DOI QR코드

DOI QR Code

Anaerobic Biodegradation of PCP in Japanese Paddy Soils

  • Published : 2004.09.30

Abstract

Seven soil samples were collected from paddy fields located nearby Nagoya city in Japan. All the soils were subjected to flooded condition and incubated with PCP at $30^{\circ}C$ for two months, and their anaerobic PCP degradation have been monitored by checking the PCP concentration of the soils at regular intervals. The degradation of PCP did not occur in the soils autoclaved two times before pre-incubation. On the other hand, all the soils showed significant PCP degradation in non-sterilized condition after 30 days of incubation, except far one soil sample (Yatomi), in which PCP was rarely degraded until 30 days of incubation. This result showed PCP disappearance in the pad(rf soils was mainly caused by microbiological activity, and depended upon the physicochemical characteristics of the soils.

Keywords

References

  1. Mohn, W. W. and Tiedje, J. M (1992) Microbial reductive dehalogenation, Microbiological Reviews 56, 482-507
  2. Suflita, J. M, Horowitz, A., Shelton, D. R., Tiedje, J. M.(1982) Dehalogenation: A novel pathway for the anaerobic biodegradation of halogenated compounds, 218, 115-117 https://doi.org/10.1126/science.218.4568.115
  3. Tiedje, J. M., Boyd, S. A. and Fathepure, B. Z. (1987)Anaerobic degradation of chlorinated aromatic hydrocarbons, Developments in Industrial Microbiology 27, 117-127
  4. Mikesell, M D. and Boyd, S. A. (1986) Complete reductive dechlorination and mineralization of pentachlorophenol by anaerobic microorganisms, Applied and Environmental Microbiology 52, 861-865
  5. McAllister, K. A., Lee, H. and Trevors, J. T. (1996) Microbial degradation of pentachlorophenol, Biodegradation 7,1-40 https://doi.org/10.1007/BF00056556
  6. Kuwatsuka, S. and Igarashi, M. (1975) Degradation ofPCP in soils II. The relationship between the degradation of PCP and the properties of soils, and theidentification of the degradation products of PCP, Soil Sci. Plant Nutr. 21, 405-414 https://doi.org/10.1080/00380768.1975.10432656
  7. Secchieri, M, Benassi, C. A., Pastore, S., Semenzato, A.,Bettero, A., Levorato, M. and Guerrato, A. (1991) Rapid pentachlorophenol evaluation in solid matrixes by second derivative UV spectroscopy for application to wood and leather samples, J. Assoc. Off. Amd. Chem. 74, 674-678
  8. Mendoza-Cantu, A., Albores, A., Fernandez-Linares, L.and Rodriguez-Vazquez, R. (2000) Pentachlorophenol biodegradation and detoxification by the white-rot fungus Phanerochaete chrysosporium, Envirormental Toxicolosy 15, 107-113
  9. Editonal comimittee of Methods of Soil Environmental Analysis (1997) Methods of Soil Environmental Analysis, Hakuyusha, Tokyo, Japan, p.204-208
  10. Editorial committee of Soil Nutrient Analysis (1976) Soil Nutrient Analysis, Yokendo, Tokyo, Japan, p.324-332
  11. Liu, D., Maguire, R. J., Lau, Y. L, Pacepavicius, G.. J.,Okamura, H. and Aoyama, I. (2000) Factors affecting chemical biodegradation, Environmental Toxicology 15,476-483 https://doi.org/10.1002/1522-7278(2000)15:5<476::AID-TOX16>3.0.CO;2-Y
  12. Ide, A., Niki, Y., Sakamoto, F., Watanabe, I. and Watanabe, H. (1972) Decomposition of pentachlorophenol in paddy soil, Agr. Biol. Chem. 36, 1937-1944 https://doi.org/10.1271/bbb1961.36.1937
  13. Haggblom, M. H. and Milligan, P. W. (2001) Anaerobic biodegradation of halogenated pesticides Influence of alternate electron acceptors, In Jean-Marc Bollag and G. Stotzky (ed.) Soil Biochemistry, Vol.lO, Marcel DekkerInc., New York, USA, p.1-34
  14. Tor, J. M, Xu, C, Stucki, J. M, Wander, M M andSims, G. K.(2000) Trifluralin degradation under microbiologically induced nitrate and Fe(III) redudng conditions, Environ. Sci. Technol. 34, 3148-3152 https://doi.org/10.1021/es9912473

Cited by

  1. Characterization of humins from different natural sources and the effect on microbial reductive dechlorination of pentachlorophenol vol.131, 2015, https://doi.org/10.1016/j.chemosphere.2015.02.043
  2. Humin as an Electron Mediator for Microbial Reductive Dehalogenation vol.46, pp.12, 2012, https://doi.org/10.1021/es3002025
  3. Polyphasic characterization of a PCP-to-phenol dechlorinating microbial community enriched from paddy soil vol.381, pp.1-3, 2007, https://doi.org/10.1016/j.scitotenv.2007.03.021
  4. Anaerobic co-metabolic oxidation of 4-alkylphenols with medium-length or long alkyl chains by Thauera sp., strain R5 vol.75, pp.5, 2007, https://doi.org/10.1007/s00253-007-0918-8
  5. Shifts in indigenous microbial communities during the anaerobic degradation of pentachlorophenol in upland and paddy soils from southern China vol.23, pp.22, 2016, https://doi.org/10.1007/s11356-016-7562-8