DOI QR코드

DOI QR Code

Characteristics of Cyanobacteria and Odorous Compounds Production in Lake Uiam and Lower Gonji Stream

의암호와 공지천 하류에서 남조류와 냄새물질의 발생 특징

  • Youn, Seok Jea (Han River Environment Research Center, National Institute of Environmental Research) ;
  • Im, Jong Kwon (Han River Environment Research Center, National Institute of Environmental Research) ;
  • Byeon, Myeong-Seop (Han River Environment Research Center, National Institute of Environmental Research) ;
  • Yu, Soon Ju (Han River Environment Research Center, National Institute of Environmental Research)
  • 윤석제 (국립환경과학원 한강물환경연구소) ;
  • 임종권 (국립환경과학원 한강물환경연구소) ;
  • 변명섭 (국립환경과학원 한강물환경연구소) ;
  • 유순주 (국립환경과학원 한강물환경연구소)
  • Received : 2018.11.26
  • Accepted : 2019.02.08
  • Published : 2019.03.30

Abstract

The objective of this study was to investigate the relationship between the biomass of cyanobacteria and the concentration of 2-methylisoborneol (2-MIB) in the lower Gongji stream. The investigation was done using a field study that was conducted from 2015 to 2017. The 2-MIB concentration in the lower Gongji stream ranged from 0 to 153 ng/L, while the upper stream had 0 2-MIB concentration. 3 genera (Oscillatoria, Phormidium, Pseudanabaena) of cyanobacteria were detected in the lower Gongji stream with 2-MIB concentration. Among these 3 genera, an increase in Phormidium, Pseudanabaena biomass was associated with an increase in 2-MIB concentration. Accordingly, Phormidium, Pseudanabaena were regarded as the biological source of 2-MIB in that area. In October 2017, although planktonic cyanobacteria occurred less frequently, many benthic cyanobacteria mats were observed on the surface of the water body. Therefore, the high 2-MIB concentration, which exceeded 110 ng/L, can likely be attributed to the benthic cyanobacteria. In a laboratory experiment, individual Oscillatoria filaments were aggregated to form a colony with a higher density. This colony tended to float on the water surface. Cyanobacteria mats after floating aggregated mats were distributed in a net shape on the bottom.

Keywords

SJBJB8_2019_v35n2_99_f0001.png 이미지

Fig. 1. Study area and sampling sites in Lake Uiam.

SJBJB8_2019_v35n2_99_f0002.png 이미지

Fig. 2. 2-MIB concentration in contrast with abundance of three genus (Oscillatoria, Phormidium, Pseudanabaena)cyanobacteria at U8 site between 2015 and 2017(different scale).

SJBJB8_2019_v35n2_99_f0003.png 이미지

Fig. 3. Observed spots of cyanobacteria mats at Gonggi stream (left) and close-up photo of floating mats (right).

SJBJB8_2019_v35n2_99_f0004.png 이미지

Fig. 4. Aggregation, floating (a) and re-aggregation (b) of Oscillatoria in a glass tank (30 × 30 × 30) of BG11 medium under room temperature (25 °C) and light condition (L:D=16:8).

Table 1. Pearson’s correlation coefficients between the abundance of three genus cyanobacteria and 2-MIB concentration at U8 site

SJBJB8_2019_v35n2_99_t0001.png 이미지

Table 2. Comparison of 2-MIB concentration at lake (6 sites) and stream (3 sites) in October, 2017

SJBJB8_2019_v35n2_99_t0002.png 이미지

References

  1. Biddanda, B. A., McMillan, A. C., Long, S. A., Snider, M. J., and Weinke, A. D. (2015). Seeking sunlight: rapid phototactic motility of filamentous mat-forming cyanobacteria optimize photosynthesis and enhance carbon burial in lake Huron's submerged sinkholes, Frontiers in Microbiology, 6, 930. https://doi.org/10.3389/fmicb.2015.00930
  2. Bowmer, K. H., Padovan, A., Oliver, R. L., Korth, W., and Ganf, G. G. (1992). Physiology of geosmin production by Anabaena circinalis isolated from the Murrumbidgee river, Australia, Water Science and Technology, 25(2), 259-267. https://doi.org/10.2166/wst.1992.0060
  3. Chen, Y. M., Hobson, P., Burch, M. D., and Lin, T. F. (2010). In situ measurement of odor compound production by benthic cyanobacteria, Journal of Environmental Monitoring, 12(1), 769-755. https://doi.org/10.1039/b918487b
  4. Dunlap, C. R., Sklenar, K. S., and Blake, L. J. (2015). A costly endeavor: addressing algae problems in a water supply, Journal American Water Works Association, 107(5), 255-262. https://doi.org/10.5942/jawwa.2015.107.0055
  5. Hirose, H. M., Akiyama, T., Imahori, K., Kasaki, H., Kumano, S., Kobayasi, H., Tajahashi, E., Tsumura, T., Hirano, M., and Yamagishi, T. (1977). Illustrations of the Japanese freshwater algae, Uchidarokakuho Publishing Co., Ltd., Tokyo, Japan.
  6. Hoiczyk, E. (2000). Gliding motility in cyanobacteria: observations and possible explanations, Archives of Microbiology, 174(1), 11-17. https://doi.org/10.1007/s002030000187
  7. Hosaka, M., Murata, K., Iikura, Y., Oshimi, A., and Udagawa, T. (1995). Off-flavor problem in drinking water of Tokyo arising from the occurrence of musty odor in a downstream tributary, Water Science and Technology, 31(11), 29-34. https://doi.org/10.1016/0273-1223(95)00452-S
  8. Hosaka, M. and Otsuhata, M. (1988). Isolation of 2-methylisoborneol producing two species and geosmin producing one species of attached blue-green algae from Saka river, Japanese Journal of Water Treatment Biology, 24(2), 1-11. https://doi.org/10.2521/jswtb.24.2_1
  9. Ishida, H. and Miyaji, Y. (1992). Biodegradation of 2-methylisoborneol by oligotrophic bacterium isolated from a eutrophied lake, Water Science and Technology, 25(2), 269-276. https://doi.org/10.2166/wst.1992.0061
  10. Izaguirre, G. and Taylor, W. D. (1995). Geosmin and 2-methylisoborneol production in a Major Aqueduct System, Water Science and Technology, 31(11), 41-48. https://doi.org/10.1016/0273-1223(95)00454-U
  11. Izaguirre, G. and Taylor, W. D. (1998). A Pseudanabaena species from Castaic lake, California, that produces 2-methylisoborneol, Water Research, 32(5), 1673-1677. https://doi.org/10.1016/S0043-1354(97)00379-5
  12. Izaguirre, G. and Taylor, W. D. (2007). Geosmin and MIB events in a new reservoir in Southern California, Water Science and Technology, 55(5), 9-14. https://doi.org/10.2166/wst.2007.156
  13. John, D. M., Whittonand, B. A., and Brook, A. J. (2002). The freshwater algal flora of the British lsles, Cambridge University Press, Cambridge, UK.
  14. Kim, J., Kim, G., Yun, C., Park, H., Jung, E., Cha, D., Choi, J., and Son, H. J. (2013). A study on the correlation between odorous compounds, Actinomycetes and algae in drinking water source of Nakdong river, Journal of Korean Society of Environmental Engineers, 35(3), 213-219. [Korean Literature] https://doi.org/10.4491/KSEE.2013.35.3.213
  15. Kim, Y. J., Youn, S. J., Kim, H. N., Hwang, M. Y., Park, J. R., Lee, B. C., and Lee, J. K. (2015). Formation of phytoplankton community and occurrences of odorous compounds for sediment incubation by water temperature, Journal of Korean Society on Water Environment, 31(5), 460-467. [Korean Literature] https://doi.org/10.15681/KSWE.2015.31.5.460
  16. Kim, Y. J., Youn, S. J., Kim, H. N., Park, E. R., Hwang, M. Y., Park, J. R., Lee, B. C., and Lee, J. K. (2014). Formation of phytoplankton community and occurences of odorous compounds by sediment iIncubation, Journal of Korean Society on Water Environment, 30(6), 658-664. [Korean Literature] https://doi.org/10.15681/KSWE.2014.30.6.658
  17. Klausen, C., Nicolaisen, M. H., Strobel, B. W., Warnecke, F., Nielsen, J. L., and Jorgensen, N. O. (2005). Abundance of actinobacteria and production of geosmin and 2-methylisoborneol in Danish streams and fish ponds, FEMS Microbiology Ecology, 52(2), 265-278. https://doi.org/10.1016/j.femsec.2004.11.015
  18. Lee, G. H. (2005). Study of primary production prediction and control for water quality management in lake Euiam, Ph. D. Thesis, Kangwon National University. [Korean Literature]
  19. Lee, J., Rai, P. K., Jeon, Y. J., Kim, K. H., and Kwon, E. E. (2017). The role of algae and cyanobacteria in the production and release of odorants in water, Environmental Pollution, 227, 252-262. https://doi.org/10.1016/j.envpol.2017.04.058
  20. Lee, S. J., Lim, B. C., Lee, G. H., Jeong, W. G., Hur, B. N., and Hur, I. R. (2016). Long term monitoring for the control of cyanobacterial blooms in lake Uiam, Journal Korean Society for Environmental Analysis, 19(2), 109-118. [Korean Literature]
  21. Ministry of Environment (ME). (2015). Drinking water quality monitoring guideline, Ministry of Environment. [Korean Literature]
  22. Paerl, H. W. and Millie, D. F. (1996). Physiological ecology of toxic aquatic cyanobacteria, Phycologia, 35(6), 160-167. https://doi.org/10.2216/i0031-8884-35-6S-160.1
  23. Pentecost, A. (1984). Effects of sedimentation and light intensity on mat-forming oscillatoviaceae with particular reference to microcoleus iyngbyaceus Gomont, Journal of General Microbiology, 130, 983-990.
  24. Persson, F., Heinicke, G., Hedberg, T., Hermansson, M., and Uhl, W. (2007). Removal of geosmin and MIB by biofiltration - An investigation discriminating between adsorption and biodegradation, Environmental Technology, 28(1), 95-104. https://doi.org/10.1080/09593332808618770
  25. Sabater, S., Vilalta, E., Gaudes, A., Guasch H., Munoz, I., and Romani, A. (2003). Ecological implications of mass growth of benthic cyanobacteria in rivers, Aquatic Microbial Ecology, 32(2), 175-184. https://doi.org/10.3354/ame032175
  26. Smith, V. H., Sieber-Denlinger, J., deNoyelles, F., Campbell, S., Pan, S., Randtke, S. J., Blain, G. T., and Strasser, V. A. (2002). Managing taste and odor problems in a eutrophic drinking water reservoir, Lake and Reservoir Management, 18(4), 319-324. https://doi.org/10.1080/07438140209353938
  27. Sugiura, N., Yagi, O., and Sudo, R. (1986). Musty odor from blue-green alga, Phormidium tenue in lake Kasumigaura, Environmental Technology, 7, 77-86. https://doi.org/10.1080/09593338609384393
  28. You, K. A., Byeon, M. S., Youn, S. J., Hwang, S. J., and Rhew, D. H. (2013). Growth characteristics of blue-green algae (Anabaena spiroides) causing tastes and odors in the North-Han river, Korea, Korean Journal of Ecology and Environment, 46(1), 135-144. [Korean Literature] https://doi.org/10.11614/KSL.2013.46.1.135
  29. Youn, S. J., Kim, Y. J., Kim, H. N., Kim, J. Y., Yu, M. N., Lee, E. J., and Yu, S. J. (2018). Geosmin and morphological characteristics of anabaena circinalis, obtained from the Bukhan river, Journal of Environmental Science International, 27(1), 27-38. [Korean Literature] https://doi.org/10.5322/JESI.2018.27.1.27
  30. Yuan, B., Xu, D., Li, F., and Fu, M. (2013). Removal efficiency and possible pathway of odor compounds (2-methylisoborneol and geosmin) by ozonation, Separation and Purification Technology, 117, 53-58. https://doi.org/10.1016/j.seppur.2013.04.029
  31. Wang, Z. and Li, R. (2015). Effects of light and temperature on the odor production of 2-methylisoborneol-producing Pseudanabaena sp. and geosmin-producing Anabaena ucrainica (cyanobacteria), Biochemical Systematics and Ecology, 58, 219-226. https://doi.org/10.1016/j.bse.2014.12.013
  32. Watson, S. B. (2003). Cyanobacteria and eukaryotic algal odour compounds: Signals or by-products? A review of their biological activity, Phycologia, 42(4), 332-350. https://doi.org/10.2216/i0031-8884-42-4-332.1
  33. Watson, S. B. (2004). Aquatic taste and odor: A primary signal of drinking-water integrity, Journal of Toxicology and Environmental Health, 67, 1779-1795. https://doi.org/10.1080/15287390490492377
  34. Watson, S. B., Ridal, J., Zaitlin, B., and Lo, A. (2003). Odours from pulp mill effluent treatment ponds: the origin of significant levels of geosmin and 2-methylisoborneol (MIB), Chemosphere, 51(8), 765-773. https://doi.org/10.1016/S0045-6535(03)00030-4