[1] V.I. Lushchak, T.M. Matviishyn, V.V. Husak, J.M. Storey, K.B. Storey, Pesticide toxicity: a mechanistic approach, EXCLI J. 17 (2018) 1101-1136. [2] S. Chapalamadugu, G.R. Chaudhry, Hydrolysis of carbaryl by a Pseudomonas sp. and construction of a microbial consortium that completely metabolizes carbaryl, Appl. Environ. Microbiol. 57 (3) (1991) 744-750. [3] S.A. Hasan, M.I.M. Ferreira, M.J. Koetsier, M.I. Arif, D.B. Janssen, Complete biodegradation of 4-fluorocinnamic acid by a consortium comprising Arthrobacter sp. strain G1 and Ralstonia sp. strain H1, Appl. Environ. Microbiol. 77 (2) (2011) 572-579. [4] C. Bolognesi, A. Creus, P. Ostrosky-Wegman, R. Marcos, Micronuclei and pesticide exposure, Mutagenesis 26 (1) (2011) 19-26. [5] R. Chen, Z. Zhao, T. Xu, X. Jia, Microbial consortium HJ-SH with very high degradation efficiency of phenanthrene, Microorganisms 11 (10) (2023) 2383. [6] S. Kuppusamy, P. Thavamani, K. Venkateswarlu, Y.B. Lee, R. Naidu, M. Megharaj, Remediation approaches for polycyclic aromatic hydrocarbons (PAHs) contaminated soils: technological constraints, emerging trends and future directions, Chemosphere 168 (2017) 944-968. [7] S. Bose, P.S. Kumar, D.V N. Vo, N. Rajamohan, R. Saravanan, Microbial degradation of recalcitrant pesticides: a review, Environ. Chem. Lett. 19 (4) (2021) 3209-3228. [8] C.C. Azubuike, C.B. Chikere, G.C. Okpokwasili, Bioremediation techniques-classification based on site of application: principles, advantages, limitations and prospects, World J. Microbiol. Biotechnol. 32 (11) (2016) 180. [9] A. Dadrasnia, K.S. Chuan Wei, N. Shahsavari, M.S. Azirun, S. Ismail, Biosorption potential of bacillus salmalaya strain 139SI for removal of Cr(VI) from aqueous solution, Int. J. Environ. Res. Public Health 12 (12) (2015) 15321-15338. [10] S.D. Copley, Evolution of efficient pathways for degradation of anthropogenic chemicals, Nat. Chem. Biol. 5 (8) (2009) 559-566. [11] R. Chen, R.L. Qin, H. Bai, X.Q. Jia, Recent advances and optimization strategies for the microbial degradation of PCBs: from monocultures to microbial consortia, Crit. Rev. Environ. Sci. Technol. 54 (14) (2024) 1023-1049. [12] A. Aswathi, A. Pandey, R.K. Sukumaran, Rapid degradation of the organophosphate pesticide-Chlorpyrifos by a novel strain of Pseudomonas nitroreducens AR-3, Bioresour. Technol. 292 (2019) 122025. [13] D.M. Dash, W.J. Osborne, Rapid biodegradation and biofilm-mediated bioremoval of organophosphorus pesticides using an indigenous Kosakonia oryzae strain-VITPSCQ3 in a Vertical-flow Packed Bed Biofilm Bioreactor, Ecotoxicol. Environ. Saf. 192 (2020) 110290. [14] B. Xu, Q.J. Sun, J.C. Lan, W.M. Chen, C.C. Hsueh, B.Y. Chen, Exploring the glyphosate-degrading characteristics of a newly isolated, highly adapted indigenous bacterial strain, Providencia rettgeri GDB 1, J Biosci Bioeng 128 (1) (2019) 80-87. [15] L. Zhang, C. Zhang, Z. Cheng, Y. Yao, J. Chen, Biodegradation of benzene, toluene, ethylbenzene, and o-xylene by the bacterium mycobacterium cosmeticum byf-4, Chemosphere 90 (4) (2013) 1340-1347. [16] S. Schulze, A. Tiehm, Assessment of microbial natural attenuation in groundwater polluted with gasworks residues, Water Sci. Technol. 50 (5) (2004) 347-353. [17] C.M. Kao, J. Prosser, Evaluation of natural attenuation rate at a gasoline spill site, J. Med. Internet Res. 82 (3) (2001) 275-289. [18] D. de Lima-Morales, D. Chaves-Moreno, M.L. Wos-Oxley, R. Jauregui, R. Vilchez-Vargas, D.H. Pieper, Degradation of benzene by pseudomonas veronii 1YdBTEX2 and 1YB2 is catalyzed by enzymes encoded in distinct catabolism gene clusters, Appl. Environ. Microbiol. 82 (1) (2016) 167-173. [19] H.B. Yu, B.J. Kim, B.E. Rittmann, The roles of intermediates in biodegradation of benzene, toluene, and p-xylene by Pseudomonas putida F1, Biodegradation 12 (6) (2001) 455-463. [20] B. Mahendran, N.C. Choi, J.W. Choi, D.J. Kim, Effect of dissolved oxygen regime on growth dynamics of Pseudomonas spp during benzene degradation, Appl. Microbiol. Biotechnol. 71 (3) (2006) 350-354. [21] R. Dolphen, C. Treesubsuntorn, N. Santawee, A. Setsungnoen, P. Thiravetyan, Modified coir pith with glucose syrup as a supporter in non-external nutrient supplied biofilter for benzene removal by Bacillus megaterium, Environ. Technol. 41 (27) (2020) 3607-3618. [22] H. Mohammadpour, M. Shahriarinour, R. Yousefi, Benzene degradation by free and immobilized Bacillus glycinifermantans strain GO-13T using GO sheets, Pol. J. Environ. Stud. 29 (4) (2020) 2783-2793. [23] J. Dou, A. Ding, X. Liu, Y. Du, D. Deng, J. Wang, Anaerobic benzene biodegradation by a pure bacterial culture of Bacillus cereus under nitrate reducing conditions, J. Environ. Sci. China 22 (5) (2010) 709-715. [24] A. Hernandez-Santana, J. Dussan, Lysinibacillus sphaericus proved to have potential for the remediation of petroleum hydrocarbons, Soil Sediment Contam. 27 (6) (2018) 538-549. [25] A. Wongbunmak, S. Khiawjan, M. Suphantharika, T. Pongtharangkul, BTEX- and naphthalene-degrading bacterium Microbacterium esteraromaticum strain SBS1-7 isolated from estuarine sediment, J. Hazard. Mater. 339 (2017) 82-90. [26] X. Liang, C.E. Devine, J. Nelson, B. Sherwood Lollar, S. Zinder, E.A. Edwards, Anaerobic conversion of chlorobenzene and benzene to CH4 and CO2 in bioaugmented microcosms, Environ. Sci. Technol. 47 (5) (2013) 2378-2385. [27] D. Mikailitchenko, A. Marbeuf, H.A.J. Oonk, Destabilizing effects of chlorine on complexes belonging to the benzene family: p-C6H4Cl2-C6F6 and p-C6H4CH3Cl-C6F6 systems, Chem. Mater., 11 (1999) 2866-2871. [28] R. Margesin, G. Walder, F. Schinner, Bioremediation assessment of a BTEX-contaminated soil, Acta Biotechnol. 23 (1) (2003) 29-36. [29] D.Q. Zhang, P.J. He, L.M. Shao, Effect of leachate inoculum on biopretreatment of municipal solid waste by a combined hydrolytic-aerobic process, J. Environ. Sci. 21 (8) (2009) 1162-1168. [30] R. Zhang, R. Cao, C. Ye, C. Li, Biodegradation of organic contaminants in sediment of littoral zone by facultative anaerobic bacteria, Environ Pollution & Control, 34 (2012) 61-65,69. [31] N.R. Mullins, A.J. Daugulis, The biological treatment of synthetic fracking fluid in an extractive membrane bioreactor: selective transport and biodegradation of hydrophobic and hydrophilic contaminants, J. Hazard. Mater. 371 (2019) 734-742. [32] L.A. Pratt, R. Kolter, Genetic analyses of bacterial biofilm formation, Curr. Opin. Microbiol. 2 (6) (1999) 598-603. [33] P.L. Stelmack, M.R. Gray, M.A. Pickard, Bacterial adhesion to soil contaminants in the presence of surfactants, RSC Adv. 65 (1) (1999) 163-168. [34] A.M.J. Law, M.D. Aitken, Bacterial chemotaxis to naphthalene desorbing from a nonaqueous liquid, Appl. Environ. Microbiol. 69 (10) (2003) 5968-5973. [35] M.T. Rose, F. Sanchez-Bayo, A.N. Crossan, I.R. Kennedy, Pesticide removal from cotton farm tailwater by a pilot-scale ponded wetland, Chemosphere 63 (11) (2006) 1849-1858. [36] C.N. Albers, L. Feld, L. Ellegaard-Jensen, J. Aamand, Degradation of trace concentrations of the persistent groundwater pollutant 2, 6-dichlorobenzamide (BAM) in bioaugmented rapid sand filters, Water Res. 83 (2015) 61-70. [37] M.D. Schostag, A. Gobbi, M.N. Fini, L. Ellegaard-Jensen, J. Aamand, L.H. Hansen, J. Muff, C.N. Albers, Combining reverse osmosis and microbial degradation for remediation of drinking water contaminated with recalcitrant pesticide residue, Water Res. 216 (2022) 118352. [38] M. Kumar, L. Philip, Biodegradation of endosulfan-contaminated soil in a pilot-scale reactor-bioaugmented with mixed bacterial culture, J. Environ. Sci. Health Part B 42 (6) (2007) 707-715. [39] P.A. Karas, S. Makri, E.S. Papadopoulou, C. Ehaliotis, U. Menkissoglu-Spiroudi, D.G. Karpouzas, The potential of organic substrates based on mushroom substrate and straw to dissipate fungicides contained in effluents from the fruit-packaging industry - Is there a role for Pleurotus ostreatus? Ecotoxicol. Environ. Saf. 124 (2016) 447-454. [40] P.A. Karas, C. Perruchon, E. Karanasios, E.S. Papadopoulou, E. Manthou, S. Sitra, C. Ehaliotis, D.G. Karpouzas, Integrated biodepuration of pesticide-contaminated wastewaters from the fruit-packaging industry using biobeds: Bioaugmentation, risk assessment and optimized management, J. Hazard. Mater. 320 (2016) 635-644. |