Dominance of Endospore-forming Bacteria on a Rotating Activated Bacillus Contactor Biofilm for Advanced Wastewater Treatment

  • 발행 : 2007.04.30

초록

The bacterial diversity inherent to the biofilm community structure of a modified rotating biological contactor wastewater treatment process, referred to as the Rotating Activated Bacillus Contactor (RABC) process, was characterized in this study, via both culture-dependent and culture-independent methods. On the basis of culture-dependent methods, Bacillus sp. were found to exist in large numbers on the biofilm (6.5% of the heterotrophic bacteria) and the microbial composition of the biofilms was quite simple. Only three phyla were identified-namely, the Proteobacteria, the Actinobacteria (High G+C Gram-positive bacteria), and the Firmicutes (Low G+C Gram-positive bacteria). The culture-independent partial 16S rDNA sequence analysis revealed a considerably more diverse microbial composition within the biofilms. A total of eight phyla were recovered in this case, three of which were major groups: the Firmicutes (43.9%), the Proteobacteria (28.6%), and the Bacteroidetes (17.6%). The remaining five phyla were minor groups: the Planctomycetes (4.4%), the Chlorobi (2.2%), the Actinobacteria (1.1%), the Nitrospirae (1.1%), and the Verrucomicrobia (1.1%). The two most abundant genera detected were the endospore-forming bacteria (31.8%), Clostridium and Bacillus, both of which are members of the Firmicutes phylum. This finding indicates that these endospore-forming bacteria successfully colonized and dominated the RABC process biofilms. Many of the colonies or clones recovered from the biofilms evidenced significantly high homology in the 16S rDNA sequences of bacteria stored in databases associated with advanced wastewater treatment capabilities, including nitrification and denitrification, phosphorus accumulation, the removal of volatile odors, and the removal of chlorohydrocarbons or heavy metals. The microbial community structures observed in the biofilms were found to correlate nicely with the enhanced performance of advanced wastewater treatment protocols.

키워드

참고문헌

  1. Atlas, R.M. 1997. Handbook of microbiological media, 2nd (ed.), p. 1467. CRC Press, Boca Raton
  2. Bitton, G. 1999. Wastewater microbiology, 2nd (ed.), p. 187. Wiley-Liss, New York, USA
  3. Cho, S.J., J.H. Park, S.J. Park, E.H. Kim, Y.J. Cho, and K.S. Shin. 2003. Purification and characterization of extracellular temperature- stable serine protease of Aeromonas hydrophila. J. Microbiol. 41, 95-98
  4. Egli, K., F. Bosshard, C. Werlen, P. Lais, H. Siegrist, A.J.B. Zehnder, and J.R. van der Meer. 2003. Microbial composition and structure of a rotating biological contactor biofilm treating ammonium-rich wastewater without organic carbon. Microbiol. Ecol. 45, 419-432 https://doi.org/10.1007/s00248-002-2037-5
  5. Ellis, R.J., P. Morgan, A.J. Weightman, and J.C. Fry. 2003. Cultivation-dependent and -independent approaches for determining bacterial diversity in heavy-metal-contaminated soil. Appl. Environ. Microbiol. 69, 3223-3230 https://doi.org/10.1128/AEM.69.6.3223-3230.2003
  6. Herbert, R.A. 1990. Methods of enumerating microorganisms and determining biomass in natural environment, p. 1-39. In R. Grigorova (ed.), Methods in microbiology, vol. 22. Academic Press, London, UK
  7. Kaiser, O., A. Puhler, and W. Selbitschka. 2001. The phylogenic analysis of microbial diversity in the rhizosphere of oilseed rape (Brassica napus cv. Westar) employing cultivation-dependent and cultivation-independent approaches. Microb. Ecol. 42, 136-149
  8. Kim, E.H., Y.J. Cho, S.J. Park, KS. Shin, S.B. Yim, and J.K. Jung. 2004. Advanced wastewater treatment process using Rotating Activated Bacillus Contactor (RABC). J. Kor. Soc. Wat. Qual. 20, 190-195
  9. Lane, D.J. 1991. 16S/23S rRNA sequencing, p. 115-175. In E. Stackebrandt and M. Goodfellow (eds.), Nucleic acid techniques in bacterial systematics. John Wiley and Sons, New York, N.Y., USA
  10. Lee, D.G. and S.J. Kim. 2003. Bacterial species in biofilm cultivated from the end of the Seoul water distribution system. J. Appl. Microbiol. 95, 317-324 https://doi.org/10.1046/j.1365-2672.2003.01978.x
  11. Lee, D.H., Y.G. Zo, and S.J. Kim. 1996. Nonradioactive method to study genetic profiles of natural bacterial communities by PCR-single-strand-conformation polymorphism. Appl. Environ. Microbiol. 62, 3112-3120
  12. McBain, A.J., R.G. Bartolo, C.E. Catrenich, D. Charbonneau, R.G. Ledder, A.H. Rickard, S.A. Symmons, and P. Gilbert. 2003. Microbial characterization of biofilms in domestic drains and the establishment of stable biofilm microcosms. Appl. Environ. Microbiol. 69, 177-185 https://doi.org/10.1128/AEM.69.1.177-185.2003
  13. Murakami, K., Y. Doi, M. Aoki, and R. Iriye. 1995. Dominant growth of Bacillus spp. in the aerobic nightsoil digestion tanks and their biochemical characteristics. J. Wat. Env. 18, 97-108
  14. Page, R.D.M. 1996. Treeview: An application to display phylogenetic trees on personal computers. Comput. Appl. Biosci. 12, 357-358
  15. Park, I.J., J.C. Yoon, S.J. Park, E.H. Kim, Y.J. Cho, and K.S. Shin. 2003. Characterization of the proteolytic bacteria isolated from a rotating biological contactor. J. Microbiol. 41, 73-77
  16. Priest, F.G. 1993. Systematics and ecology of Bacillus, p. 3-16. In A.L. Sonenshein, J.A. Hoch, and R. Losick (eds.), Bacillus subtilis and other Gram-positive bacteria. American Society for Microbiology, Washinton D.C., USA
  17. Pynaert, K., B.F. Smets, S. Wyffels, and D. Beheydt. 2003. Characterization of an autotrophic nitrogen-removing biofilm from a highly loaded lab-scale rotating biological contactor. Appl. Environ. Microbiol. 69, 3626-3635 https://doi.org/10.1128/AEM.69.6.3626-3635.2003
  18. Sandaa, R.A., V. Torsvik, and O. Enger. 2001. Influence of longterm heavy-metal contamination on microbial communities in soil. Soil Biol. Biochem. 33, 287-295 https://doi.org/10.1016/S0038-0717(00)00139-5
  19. Smibert, R.M. and N.R. Krieg. 1994. Phenotypic characterization, p. 607-654. In P. Gerhardt, R.G.E. Murray, W.A. Wood, and N.R. Krieg. (eds.), Methods for general and molecular bacteriology. American Society for Microbiology, Washington, D.C., USA
  20. Stackebrandt, E., W. Liesack, and B.M. Goebel. 1993. Bacterial diversity in a soil sample from a subtropical Australian environment at determined by 16S rDNA analysis. FASEB J. 7, 232-236 https://doi.org/10.1096/fasebj.7.1.8422969
  21. Thompson, J.D., T.J. Gibson, F. Plewniak, F. Jeanmougin, and D.G. Higgins. 1997. The CLUSTALX windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. Nucleic Acids Res. 24, 4876-4882