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Biodegradation of Glyphosate by Four Plant Growth Promoting Bacteria (4PGPB) | ||
Pollution | ||
دوره 11، شماره 1، بهمن 2024، صفحه 15-22 اصل مقاله (885.23 K) | ||
نوع مقاله: Original Research Paper | ||
شناسه دیجیتال (DOI): 10.22059/poll.2024.374139.2300 | ||
نویسندگان | ||
Nibal Mousa* ؛ Maysoon Abdul Hassan | ||
Scientific Research Authority, Higher Education and Scientific Research, 10070, Baghdad, Iraq | ||
چکیده | ||
Glyphosate was a non-specific organophosphate pesticide, which finds widespread application in shielding crops against the weeds. The degradation of glyphosate in soil usually carried out by microbial activity. Soil Pesticide bioremediation is the most economical, environmentally friendly and successful method available. In this research, four types of bacteria as Bacillus megaterium, Bacillus subtilis, Rhizobium sp., and Azotobacter sp.. The four plant growth promoting Bacteria (4PGPB) were found abundantly in soil. To study the decomposition of the glyphosate pesticide under laboratory conditions and at different concentrations starting from 5ppm, 10ppm, 15ppm, to 20ppm. These bacteria were grown on mineral salt media in 60 days incubation for the experimental condition in the presence of different concentrations of glyphosate. The removal efficiency of the Glyphosate depending on the starting concentration were obtained about (0, 60, 80.5 and 99.98%) for 5ppm, (0, 60.98, 79.80, and 96.80%) for 10 ppm, (0, 51.80, 71.80, and 88.95%) for 15 ppm , and (0, 47.94, 63.94, 87.28%), for 20 ppm respectively, via using the Bacillus megaterium bacterial, while the removal efficiency with values of (0, 59.70, 83.99 and 99.00%) for 5 ppm, (0, 49.87, 82.87, and 93.19%) for 10 ppm, (0, 52.45, 77.45, and 84.99%) 15ppm, and (0, 51.48, 71.48, 75.12%) for 20 ppm, respectively, for the Bacillus subtilisat bacterial. Besides, the removal efficiency for the Glyphosate with values of (0, 96, 86 and 92%) for 5ppm, (0, 57, 80, and 86 %) for 10ppm , (0, 47, 74, and 85 %)for 15ppm , (0, 47, 72, and 84 %), and (0, 45, 67, 80 %) for 20 ppm via using the Azotobacter sp.bactira, respectively. The biodegradation using Rhizobium sp. at 60 day incubation with the same experimental conditions which was (0, 96, 86 and 92%) for 5 ppm , (0, 57, 80, and 86%) 10 ppm, (0, 47, 74, and 85%), (0, 47, 72, and 84%) for 15 ppm , and (0, 45, 67, 80%) for 20ppm from the Glyphosate concentration. The removal efficiency increased with increasing incubation time and with the decreasing of Glyphosate concentrations when used it as a source of phosphorus and carbon for the three plant growth promoting Bacteria (4PGPB). The biodegradation of Glyphosate in soil may be effectively utilized for bioremediation or biodegradation for duration of 30 to 60 days. | ||
کلیدواژهها | ||
Microorganisms؛ Bioremediation؛ Organophosphorus pesticides | ||
مراجع | ||
Abdul Hassan, M.M., Ahmed, K.H., Amera, H.H. & Duread, E.S. (2019). Treatment of Contaminated Water with Industrial Dyes by Using Nano Zero Valent Iron (NZVI) and Supported on Pillared Clay. Advances in Analytical Chemistry, 9(1): 1-7.http:doi.org/ 10.5923/j.aac.20190901.01. Aquilantia, L., Favillib, F. and Clementia, F. (2004). Comparison of different strategies for isolation and preliminary identification of Azotobacter from soil samples. Soil Biology & Biochemistry, 36, 1475–1483. Chandrashekar, M.A., Supreeth, M., Soumya Pai, K., Ramesh, S.K.C., Geetha , N., Puttaraju, H.R. and Raju, N.S. (2017). Biodegradation Of Organophosphorous Pesticide, Chlorpyrifos By Soil Bacterium - Bacillus Megateriumrc 88. Asian Jr. of Microbiol. Biotech. Env. Sc., 19(1), 127-133. Chennappa, G., Adkar-purushothama, C.R. and Suraj, U. (2014). Tamilvendan, K.Sreenivasa, M.Y. Pesticides tolerant Azotobacter isolates from paddy growing areas of northern Karnataka, India, World Journal of Microbiology and Biotechnology,30(1), 1412-3. Feng, D., Soric, A. and Boutin, O. (2020). Treatment technologies and degradation pathways of glyphosate: A critical review Science of the Total Environment, 742, pp.140559. http:doi.org/10.1016/j.scitotenv.2020.140559. Gachande B.D. and Khansole, G.S. (2011). Morphological, Cutural and Biochemical Characteristics Of Rhizobium japonicum syn and Bmdyrhizobium japonicum of’ Soybean. Bioscience Discovery, 2(1):1-5. Islas, G., Rodriguez J.A., Mendoza -Huizar, L.H., Pérez-Moreno, F. and Gabriela Carrillo, E. (2014). Determination of Glyphosate and Aminomethyl -phosphonic Acid in soils by HPLC with Pre-Column Derivatization Using 1, 2-Naphthoquinone-4-Sulfonate. Journal of Liquid Chromatography & Related Technologies, 37, 1298–1309. Kaczyński, P. and Łozowicka, B. (2015). Liquid chromatographic determination of glyphosate and aminomethylphosphonic acid residues in rapeseed with MS/MS detection or derivatization/fluorescence detection. Open Chem., 13: 1011–1019. Melo, K.G., De Nucci ,G., Trape, A.Z., Jacobucci, S.R.F., Garlipp, C.R. and Rosa, P.C.P. (2018). Brief Review Analytical Methods for the Determination of Glyphosate. MOJ Toxicoogyl, 4(2):00088. McGuire MA, Janae BS, McGuire MK, Price WJ, et al. Glyphosate amino-methyl-phosphonic acid are not detectable in human milk. Am J Clin Nutrition 2016. ;103(5),pp:1285-1290. Moneke, A.N.; Okpala, G.N., Anyanwu C.U. (2010). Biodegradation of glyphosate herbicide in vitro using bacterial isolates from four ice fields. African Journal of Biotechnology,2010; 9(26), pp: 4067-4974. Mousa, N.A., Ali M.H. and Hussain M.(2019). Bacillus Megaterium Biodegradation Glycophate. Iraqi Journal of Agricultural Sciences, 50(6):1674-1680. Newman, M.N., Hoilett, N., Lorenz, N., Dick, R.P., Liles, M.R., Ramsier, C. and Kloepper, J.W. (2016). Glyphosate effects on soil rhizosphere-associated bacterial communities, Science of the Total Environment, 543, pp. 155 –160. Nieminen, T., Rintaluoma, N., Andersson, M., Taimisto, A.M., Ali-Vehmas, T., Seppälä, A., Priha, O.and Salkinoja-Salonen, M. (2007). Toxinogenic Bacillus pumilus and Bacillus licheniformis from mastitic milk.Vet Microbiol, 124(3-4):329-339. Panwar, A., Choudhary, Sh., Manoj Sharma, M., Shrama,Y.K, Malhotra, R.S., Mehta, MS..K.,Aishwath, O.P. (2012). Morphological and biochemical characterization of Rhizobium isolates obtained from fenugreek (Trigonella foenum). Seed Res., 40(2): 196-200. Shweta, N., Jadhav, S.K. and Keshavkant, S. (2017). Bacillus megaterium: A potential swimmer and an efficient bio-degrader of an organophosphorus pesticide. International Conference on Environmental Microbiology and Microbial Ecology and International Conference on Ecology and Ecosystems,7(2); pp. 84. Singh, S. (2011). Selection of Effective Azotobacter Isolates for Tomato (Lycopersicon Esculentum Mill.). Master Thesis. Indira Gandhi Krishi Vishwavidyalaya, Raipur (C.G.), pages:128. Sperber, J. I. (1957). Solubilization of mineral phosphate by soil bacteria. Nature, 180: 994-995 Sun, Y., Wang, C., Wen, Q., Wang, G., Wang, H. and Qu, Q.(2010). Determination of Glyphosate and Aminomethyl -phosphonic Acid in Water by LC a New Labeling Reagent, 4-Methoxybenzenesulfonyl Fluoride. Chromatographia, 72, 679–686. Tang, M. and You M. (2012). Isolation, identification and characterization of a novel triazophos-degrading Bacillus sp. (TAP-1). Microbiological Research, 167:299-305. Tarazona, J.V., Court-Marques, D., Tiramani, M., Reich, H., Pfeil, R., Istace, F. and Crivellente, F. (2017). Glyphosate toxicity and carcinogenicity: a review of the scientific basis of the European Union assessment and its differences with IARC. Arch. Toxicol. 91, 2723–2743. https://doi.org/10.1007/s00204-017-1962-5. Valavanidis A. (2018). Glyphosate, the Most Widely Used Herbicide. Scientific Reviews., Chem-tox ecotox. org. pages:41. Van Bruggen, A.H.C., He, M.M., Shin, K., Mai, V., Jeong, K.C., Finckh, M.R. and Morris, J.G. (2018). Environmental and health effects of the herbicide glyphosate. Sci. Total Environ. 616–617, 255–268. https://doi.org/10.1016/j.scitotenv.2017.10.309. Zhu, J., Fu, L., Jin, C., Meng, Z. and Yang, N. (2019). Study on the Isolation of Two Atrazine-Degrading Bacteria and the Development of a Microbial Agent. Microorganisms, 7,80:1-11. | ||
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