263
Views
12
CrossRef citations to date
0
Altmetric
Original Articles

Elucidation of 2, 4-Dichlorophenol degradation by Bacillus licheniformis strain SL10

, , &
Pages 366-377 | Received 25 Oct 2017, Accepted 01 Jul 2018, Published online: 20 Jul 2018

References

  • Munro IC, Carlo GL, Orr JC, et al. A comprehensive, integrated review and evaluation of the scientific evidence relating to the safety of the herbicide 2, 4-D. Int J Toxicol. 1992;11:559–664.
  • Shen L, Wania F, Lei YD, et al. Atmospheric distribution and long-range transport behavior of organochlorine pesticides in North America. Environ Sci Technol. 2005;39:409–420.
  • Peteinatos GG, Weis M, Andújar D, et al. Potential use of ground-based sensor technologies for weed detection. Pest Manag Sci. 2014;70:190–199.
  • Nutman P, Thornton H, Quastel J. Plant growth substances as selective weed killers. Inhibition of plant growth by 2, 4-dichlorophenoxyacetic acid and other plant growth substances. Nature. 1945;155:498–500.
  • Wang Y, Ren H, Pan H, et al. Enhanced tolerance and remediation to mixed contaminates of PCBs and 2,4-DCP by transgenic alfalfa plants expressing the 2, 3-dihydroxybiphenyl-1, 2-dioxygenase. J Hazard Mater. 2015;286:269–275.
  • Bradberry SM, Cage SA, Proudfoot AT, et al. Poisoning due to pyrethroids. Toxicol Rev. 2005;24:93–106.
  • Sparks DL. Chemistry of soil organic matter environmental soil chemistry. 2nd ed. San Diego (CA): Academic Press; 2003. p. 75–113.
  • Shukla G, Kumar A, Bhanti M, et al. Organochlorine pesticide contamination of ground water in the city of hyderabad. Environ Int Marine Pollut Ecotox . 2006;32:244–247.
  • Wang Y, Merkel BJ, Li Y, et al. Vulnerability of groundwater in Quaternary aquifers to organic contaminants: a case study in wuhan city, China. Environ Geol. 2007;53:479–484.
  • Kumar A, Trefault N, Olaniran AO. Microbial degradation of 2, 4-dichlorophenoxyacetic acid: insight into the enzymes and catabolic genes involved, their regulation and biotechnological implications. Crit Rev Microbiol. 2016;42:194–208.
  • Kumar A, Bhunia B, Dasgupta D, et al. Optimization of culture condition for growth and phenol degradation by alcaligenes faecalis JF339228 using taguchi methodology. Desalin Water Treat. 2013;51:3153–3163.
  • Ye X, Zhou X, Wong L-Y, et al. Concentrations of bisphenol A and seven other phenols in pooled sera from 3–11 year old children: 2001–2002 National Health and Nutrition Examination Survey. Environ Sci Technol. 2012;46:12664–12671.
  • Kintz P, Cirimele V, Tracqui A, et al. Simultaneous determination of amphetamine, methamphetamine, 3, 4-methylenedioxyamphetamine and 3, 4-methylene dioxy methamphetamine in human hair by gas chromatography-mass spectrometry. J Chromatogr B Biomed Sci Appl. 1995;670:162–166.
  • LaGrega MD, Buckingham PL, Evans JC. Hazardous waste management. New York: McGraw-Hill; 1994. p. 1232.
  • Cheng R, Wang J, Zhang W. Reductive dechlorination of 2, 4-dichlorophenol using nanoscale FeO: influencing factors and possible mechanism. Sci China Ser B Chem. 2007;50:574–579.
  • Ivanova V, Stoyanova M, Christoskova S. Study on the catalytic activity of nanosized NiOx for oxidative degradation of 2, 4-dichlorophenol in aqueous solutions. Bulgarian Chem Commun. 2014;46:141–148.
  • Cao Z, Zhang M, Zhang J, et al. Impact of continuous and intermittent supply of electric assistance on high-strength 2, 4-dichlorophenol (2, 4-DCP) degradation in electro-microbial system. Bioresour Technol. 2016;212:138–143.
  • García O, Isarain-Chávez E, Garcia-Segura S, et al. Degradation of 2, 4-dichlorophenoxyacetic acid by electro-oxidation and electro-fenton/BDD processes using a pre-pilot plant. Electrocatalysis. 2013;4:224–234.
  • Lee H-C, In J-H, Kim J-H, et al. Kinetic analysis for decomposition of 2, 4-dichlorophenol by supercritical water oxidation. Korean J Chem Eng. 2005;22:882–888.
  • Yin L, Shen Z, Niu J, et al. Degradation of pentachlorophenol and 2, 4-dichlorophenol by sequential visible-light driven photocatalysis and laccase catalysis. Environ Sci Technol. 2010;44:9117–9122.
  • Ruan X, Liu H, Chang C-Y, et al. Preparation of organobentonite by a novel semidry-method and its adsorption of 2, 4–dichlorophenol from aqueous solution. Int Biodeterior Biodegrad. 2014;95:212–218.
  • Li N, Mei Z, Ding S. 2, 4-Dichlorophenol sorption on cyclodextrin polymers. J Incl Phenom Macrocycl Chem. 2010;68:123–129.
  • Jiao P, Yang C, Yang L, et al. The recovery of gallic acid from wastewater by extraction with tributyl phosphate/4-methyl-2-pentanone/n-hexane, tributyl phosphate/n-octanol/n-hexane and n-hexanol. RSC Adv. 2016;6:93626–93639.
  • Shao J, Cheng Y, Yang C, et al. Efficient removal of naphthalene-2-ol from aqueous solutions by solvent extraction. J Environ Sci. 2016;47:120–129.
  • Yan Z, He H, Yang C, et al. Biodegradation of 3, 5-dimethyl-2, 4-dichlorophenol in saline wastewater by newly isolated penicillium sp. yz11-22N2. J Environ Sci. 2017;57:211–220.
  • Felshia SC, Karthick NA, Thilagam R, et al. Efficacy of free and encapsulated bacillus lichenformis strain SL10 on degradation of phenol: A comparative study of degradation kinetics. J Environ Manage. 2017;197:373–383.
  • Arora PK, Bae H. Bacterial degradation of chlorophenols and their derivatives. Microb Cell Fact. 2014;13:1–17.
  • Nalbur BE, Alkan U. The inhibitory effects of 2-CP and 2, 4-DCP containing effluents on sequencing batch reactors. Int Biodeterior Biodegrad. 2007;60:178–188.
  • Herrera Y, Okoh AI, Alvarez L, et al. Biodegradation of 2, 4-dichlorophenol by a Bacillus consortium. World J of Microbiol Biotech. 2008;24:55–60.
  • Kargi F, Eker S. Kinetics of 2, 4-dichlorophenol degradation by Pseudomonas putida CP1 in batch culture. Int Biodeterior Biodegrad. 2005;55:25–28.
  • Gonzalez A, Gallego A, Gemini V, et al. Degradation and detoxification of the herbicide 2, 4-dichlorophenoxyacetic acid (2, 4-D) by an indigenous Delftia sp. strain in batch and continuous systems. Int Biodeterior Biodegrad. 2012;66:8–13.
  • Tsujiyama S, Muraoka T, Takada N. Biodegradation of 2, 4-dichlorophenol by shiitake mushroom (Lentinula edodes) using vanillin as an activator. Biotechnol Lett. 2013;35:1079–1083.
  • Holt JGK, Sneath NR, Staley PH, et al. Bergey’s manual of determinative bacteriology. Baltimore: Williams and Wilkins; 1994.
  • Turner S, Pryer KM, Miao VP, et al. Investigating deep phylogenetic relationships among cyanobacteria and plastids by small subunit rRNA sequence analysis. J Eukaryot. Microbiol. 1999;46:327–338.
  • Faust SD, Aly OM. Determination of 2, 4-dichlorophenol in water. J American Water Works Association. 1962;54:235–242.
  • Vilimkova L, Jechova J, Koubkova Z, et al. Isolation and partial characterization of catechol 1, 2-dioxygenase of phenol degrading yeast candida tropicalis. Neuro Endocrinol Lett. 2008;30:80-87.
  • Neumann G, Teras R, Monson L, et al. Simultaneous degradation of atrazine and phenol by Pseudomonas sp. strain ADP: effects of toxicity and adaptation. Applied Environ Microbiol. 2004;70:1907–1912.
  • Bradford MM. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem. 1976;72:248–254.
  • Ellis TG, Anselm CV. Effect of batch discharges on extant biodegradation kinetics in activated-sludge systems. Water Environ Res. 1999;71:290–298.
  • Chen M, Xu P, Zeng G, et al. Bioremediation of soils contaminated with polycyclic aromatic hydrocarbons, petroleum, pesticides, chlorophenols and heavy metals by composting: applications, microbes and future research needs. Biotechnol Adv. 2015;33:745–755.
  • Grady CL, Smets BF, Barbeau DS. Variability in kinetic parameter estimates: a review of possible causes and a proposed terminology. Water Res. 1996;30:742–748.
  • Ellis TG, Smets BF, Magbanua BS, et al. Changes in measured biodegradation kinetics during the long-term operation of completely mixed activated sludge (CMAS) bioreactors. Water Sci Technol. 1996;34:35–42.
  • Tyler JE, Finn R. Growth rates of a pseudomonad on 2, 4-dichlorophenoxyacetic acid and 2, 4-dichlorophenol. Appl Microbiol. 1974;28:181–184.
  • Sahinkaya E, Dilek FB. Biodegradation kinetics of 2, 4-dichlorophenol by acclimated mixed cultures. J Biotechnol. 2007;127:716–726.
  • Ziagova M, Kyriakou G, Liakopoulou-Kyriakides M. Co-metabolism of 2, 4-dichlorophenol and 4-Cl-m-cresol in the presence of glucose as an easily assimilated carbon source by Staphylococcus xylosus. J Hazard Mater. 2009;163:383–390.
  • Ziagova M, Liakopoulou-Kyriakides M. Kinetics of 2, 4-dichlorophenol and 4-Cl-m-cresol degradation by Pseudomonas sp. cultures in the presence of glucose. Chemosphere. 2007;68:921–927.
  • Tomei MC, Annesini MC, Bussoletti S. 4-nitrophenol biodegradation in a sequencing batch reactor: kinetic study and effect of filling time. Water Res. 2004;38:375–384.
  • Wang Y, Shen Z, Chen X. Effects of experimental parameters on 2, 4-dichlorphenol degradation over Er-chitosan-PbO 2 electrode. J Hazard Mater. 2010;178:867–874.
  • Mendonça E, Martins A, Anselmo AM. Biodegradation of natural phenolic compounds as single and mixed substrates by Fusarium flocciferum. Electron J Biotechnol. 2004;7:38–46.
  • Ning Z, Kennedy K, Fernandes L. Ph dependency of 2, 4-chlorophenol dechlorination by acclimated anaerobic granules. Water (Basel). 1998;24:153–156.
  • Delgado AG, Parameswaran P, Fajardo-Williams D, et al. Role of bicarbonate as a pH buffer and electron sink in microbial dechlorination of chloroethenes. Microb Cell Fact. 2012;11:128. DOI:10.1186/1475-2859-11-128.
  • Frankena J, Koningstein GM, van Verseveld HW, et al. Effect of different limitations in chemostat cultures on growth and production of exocellular protease by Bacillus licheniformis. Appl Microbiol Biotechnol. 1986;24:106–112.
  • Lejeune R, Baron G. Effect of agitation on growth and enzyme production of Trichoderma reesei in batch fermentation. Appl Microbiol Biotechnol. 1995;43:249–258.
  • Rahman RNZA, Geok LP, Basri M, et al. Physical factors affecting the production of organic solvent-tolerant protease by Pseudomonas aeruginosa strain K. Bioresour Technol. 2005;96:429–436.
  • Huq SI. Critical environmental issues relating to tanning industries in Bangladesh. ACIAR Proc. 1998;89: 174.
  • Milo RE, Duffner FM, Müller R. Catechol 2, 3-dioxygenase from the thermophilic, phenol-degrading Bacillus thermoleovorans strain A2 has unexpected low thermal stability. Extremophiles. 1999;3:185–190.
  • Sridevi V, Lakshmi M, Manasa M, et al. Metabolic pathways for the biodegradation of phenol. Int J Eng Sci Adv Technol. 2012;2:695–705.
  • Chris Felshia YA, Varadharajan K, Mandal AB, et al. Maximum phenol tolerance and subsequent degradation profile of Abacillus pumilus strain mcg 03 an isolate from tannery wastewater contaminated soil. Int J Curr Res. 2014;6:9734–9744.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.