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Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor

Year 2025, Volume: 8 Issue: 1, 7 - 16, 31.03.2025
https://doi.org/10.35208/ert.1456471

Abstract

Pesticides are chemicals and preparations used in agricultural control practice and research. They are used to prevent and control pests. Pesticides are toxic and biocidal substances. The unconscious and uncontrolled use of pesticides in order to provide high yields in agricultural areas is an important problem for human health and the environment. For this reason, biodegredation of pesticides was gained importance in recent years. N- (phosphonomethyl) glycine formulated as isopropylamine salt, is a broad spectrum herbicide with high activity and effective destruction. In this study, the optimization of anaerobic treatment of N- (phosphonomethyl) glycine was investigated by applying a statistical-based experimental design. Full factorial experiments with different initial pesticide concentrations and cosubstrate types were established and 9 different experimental setup were established. The experiments carried out in 2 replicates. The experiments were carried out in Oxitop C flasks in a working volume of 200 mL with stirring. The pH was adjusted to 7 ± 0.2. The experiments carried out at 35oC for 30 days. At the end of the process, the removal of inlet and outlet COD and pesticide values were analyzed. As a result, the most efficient COD removal was obtained with 99 % at a pesticide concentration of 5 mg L-1 and glucose as cosubstrate. The highest pesticide removal was found to be 75 % at a pesticide concentration of 25 mg L-1 and glucose as cosubstrate. 5 mg. L-1pesticide containing inlet concentration had toxic effect over 19% of the Vibrio fischeria before treatment, while no toxic effect was observed after treatment. This shows that the toxic value of wastewater containing pesticides decreased.

Supporting Institution

Eskisehir Osmangazi University Scientific Research Projects Coordination Unit

Project Number

201821047

References

  • C. A Laetz, D. H. Baldwin, T. K. Collier, V. Hebert, J. D. Stark, and N. L. Scholz, “The synergistic toxicity of pesticide mixtures: implications for risk assessment and the conservation of endangered Pacific salmon,” Environmental Health Perspectives, Vol. 117(3), pp. 348–353, 2009. [CrossRef]
  • K. Ikehata, and M. G El-Din, “Aqueous pesticide degradation by hydrogen peroxide/ultraviolet irradiation and Fenton-type advanced oxidation processes: a review,” Journal of Environmental Engineering and Science, Vol. 5(2), pp. 81–135, 2006. [CrossRef]
  • F. Dogan, and M. Karpuzcu, “Current status of agricultural pesticide pollution in Turkey and evaluation of alternative control methods,” Pamukkale University Journal of Engineering Sciences Vol. 25(6), pp. 734–747, 2019. [CrossRef]
  • R. Misra, S. Satyanarayan, and N. Potle, “Treatment of agrochemical/pesticide wastewater by coagulation/flocculation process,” International Journal of Chemical and Physical Sciences, Vol. 2, pp. 39–51, 2013.
  • R. Kanissery, B. Gairhe, D. Kadyampakeni, O. Batuman, and F. Alferez, “Glyphosate: Its environmental persistence and impact on crop health and nutrition.” Plants, Vol. 8(11), Article 499, 2019. [CrossRef]
  • N. Tresnakova, A. Stara, and J. Velisek, “Effects of glyphosate and its metabolite AMPA on aquatic organisms,” Applied Sciences, Vol. 11(19), Article 9004, 2021. [CrossRef]
  • R. B. Baird, A. D. Eaton, and L. S. Clesceri, “Standard methods for the examination of water and wastewater (Vol. 10). E. W. Rice (Ed.). American Public Health Association, 2012.
  • G. Demirer, and R. Speece “Anaerobic biotransformation of four-carbon compounds (acrolein, acrylic acid, allyl alcohol and n- propanol) in UASB reactors,” Water Research, Vol. 32(3), pp.747–759, 1998. [CrossRef]
  • B. Akçal, C. Filik Iscen, S. Ilhan, and A. A. Yavuz, “Statistical optimisation for decolourisation of Burazol Blue ED, using anaerobic conditions,” Fresenius Environmental Bulletin, Vol. 20(8a), 2059–2064, 2011.
  • S. S. Ersen, and C. F. Iscen, “Anaerobic treatability studies of metal ındustry wastewater in batch reactor,” International Journal of Sciences, Vol. 10(03), pp. 13–18, 2021. [CrossRef]
  • D. C. Montgomery, “Design and analysis of experiments,” John Wiley & Sons, 2017.
  • Ç. Uygun “Farklı pestisit gruplarının anaerobik arıtılabilirliğinin araştırılması,” (Master's thesis). Çukurova Üniversitesi Fen Bilimleri Enstitüsü, 2021. [Turkish]
  • S. L. Smith, “A Simple HPLC method for the determination of 2,4-Dinitrophenyl derivates of Glyphosate and Aminomethylphosphonic ascid applicable to plant studies,” (Master thesis), Simon Fraser University, 1990.
  • A. Gottlieb, C. Shaw, A. Smith, A. Wheatley, and S. Forsythe, “The toxicity of textile reactive azo dyes after hydrolysis and decolourisation. Journal of Biotechnology, Vol. 101(1), pp. 49–56, 2003. [CrossRef]
  • S. Tongur, S. Yıldız, A. Ünal, K. Atalay, and M. Yeniköşker, “Toxicity assessment of beta-blocker drug by lepidium sativum toxicity test method,” Digital Proceeding of ICOCEE, 1–9. 2017.
  • D. Feng, A Soric, and O Boutin, “Treatment technologies and degradation pathways of glyphosate: A critical review,” Science of The Total Environment, Vol. 742, Article 140559, 2020. [CrossRef]
  • A. M. Muskus, M. Krauss, A. Miltner, U. Hamer, and K. M. Nowak, “Degradation of glyphosate in a Colombian soil is influenced by temperature, total organic carbon content and pH,” Environmental Pollution, Vol. 259, Article 113767, 2020
  • N. De Castilhos Ghisi, N. R. Zuanazzi, T. M. C. Fabrin, and E. C. Oliveira, “Glyphosate and its toxicology: A scientometric review,” Science of the Total Environment, Vol. 733, Article 139359, 2020.
Year 2025, Volume: 8 Issue: 1, 7 - 16, 31.03.2025
https://doi.org/10.35208/ert.1456471

Abstract

Project Number

201821047

References

  • C. A Laetz, D. H. Baldwin, T. K. Collier, V. Hebert, J. D. Stark, and N. L. Scholz, “The synergistic toxicity of pesticide mixtures: implications for risk assessment and the conservation of endangered Pacific salmon,” Environmental Health Perspectives, Vol. 117(3), pp. 348–353, 2009. [CrossRef]
  • K. Ikehata, and M. G El-Din, “Aqueous pesticide degradation by hydrogen peroxide/ultraviolet irradiation and Fenton-type advanced oxidation processes: a review,” Journal of Environmental Engineering and Science, Vol. 5(2), pp. 81–135, 2006. [CrossRef]
  • F. Dogan, and M. Karpuzcu, “Current status of agricultural pesticide pollution in Turkey and evaluation of alternative control methods,” Pamukkale University Journal of Engineering Sciences Vol. 25(6), pp. 734–747, 2019. [CrossRef]
  • R. Misra, S. Satyanarayan, and N. Potle, “Treatment of agrochemical/pesticide wastewater by coagulation/flocculation process,” International Journal of Chemical and Physical Sciences, Vol. 2, pp. 39–51, 2013.
  • R. Kanissery, B. Gairhe, D. Kadyampakeni, O. Batuman, and F. Alferez, “Glyphosate: Its environmental persistence and impact on crop health and nutrition.” Plants, Vol. 8(11), Article 499, 2019. [CrossRef]
  • N. Tresnakova, A. Stara, and J. Velisek, “Effects of glyphosate and its metabolite AMPA on aquatic organisms,” Applied Sciences, Vol. 11(19), Article 9004, 2021. [CrossRef]
  • R. B. Baird, A. D. Eaton, and L. S. Clesceri, “Standard methods for the examination of water and wastewater (Vol. 10). E. W. Rice (Ed.). American Public Health Association, 2012.
  • G. Demirer, and R. Speece “Anaerobic biotransformation of four-carbon compounds (acrolein, acrylic acid, allyl alcohol and n- propanol) in UASB reactors,” Water Research, Vol. 32(3), pp.747–759, 1998. [CrossRef]
  • B. Akçal, C. Filik Iscen, S. Ilhan, and A. A. Yavuz, “Statistical optimisation for decolourisation of Burazol Blue ED, using anaerobic conditions,” Fresenius Environmental Bulletin, Vol. 20(8a), 2059–2064, 2011.
  • S. S. Ersen, and C. F. Iscen, “Anaerobic treatability studies of metal ındustry wastewater in batch reactor,” International Journal of Sciences, Vol. 10(03), pp. 13–18, 2021. [CrossRef]
  • D. C. Montgomery, “Design and analysis of experiments,” John Wiley & Sons, 2017.
  • Ç. Uygun “Farklı pestisit gruplarının anaerobik arıtılabilirliğinin araştırılması,” (Master's thesis). Çukurova Üniversitesi Fen Bilimleri Enstitüsü, 2021. [Turkish]
  • S. L. Smith, “A Simple HPLC method for the determination of 2,4-Dinitrophenyl derivates of Glyphosate and Aminomethylphosphonic ascid applicable to plant studies,” (Master thesis), Simon Fraser University, 1990.
  • A. Gottlieb, C. Shaw, A. Smith, A. Wheatley, and S. Forsythe, “The toxicity of textile reactive azo dyes after hydrolysis and decolourisation. Journal of Biotechnology, Vol. 101(1), pp. 49–56, 2003. [CrossRef]
  • S. Tongur, S. Yıldız, A. Ünal, K. Atalay, and M. Yeniköşker, “Toxicity assessment of beta-blocker drug by lepidium sativum toxicity test method,” Digital Proceeding of ICOCEE, 1–9. 2017.
  • D. Feng, A Soric, and O Boutin, “Treatment technologies and degradation pathways of glyphosate: A critical review,” Science of The Total Environment, Vol. 742, Article 140559, 2020. [CrossRef]
  • A. M. Muskus, M. Krauss, A. Miltner, U. Hamer, and K. M. Nowak, “Degradation of glyphosate in a Colombian soil is influenced by temperature, total organic carbon content and pH,” Environmental Pollution, Vol. 259, Article 113767, 2020
  • N. De Castilhos Ghisi, N. R. Zuanazzi, T. M. C. Fabrin, and E. C. Oliveira, “Glyphosate and its toxicology: A scientometric review,” Science of the Total Environment, Vol. 733, Article 139359, 2020.
There are 18 citations in total.

Details

Primary Language English
Subjects Environmental Biotechnology (Other), Pollution and Contamination (Other), Wastewater Treatment Processes
Journal Section Research Articles
Authors

Çağla Uygun 0000-0002-3277-0531

Cansu Filik Iscen 0000-0001-5463-8825

Ülküye Dudu Gül 0000-0001-6443-1633

Semra İlhan 0000-0002-3787-2449

Project Number 201821047
Publication Date March 31, 2025
Submission Date March 21, 2024
Acceptance Date June 28, 2024
Published in Issue Year 2025 Volume: 8 Issue: 1

Cite

APA Uygun, Ç., Filik Iscen, C., Gül, Ü. D., İlhan, S. (2025). Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor. Environmental Research and Technology, 8(1), 7-16. https://doi.org/10.35208/ert.1456471
AMA Uygun Ç, Filik Iscen C, Gül ÜD, İlhan S. Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor. ERT. March 2025;8(1):7-16. doi:10.35208/ert.1456471
Chicago Uygun, Çağla, Cansu Filik Iscen, Ülküye Dudu Gül, and Semra İlhan. “Anaerobic Treatment of N-(phosphonometyl) Glycine Using Mixed Culture in Batch Reactor”. Environmental Research and Technology 8, no. 1 (March 2025): 7-16. https://doi.org/10.35208/ert.1456471.
EndNote Uygun Ç, Filik Iscen C, Gül ÜD, İlhan S (March 1, 2025) Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor. Environmental Research and Technology 8 1 7–16.
IEEE Ç. Uygun, C. Filik Iscen, Ü. D. Gül, and S. İlhan, “Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor”, ERT, vol. 8, no. 1, pp. 7–16, 2025, doi: 10.35208/ert.1456471.
ISNAD Uygun, Çağla et al. “Anaerobic Treatment of N-(phosphonometyl) Glycine Using Mixed Culture in Batch Reactor”. Environmental Research and Technology 8/1 (March 2025), 7-16. https://doi.org/10.35208/ert.1456471.
JAMA Uygun Ç, Filik Iscen C, Gül ÜD, İlhan S. Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor. ERT. 2025;8:7–16.
MLA Uygun, Çağla et al. “Anaerobic Treatment of N-(phosphonometyl) Glycine Using Mixed Culture in Batch Reactor”. Environmental Research and Technology, vol. 8, no. 1, 2025, pp. 7-16, doi:10.35208/ert.1456471.
Vancouver Uygun Ç, Filik Iscen C, Gül ÜD, İlhan S. Anaerobic treatment of N-(phosphonometyl) glycine using mixed culture in batch reactor. ERT. 2025;8(1):7-16.