Biodegradation of Atrazine Herbicide: A Mini-review
DOI:
https://doi.org/10.54987/jobimb.v11i1.791Keywords:
Atrazine, Bacteria, Bioremediation, Biodegradation, PollutionAbstract
Atrazine herbicide is known to disrupt the endocrine system and is potentially carcinogenic. The long-term use of this herbicide results in high residue levels in soil, causing water contamination of agricultural land. Microbial degradation of herbicide represents a cost-effective way of eco-restoration compared to the more expensive physicochemical methods, especially in soil settings. Growth and degradation of atrazine by microorganisms are optimal at specific concentrations, temperature, pH, inoculum size and hours of incubation. Previously isolated microorganisms have demonstrated high efficiency for atrazine biodegradation with a broad optimum pH and temperature. The metabolic pathway for biodegradation has been elucidated and reveals important characteristics. These organisms as suitable candidates for bioremediation of atrazine-polluted sites have shown great potential for atrazine degradation. This review aimed to catalogue and update the characteristics of isolated atrazine-degrading microorganisms to date.
References
Xu X, Zarecki R, Medina S, Ofaim S, Liu X, Chen C, et al. Modeling microbial communities from atrazine contaminated soils promotes the development of biostimulation solutions. ISME J. 2019;13(2019):494-508.
Sardrood BP, Goltapeh EM. Chapter 1 An Introduction to Bioremediation Chapter 1 An Introduction to Bioremediation. 2015;(November):2-27.
He H, Liu Y, You S, Liu J, Xiao H, Tu Z. A Review on Recent Treatment Technology for Herbicide Atrazine in Contaminated Environment. Int J Environ Res Public Health. 2019;16(2019):5129.
Li Y, Liang D, Sha J, Zhang J, Gao J. Isolating and Identifying the Atrazine-Degrading Strain Arthrobacter sp . LY-1 and Applying it for the Bioremediation of Atrazine-Contaminated Soil. Pol J Environ Stud. 2019;28(3):1267-75.
Shamsedini N. Photodegradation of Atrazine by Ultraviolet Radiation in Different Conditions. J Heal Sci Surveill Sys. 2015;3(3).
Gonçalves I, Almeida G De, Casazza AA, Converti A, Sarubbo LA. Soil Bioremediation?: Overview of Technologies and Trends. energies. 2020;13(4664):25.
Davila S, Alvarez A, Maria J, Leticia V, Soledad M, Antonio S, et al. Chemosphere Actinobacteria?: Current research and perspectives for bioremediation of pesticides and heavy metals. Chemosphere. 2017;166(2017):41-62.
Kolekar PD, Phugare SS, Jadhav JP. Biodegradation of atrazine by Rhodococcus sp . BCH2 to N -isopropylammelide with subsequent assessment of toxicity of biodegraded metabolites. Environ Sci Pollut Res. 2014;21:2334-45.
Varshney K. BIOREMEDIATION OF PESTICIDE WASTE. J Emerg Technol Innov Res. 2019;6(5):8.
Dixit RM. Recent Trends in Bioremediation Chapter 5 Recent Trends in Bioremediation. 2014;(December).
Godheja J, Modi DR, Kolla V, Bajpai R. Environmental Remediation?: Microbial and Nonmicrobial Prospects Tree Ecosystem?: Microbial Dynamics and Functionality. 2019.
Chaprão MJ, Ferreira INS, Correa PF, Ru RD, Luna JM. Application of bacterial and yeast biosurfactants for enhanced removal and biodegradation of motor oil from contaminated sand Application of bacterial and yeast biosurfactants for enhanced removal and biodegradation of motor oil from contaminated sand. Electron J Biotechnol. 2015;18(2015):471-9.
Olu-arotiowa O, Ajani A, Aremu MO, Agarry SE. Bioremediation of Atrazine Herbicide Contaminated Soil Using Different Bioremediation Strategies Bioremediation of Atrazine Herbicide Contaminated Soil Using Different. J Appl Sci Environ Manag ·. 2019;23(1):99-109.
Ariole CN, Abubakar A. Biodegradation of Atrazine by Bacteria Isolated from Lotic Water. J Appl Life Sci Int. 2015;2(3):119-25.
El-bestawy E. Isolation , identification and acclimatization of Atrazine-resistant soil bacteria. Ann Agric Sci. 2013;58(2):119-30.
Fan X, Song F. Bioremediation of atrazine: recent advances and promises. J Soils Sediments. 2014;14(10):1727-37.
Esp Y, Aranzulla G, Manuel Á, Jos J. applied sciences Microbial Community and Atrazine-Degrading Genetic Potential in Deep Zones of a Hypersaline Lake-Aquifer System. Appl Sci Artic. 2020;1-14.
Govantes F, Porrúa O, García-gonzález V, Santero E. Minireview Atrazine biodegradation in the lab and in the field?: enzymatic activities and gene regulation. Microb Biotechnol. 2009;2(2):178-85.
Zhu J, Fu L, Jin C, Meng Z, Yang N. Study on the Isolation of Two Atrazine-Degrading Bacteria and the Development of a Microbial Agent. microorganism. 2019;7(80):1-11.
Wang J, Zhu L, Wang Q, Wang J, Xie H. Isolation and Characterization of Atrazine Mineralizing Bacillus subtilis Strain HB-6. PLoS One. 2014;9(9):1-9.
Ye JY, Zhang JB, Gao JG, Li HT, Liang D, Liu RM. Isolation and characterization of atrazine-degrading strain Shewanella sp . YJY4 from cornfield soil. Appl microbioilogy. 2016;6:45-52.
Shiri MA. Isolation of Atrazine Degrading Bacteria in Semi-Salinity Medium. J Heal Sci Surveill Syst. 2016;4(3).
Omotayo AE, Ilori MO, Obayori OS, Oladipo O. Influence of pH, temperature and nutrient addition on the degradation of atrazine by Nocardioides spp. isolated from agricultural soil in Nigeria. Malays J Microbiol. 2016;12(4):270-8.
Andleeb S, Jiang Z, Rehman K, Olajide EK, Ying Z. ScienceDirect In fl uence of Soil pH and Temperature on Atrazine Bioremediation. J Northeast Agric Univ. 2016;23(2):12-9.
Zhao, X., Wang, L., Du, L., Yang, J., Donga J., and Ma P. RSC Advances Optimization of culturing conditions for isolated. R Soc Chem. 2017;7(2017):33177-84.
Khatoon H, Rai JPN. Optimization studies on biodegradation of atrazine by Bacillus badius ABP6 strain using response surface methodology. Biotechnol Reports. 2020;26(2020):e00459.
Swissa N, Nitzan Y, Langzam Y, Cahan R. International Biodeterioration & Biodegradation Atrazine biodegradation by a monoculture of Raoultella planticola isolated from a herbicides wastewater treatment facility. Int Biodeterior Biodegrad J. 2014;92(2014):6-11.
Li M, Zhan F, Chen J, Zu Y, Li Y. Atrazine Degradation Pathway and Genes of Arthrobacter sp . FM326. polish J Environ Stud. 2020;29(5):3683-9.
Dehghani M, Nasseri S, Hashemi H. Study of the Bioremediation of Atrazine under Variable Carbon and Nitrogen Sources by Mixed Bacterial Consortium Isolated from Corn Field Soil in Fars Province of Iran. J Environ Public Health. 2013;2013:7.
Zhang J, Liang S, Wang X, Lu Z, Sun P, Zhang H, et al. Biodegradation of Atrazine by the Novel Klebsiella variicola Strain FH-1. Biomed Res Int. 2019;2019:12.
Shamsedini N, Baghapour MA, Dehghani M, Nasseri S, Moghaddam MS. Optimization of Atrazine Degradation in the Aqueous Phase Titanium Catalyst Doped with Iron (Fe+3-TiO2) Processes. Heal Scope. 2016;e33065.(February).
Mansee AH, Bakry NM, El-gwad DMA. Factors affecting potentials of certain bacterial isolates for atrazine bioremediation. Agric Eng Int. 2017;(91):91-100.
Abigail EA, Salam JA, Das N. Atrazine degradation in liquid culture and soil by a novel yeast Pichia kudriavzevii strain Atz-EN-01 and its potential application for bioremediation. J Appl Pharm Sci. 2013;3(06):35-43.
Zhang Y, Ning Z, Zhao J, Xinran P, Shuyan M, Miao H. Isolation of two atrazine-degrading strains and their degradation characteristics. Int J Agric Bioligical Eng. 2009;2(3):27-32.
Zhao X, Wang L, Ma F, Yang J. Biotechnology for Biofuels Characterisation of an efficient atrazine ? degrading bacterium , Arthrobacter sp . ZXY ? 2?: an attempt to lay the foundation for potential bioaugmentation applications. Biotechnol Biofuels. 2018;11(113):1-10.
Debasmita N, Rajasimman M. Optimization and kinetics studies on biodegradation of atrazine using mixed microorganisms. Alexandria Eng J. 2013;52(3):499-505.
Muhammad F, Yusuf F, Ahmad FA, Shehu U, Yakasai HM. Optimizing the effect of ph and temperature on atrazine degradation by Bacillus safensis strain BUK _ BCH _ BTE6 an efficient atrazine tolerating bacteria from an agricultural soil in Kura local government area of Kano State , Nigeria. Nig. J Biotechnol. 2021;38(2):92-100.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2023 Journal of Biochemistry, Microbiology and Biotechnology
This work is licensed under a Creative Commons Attribution 4.0 International License.
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0) that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).