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Abstract

This paragraph explains there are several bioremediation techniques that use a range of microorganisms to treat contaminated settings. Biodegradation has been used in the last 20 years as a tool for environmental cleanup. By using their extracellular enzymes to speed up the bioremediation process, bacteria, algae, yeast, and fungi can all be utilized in the remediation of polluted environments. Due to its exceptional capacity to adapt to a variety of pollutants as well as its ability to bio-absorb and bio-convert the pollutants into less harmful products than the parental recalcitrant pollutants, fungi have attracted a lot of interest in their ability to decontaminate polluted environments.

Keywords

Filamentous fungi biodegradation

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How to Cite
Duha Bahaa Mohammed Al Fayaad, & Yaaroub Faleh Al Fatlawy. (2022). Review Biodegradation a Real tool in environmental cleaning. Texas Journal of Agriculture and Biological Sciences, 11, 96–102. Retrieved from https://zienjournals.com/index.php/tjabs/article/view/3160

References

  1. Adenipekun, C.O., (2012). Bioremediation of evaluation of basidiomycotina species on plyaromatic hydrocarbons. African journal of biotechnology. 11 (10): 899-914.
  2. Adenipekun, C.O., Ogunjobi, A.A. and Ogunseye O.A., (2012). Managementof polluted soils by a white-rot fungus, Pleurotus pulmonarius. Assumption University of Technol J. 15(1):57-61.
  3. Adenipekun, C.O. and Lawal R., (2012). Uses of mushrooms in bioremediation: A review. Biotechnology and molecular biology review vol. 7(3), pp. 62-68.
  4. Buswell, J.A., 1994. Potential of spent mushroom substrate for bioremediation purposes. Compost Science Utilization. 2: 31-6.
  5. Cai, Y.J., Buswell, J.A. and Chan S.T., (1999). Production and distribution of endoglucanese, cellobiohydrolase and β-glucosidase components of cellulolytic system of edible straw mushroom, Volvariella volvacea. Applcation of Environmental Microbiol; 65: 553-9.
  6. Cameron, M.D., Timofeevski, S. and Aust S.D., (2000). Enzymology of Phanerochaete chrysosporium with respect to the degradation of recalcitrant compounds and xenobiotics. Applied Microbiol Biotechnol. 54: 751-8.
  7. Chang, S.T. and Miles, P.G., (2004). Mushrooms: cultivation, nutritional value, medicinal effect and environmental impact. 2nd ed. Boca Raton (FL): CRC Press; 2004. 451 p. 7
  8. Chang, S.T., (2006). The mushroom industry: trends and technological development. International Journal of Medicinal Mushroom. 8:297-314
  9. Dua M., Sethunathan N. and Johri A.K., (2002). Biotechnology bioremediation success and limitations. Applied Microbiology and Biotechnology, 59:143-152.
  10. Johnson D.L., Anderson D.R. and McGrath S.P., (2005). Soil microbial response during the phytoremediation of a PAH contaminated soil. Soil Biology and Biochemistry, 37: 2334- 2336. 11-Kuiper I. and Lagendijk E.L., (2003). Rhizoremediation: A Beneficial Plant-Microbe Interaction. Molecular Plant Microbe Interaction, 17: 6-15.
  11. Kao E., Sasek V. and Cajthaml T. (2006). Mycoremediation. Current state andperspectives. Int. J. Med. Mushrooms 7(3):360-361.
  12. King R.B., Long G.M. and Sheldon J.K. (1997). Practical Environmental Bioremediation: the Field Guide, 2nd ed.
  13. Lewis, Boca Raton, FL. Lamar R.T., Glaser A., Kirk T.K. (1990). White-rot fungi in the treatment of hazardous chemical and wastes. Soil Bio Biochem. 22:433-40.
  14. Ladislao S., Laconi S., Giovanni M., Cabiddu A. and Pompei R., (2008). Bioremediation of olive oil mill waste water and production of microbial biomass.Biodegradation 18(5):559- 566.
  15. Nester, Eugene W., Denise G. and Anderson C., (2001). Microbiology: A Human Perspective. 3 rd Ed. New York: McGraw-Hill.
  16. Niu et al., 2005. Biosoprption of pyritic heavy metals-An overview, Indian journal of biotechnology vol. 7 pp 159-169.
  17. Perfumo, Amedea, Banat I.M. and Roger M., (2000). “Thermally Enhanced Approaches for Bioremediation of Hydrocarbon-Contaminated Soils.” Chemosphere 66: 179-184.
  18. Rhodes, C. (2014). Mycoremedaiation (Bioremediation with Fungi)-Growing mushrooms to clean the earth. A mini review, Journal of environmental science. (4): 768-72.
  19. Stamets, P. (2005). Mycellium running: how mushrooms can help save the world. Berkeley/Toronto: Ten Speed Press; 2005. 339 p. Canada.
  20. Stamets P., (1985). Cultivator: A practical guide for growing mushrooms at home. John Wiley and sons publishing company. Washing DC, USA. Strong
  21. P.J. and Burgess J.E., (2008). Treatment methods for wine-related ad distillery wastewaters: a review. Bioremediation Journal, 12: 70-87.
  22. Singh O.V. and Jain R.K., (2003). Phytoremediation of toxic aromatic pollutants from soil. Applied Microbiology and Biotechnology, 63:128-135.
  23. Sheng-wang P., Shi-qiang W., Xin Y. and Sheng-xian C., (2008). The Removal and Remediation of Phenanthrene and Pyrene in Soil by Mixed Cropping of Alfalfa and Rape. Agricultural Sciences in China, 7:1355-1364.
  24. Umrania, VV. (2006). Bioremediation of toxic heavy metals using acidothermophilic autotrophes. Bioresourse Technology, 97:1237–1242.
  25. U.S. EPA Seminars., (2006). Bioremediation of Hazardous Waste Sites: Practical Approach to Implementation, EPA/625/K-96/001.
  26. U.S. EPA., (1998). Handbook on In Situ Treatment of Hazardous Waste Contaminated Soils, EPA/540/2- 90/002
  27. Validi M (2001). Bioremediation. An Overview. Pure Appl. Chem. 73(7): 163-1172.
  28. Walworth, James, Andrew P, Ian S, John R, Susan F, and Paul H. 2005. “Fine Tuning Soil Nitrogen to Maximize Petroleum Bioremediation.” ARCSACC (2005): 251-257.
  29. Wei X.F. and Xia J.J., (2008). Improvement of rape (Brassica napus) plant growth and cadmium uptake by cadmium resistant bacteria. Chemosphere, 64:1036–1042.
  30. -Zharama et al., (2012). Mycoremediation of toxicants from chosen sites in the Phlippine setting. International journal of Chemical and environmental Engineering, vol 3: No.5.
  31. - Coates , J.D.et al.Emerging (2016 ) techniques for anaerobic bioremediation of contaminated environments.Trends in Biotechnology , 18(10):408.
  32. - Nadim , F .et al (2018) .Detection and remediation of soil and aquifer systems contaminated with petroleum products: an overview .Journal of Petroleum Science &Engineering , 26(1 ~ 4):169.
  33. - Soesilo , J.A .et al. (2005) .Site Remediation: Planning and Management . London: Lew is Publishers,.
  34. - Kirtland , B.C .et al (2010). Monitoring anaerobic natural attenuation of petroleum using a novel in situ respiration method in low-permeability sediment .Bioremediation Journal, , 4(3):187. 36-Aw asthi, N .et al , (2021).Factors influencing the degradation of soil-applied endosulfanisomers.Soil Biology & Biochemistry, 32 (11 ~ 12):1697.
  35. - Lahlou , M .et al. (2011). Influence of soil components on the transport of polycyclic aromatic hyd rocarbon-degrading bacteria through saturated porous media. Environ.S ci.Technol., , 34(17):3649.
  36. - RojasAvelizapa , N .G .et al(2013). Effect of C/ N/P ratio and nonionic surfactants on polychlorinated biphenyl biodegradation. World Journal of Microbiology &Biotechnology, 16(4):319. Progress in Natural Science Vol.14 No .11
  37. - Hamer , G .et al. (2014).Biotechnological applications in the oil industry . Acta Biotechnologi ca, , 20(3 ~ 4):335.
  38. - Alexander, M (2020). .Biogradation and Bioremediation.London:Academic Press.
  39. -Meysami, P .et al. (2009).Pre-screening of fungi and bulking agents for contaminated soil bioremediation. Advances in Environment al Research, 7(4):881.
  40. - Wei, S.et al. (2012).The role of the rhizosphere and the mechanism analysis in the polluted soil remediation.Chinese Journal of Applied Ecology , 14(1):143.
  41. -Fiorenz a, S .et al.( 2000). Phytoremediation of Hydrocarbon-Contaminated Soil .London: Lewis Publishers.
  42. -Wei, S .et al.( 2019).Research on 18 weed species w ith hyperaccumulative characteristics of heay metals. Journal of Basic Science and Engineering, 11(2):152.
  43. -Siciliano, S .D.et al.( 2013).Plant-bacterial combinations to phytoremediate soil contaminated with high concentrations of 2 , 4 , 6-trinitrotoluene .J.Environ.Qual., 29(1):311.
  44. -Atagana, H .I .et al.( 2016). Optimization of soil physical and chemical conditions for the bioremediation of creosote-contaminated soil. Biodegradation, 14(4):297.
  45. -Rike , A .G .et al.( 2009 ). In situ biodegradation of petroleum hydrocarbons in frozen arctic soils. Cold Regions Science and Technology, 37(2):97.
  46. -Taniguchi, J.et al.( 2000).Zinc biosorption by a zinc-resist ant bacterium , Brevibacterium sp.strain HZM-1.Applied Microbiology and Biotechnology , 54(4):581.
  47. -Musarrat, J.et al.( 2015). Isolation and characterization of 2 , 4- dichlorophenoxyacetic acid-catabolizing bacteria and their biodegradation efficiency in soil. World Journal of Microbiology &Biotechnology , 16(5):495.
  48. -Chae , K .J.et al.( 2000).The optimum substrate to biomass ratio to reduce net biomass yields and inert compounds in biological leachate treatment under pure-oxygen conditions. Bioprocess Engineering , 23(3):235.
  49. - Ryeom, T .K .et al.( 2014).Degradation of phenanthrene by Sphingomonas sp.1 ~ 21 isolated from oil-contaminat ed soil.Journal of Microbiology and Biotechnology, 10(5):724.
  50. - CIRIA.(2014).In Situ Methods of Remediation.London:Construction Industry Research Information Association , 1995.

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