uptake
and transport of chemicals in plant contamination. Lewis/CRC Press, Boca Raton, pp 37–68
68. Wu C, Spongberg A, Witter J, Sridhar B (2012) Transfer of wastewater associated pharmaceuticals and personal care products to crop plants from biosolids treated soil. Ecotoxicol
Environ Saf 85:104–109
Uptake and Effects of Pharmaceuticals in the Soil-Plant-Earthworm System
215
