Volume 11 Issue 3
Jun.  2021
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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
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

Probing the degradation of pharmaceuticals in urine using MFC and studying their removal efficiency by UPLC-MS/MS

doi: 10.1016/j.jpha.2020.04.006
  • Received Date: Oct. 11, 2019
  • Accepted Date: Apr. 21, 2020
  • Rev Recd Date: Apr. 17, 2020
  • Available Online: Jan. 24, 2022
  • Publish Date: Jun. 15, 2021
  • Nutrient recovery from source-separated human urine has attracted interest as it is rich in nitrogen and phosphorus that can be utilized as fertilizer. However, urine also contains pharmaceuticals, steroid hormones, etc. and their removal is crucial as they have detrimental effects on the environment and human health. The current study focuses on investigating the degradation of pharmaceuticals using a double-chamber microbial fuel cell (MFC). Urine was spiked with four pharmaceuticals (trimethoprim, lamivudine, levofloxacin, and estrone) at a concentration of 2 μg/mL. The MFC was operated for 7 months in batch mode with this spiked urine as feed. The degradation efficiency of the MFC was studied, for which a selective liquid chromatography-tandem mass-spectrometric method was developed for the quantitation of compounds used in the spiking experiments and was validated with a lower limit of quantification of 0.39 ng/mL. The maximum removal rate achieved was 96% ± 2%. The degradation mechanism involved processes like sorption and anoxic biodegradation. The voltage curve obtained showed that the presence of pharmaceuticals had an initial negative impact on power generation along with increased organic content; however, after the reactor acclimatization, increased power output was achieved with maximum organics removal at 30 h of retention time. This work opens a new perspective for the anoxic biodegradation of pharmaceuticals and can be useful in future bioremediation studies.
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  • 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
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