Citation: | Priya Sharma, Devendra Kumar, Srikanth Mutnuri. Probing the degradation of pharmaceuticals in urine using MFC and studying their removal efficiency by UPLC-MS/MS[J]. Journal of Pharmaceutical Analysis, 2021, 11(3): 320-329. doi: 10.1016/j.jpha.2020.04.006 |
L. Yang, A. Giannis, V.W. Chang, et al., Application of hydroponic systems for the treatment of source-separated human urine, Ecol. Eng. 81 (2015) 182-191
|
J. Spangberg, P. Tidaker, H. Jonsson, Environmental impact of recycling nutrients in human excreta to agriculture compared with enhanced wastewater treatment, Sci. Total Environ. 493 (2014) 209-219
|
B.I. Escher, W. Pronk, M.A.X. Maurer, Monitoring the removal efficiency of pharmaceuticals and hormones in different treatment processes of source-separated urine with bioassays, Environ. Sci. Technol. 40 (2006) 5095-5101
|
S.R.M. Marco, M.J. Lopez, D.A. Damia, Biosensors for environmental monitoring of endocrine disruptors : a review article, Anal. Bioanal. Chem. 378 (2004) 588-598
|
S. Jain, P. Kumar, R.K. Vyas, Occurrence and removal of antiviral drugs in environment : A Review, Water. Air. Soil Pollut. 224 (2013) 1410
|
J.R. Kim, Y. Zuo, J.M. Regan, et al., Analysis of ammonia loss mechanisms in microbial fuel cells treating animal wastewater, Biotechnol. Bioeng. 99 (2008) 1120-1127
|
O.A. Arikan, Degradation and metabolization of chlortetracycline during the anaerobic digestion of manure from medicated calves, J. Hazard. Mater. 158 (2008) 485-490
|
C.C. Jara, D. Fino, V. Specchia, et al., Electrochemical removal of antibiotics from wastewaters, Appl. Catal. 70 (2007) 479-487
|
J. Ma, F. Yu, L. Zhou, et al., Enhanced adsorptive removal of methyl orange and methylene blue from aqueous solution by alkali-activated multiwalled carbon nanotubes, ACS Appl. Mater. 11 (2012) 5749-5760
|
S. Navalon, M. Alvaro, H.G. A, Reaction of chlorine dioxide with emergent water pollutants : product study of the reaction of three b-lactam antibiotics with ClO2, Water Res. 42 (2008) 1935-1942
|
X. Wang, Z. Cai, Q. Zhou, et al., Bioelectrochemical stimulation of petroleum hydrocarbon degradation in saline soil using U-tube microbial fuel cells, Biotechnol. Bioeng. 109 (2012) 426-433
|
T. Zhang, S.M. Gannon, K.P. Nevin, et al., Stimulating the anaerobic degradation of aromatic hydrocarbons in contaminated sediments by providing an electrode as the electron acceptor, Environ. Microbiol. 12 (2010) 1011-1020
|
P. Sharma, D. Kumar, S. Mutnuri, UPLC-MS/MS method validation of ciprofloxacin in human urine : Application to biodegradability study in microbial fuel cell, Biomed. Chromatogr. 33 (2019) 1-8
|
L. Wang, Y. Liu, J. Ma, et al., Rapid degradation of sulphamethoxazole and the further transformation of 3-amino-5-methylisoxazole in a microbial fuel cell, Water Res. 88 (2016) 322-328
|
J. De Smet, K. Boussery, K. Colpaert, et al., Pharmacokinetics of fluoroquinolones in critical care patients: A bio-analytical HPLC method for the simultaneous quantification of ofloxacin, ciprofloxacin and moxifloxacin in human plasma, J. Chromatogr. B Anal. Technol. Biomed. Life Sci. 877 (2009) 961-967
|
E. M. Vermeirssen, R. Burki, C. Joris, Characterization of the estrogenicity of swiss midland rivers using a recombinant yeast bioassay and plasma vitellogenin concentrations in feral male brown trout, Environ. Toxicol. Chem. 24 (2005) 2226-2233
|
APHA, AWWA, WEF. Standard Methods for examination of water and wastewater. 22nd ed. Washington: American Public Health Association; 2012, 1360, ISBN 978-087553-013-0
|
P. Sharma, S. Mutnuri, Nutrient recovery and microbial diversity in human urine fed microbial fuel cell, Water Sci. Technol. 79 (2019) 718-730
|
Y.S. Chhonker, D. Kumar, P. Shrivastava, et al., LC-MS/MS assay for the determination of natamycin in rabbit and human plasma : Application to a pharmacokinetics and protein binding study, J. Pharm. Anal. 3 (2013) 144-148
|
M. Gros, S. Rodriguez-mozaz, D. Barcelo, Rapid analysis of multiclass antibiotic residues and some of their metabolites in hospital, urban wastewater and river water by ultra-high-performance liquid chromatography coupled to quadrupole-linear ion trap tandem mass spectrometry, J. Chromatogr. A. 1292 (2013) 173-188
|
A.Y. Lin, Y. Tsai, Occurrence of pharmaceuticals in Taiwan’s surface waters : Impact of waste streams from hospitals and pharmaceutical production facilities, Sci. Total Environ. 407 (2009) 3793-3802
|
R. Lindberg, Determination of antibiotic substances in hospital sewage water using solid phase extraction and liquid chromatography/mass spectrometry and group analogue internal standards, Chemosphere. 57 (2004) 1479-1488
|
R. Verplaetse, S. Decabooter, E. Cuypers, et al., Screening of urine and blood using limited sample preparation and information dependent acquisition with LC-MS/MS as alternative for immunoassays in forensic toxicology., J. Forensic Toxicol. Pharmacol. 02 (2013) 1-8
|
Guidelines for Industry: Bioanalytical Method Validation, US Department of Health and Human Services, Food and Drug Administration, Center for Drug Evaluation and Research Center (CDER), 2013
|
P. Liu, H. Zhang, Y. Feng, et al., Integrating electrochemical oxidation into forward osmosis process for removal of trace antibiotics in wastewater, J. Hazard. Mater. 296 (2015) 248-255
|
E.A. Serna-Galvis, J. Silva-Agredo, A.L. Giraldo, et al., Comparative study of the effect of pharmaceutical additives on the elimination of antibiotic activity during the treatment of oxacillin in water by the photo-Fenton, TiO2-photocatalysis and electrochemical processes, Sci. Total Environ. 541 (2016) 1431-1438
|
C. Yu, R.A. Deeb, K. Chu, Microbial degradation of steroidal estrogens, Chemosphere. 91 (2013) 1225-1235
|
S. Larcher, V. Yargeau, Biodegradation of sulfamethoxazole by individual and mixed bacteria, Appl. Microbiol. Biotechnol. 91 (2011) 211-218
|
I.S. Moreira, C.L. Amorim, C.D. Murphy et al. Strategies for biodegradation of fluorinated compounds, Springer Netherlands, 2018
|