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Control of Microalgal Growth and Competition by N: P Ratio Manipulation

N: P ratio 조절에 의한 미세조류 생장과 경쟁 제어

  • Ahn, Chi-Yong (Environmental Biotechnology Research Center, Korea Research Institute of Bioscience and Biotechnology) ;
  • Lee, Jae-Yon (Environmental Biotechnology Research Center, Korea Research Institute of Bioscience and Biotechnology) ;
  • Oh, Hee-Mock (Environmental Biotechnology Research Center, Korea Research Institute of Bioscience and Biotechnology)
  • 안치용 (한국생명공학연구원 환경바이오연구센터) ;
  • 이재연 (한국생명공학연구원 환경바이오연구센터) ;
  • 오희목 (한국생명공학연구원 환경바이오연구센터)
  • Received : 2013.04.24
  • Accepted : 2013.05.27
  • Published : 2013.06.30

Abstract

Microalgae can grow autotrophically with the supply of light, carbon dioxide and inorganic nutrients in water through photosynthesis. Generally, microalgal growth is limited by the concentrations and relative ratio of nitrogen (N) and phosphorus (P) among the nutrients in the aquatic environment. Each microalga has its specific optimum N : P ratio resulting in dominance in a particular water having similar nutrient composition. Algal bloom is an immense growth of certain microalga commonly cyanobacterium and can be sequestrated by reducing the limiting nutrient, generally P in the freshwater. Moreover, dominance of a less toxic blooming strain can be established by manipulating N : P ratio in the water. On the other hand, microalgal biomass of a certain species can be enhanced by increasing limiting nutrient and adjusting the N : P ratio to the target species. The above-mentioned eco-physiological features of microalgae can be more completely interpreted in connection with their genomic informations. Consequently, microalgal growth regulation which can be achieved on the basis of its eco-physiological and further genomic insights would be helpful not only in the control of algal bloom, but also for an increased yield of algal biomass.

Keywords

References

  1. Ahn C-Y, A-S Chung and H-M Oh. 2002. Diel rhythm of algal phosphate uptake rates in P-limited cyclostats and simulation of its effect on growth and competition. J. Phycol. 38: 695-704. https://doi.org/10.1046/j.1529-8817.2002.01232.x
  2. Conley DJ, HW Paerl, RW Howarth, DF Boesch, SP Seitzinger, KE Havens, C Lancelot and G Likens. 2009. Controlling eutrophication: Nitrogen and phosphorus. Science 323:1014- 1015. https://doi.org/10.1126/science.1167755
  3. Holdren C, W Jones and J Taggart. 2001. Managing Lakes and Reservoirs. N. Am. Lake Manage. Soc. and Terrene Inst., in coop. with Off. Water Assess. Watershed Prot. Div. U.S. Environ. Prot. Agency, Madison, WI.
  4. Hutchinson GE 1961. The paradox of the plankton. Am. Nat. 95:137-145. https://doi.org/10.1086/282171
  5. Lundquist T. 2009. Interdisciplinary algae production research. The 3rd Algae Biomass Summit (ABS 2009). Oct. 6-9, 2009. San Diego, USA.
  6. Oh H-M. 2011. Status and prospect of biofuel R&D for microalgae biomass. News Inform. Chem. Eng. 29:355-360.
  7. Oh H-M and G-Y Rhee. 1991. A comparative study of microalgae isolated from flooded rice paddies: light-limited growth, C fixation, growth efficiency and relative N and P requirement. J. Appl. Phycol. 3:211-220. https://doi.org/10.1007/BF00003579
  8. Pate R, G Klise and B Wu. 2011. Resource demand implications for U.S. algae biofuels production scale-up. Appl. Energ. 88:3377-3388. https://doi.org/10.1016/j.apenergy.2011.04.023
  9. Redfield AC. 1934. On the proportions of organic derivations in sea water and their relation to the composition of plankton. pp. 177-192. In James Johnstone Memorial Volume (Daniel RJ ed.). University Press of Liverpool.
  10. Redfield AC. 1958. The biological control of chemical factors in the environment. Am. Sci. 46:205-221.
  11. Rhee G-Y. 1978. Effects of N : P atomic ratios and nitrate limitation on algal growth, cell composition and nitrate uptake. Limnol. Oceanogr. 23:10-25. https://doi.org/10.4319/lo.1978.23.1.0010
  12. Rhee G-Y and IJ Gotham. 1980. Optimum N : P ratios and coexistence of planktonic algae. J. Phycol. 16:486-489. https://doi.org/10.1111/j.1529-8817.1980.tb03065.x
  13. Richardson B, DM Orcutt, HA Schwertner, CL Martinez and HE Wickline. 1969. Effects of nitrogen limitation on the growth and composition of unicellular algae in continuous culture. Appl. Microbiol. 18:245-250.
  14. Sardans J, A Rivas-Ubach and J Penuelas. 2012. The elemental stoichiometry of aquatic and terrestrial ecosystems and its relationships with organismic lifestyle and ecosystem structure and function: a review and perspectives. Biogeochemistry 111:1-39. https://doi.org/10.1007/s10533-011-9640-9
  15. Schindler DW. 1974. Eutrophication and recovery in experimental lakes: Implications for lake management. Science 184:897-899. https://doi.org/10.1126/science.184.4139.897
  16. Schindler DW. 2012. The dilemma of controlling cultural eutrophication of lakes. Proc. R. Soc. B: 279:4322-4333.
  17. Schindler DW, RE Hecky, DL Findlay, MP Stainton, BR Parker, MJ Paterson, KG Beaty, M Lyng and SEM Kasian. 2008. Eutrophication of lakes cannot be controlled by reducing nitrogen input: Results of a 37-year whole-ecosystem experiment. Proc. Nat. Acad. Sci. 105:11254-11258. https://doi.org/10.1073/pnas.0805108105
  18. Schopf JW. 2000. The fossil record: Tracing the roots of the cyanobacterial lineage. pp. 13-35. In The Ecology of Cyanobacteria (Whitton BA and M Potts eds.). Kluwer Academic Publishers, Dordrecht, The netherlands.
  19. Smith VH. 1982. The nitrogen and phosphorus dependence of algal biomass in lakes: An empirical and theoretical analysis. Limnol. Oceanogr. 27:1101-1112. https://doi.org/10.4319/lo.1982.27.6.1101
  20. Smith VH and DW Schindler. 2009. Eutrophication science: Where do we go from here? Trends Ecol. Evol. 24:201-207. https://doi.org/10.1016/j.tree.2008.11.009
  21. Smith VH, BSM Sturm, FJ deNoyelles and SA Billings. 2010. The ecology of algal biodiesel production. Trends Ecol. Evol. 25:301-309. https://doi.org/10.1016/j.tree.2009.11.007
  22. Sze P. 1998. A Biology of the Algae. WCB/McGraw-Hill, Boston.
  23. Tilman D. 1982. Resource Competition and Community Structure. Princeton University Press, Princeton, 296 pp.
  24. Vallentyne JR 1974. The algal bowl: lakes and man. Misc. spec. publ. 22. Dep. Environ. Fish. Res. Board Ca., Ottawa.
  25. Woertz I, L Fulton and T Lundquist. 2009. Nutrient removal and greenhouse gas abatement with $CO_{2}$supplemented Algal High Rate Ponds. Water Environment Federation, October 12-14, 2009, Orlando, Florida.
  26. Yang J, M Xu, X Zhang, Q Hu, M Sommerfeld and Y Chen. 2011. Life-cycle analysis on biodiesel production from microalgae: Water footprint and nutrients balance. Bioresour. Technol. 102:159-165. https://doi.org/10.1016/j.biortech.2010.07.017