Modelling and forecasting the heterogeneous distribution of picocyanobacteria in the tropical Lajes Reservoir (Brazil) by evolutionary computation
详细信息    查看全文
  • 作者:Friedrich Recknagel ; Christina W. Castelo Branco ; Hongqing Cao
  • 关键词:Spatial heterogeneity ; Picocyanobacteria ; Evolutionary computation
  • 刊名:Hydrobiologia
  • 出版年:2015
  • 出版时间:May 2015
  • 年:2015
  • 卷:749
  • 期:1
  • 页码:53-67
  • 全文大小:2,497 KB
  • 参考文献:1. APHA, 2005. Standard Methods for the Examination of Water and Wastewater, 21st ed. American Public Health Association, Washington, DC.
    2. Borics, G., A. Abonyi, E. Krasznai, G. Várbíró, I. Grigorszky, S. Szabó, C. Deák & B. Tóthmeresz, 2011. Small-scale patchiness of the phytoplankton in a lentic oxbow. Journal of Plankton Research 33(6): 973-81. CrossRef
    3. Brasil, 2011. Potable Water Ordinance No. 2.914 of the Brazilian Ministry of Health. Procedures for control and monitoring water quality for human consumption and potability standards (In Portuguese).
    4. Bláha, L. & B. Marsálek, 1999. Microcystin production and toxicity of picocyanobacteria as a risk for drinking water treatment plants. Algological Studies 92: 95-08.
    5. Branco, C. W. C., B. Kozlowsky-Suzuki, I. Sousa-Filho, A. W. S. Guarinol & R. J. Rocha, 2009. Impact of climate on the vertical water column structure of Lajes Reservoir (Brazil): a tropical reservoir case. Lakes & Reservoirs: Research and Management 14: 175-91. CrossRef
    6. Callieri, C., 2007. Picophytoplankton in freshwater ecosystems: the importance of small-sized phototrops. Freshwater Reviews 1: 1-8. CrossRef
    7. Callieri, C. & J. Stockner, 2000. Picocyanobacteria success in oligotrophic lakes: fact of fiction? Journal of Limnology 59(1): 72-6. CrossRef
    8. Callieri, C. & J. Stockner, 2002. Freshwater autotrophic picoplankton: a review. Journal of Limnology 61(1): 1-4. CrossRef
    9. Callieri, C., G. Cronberg & J. G. Stockner, 2012. Freshwater picocyanobacteria: single cells, microcolonies and colonial forms. In Whitton, B. H. & M. Potts (eds), Ecology of Cyanobacteria. Their Diversity in Time and Space. Kluwer Academic Publishers, Norwell, MA: 229-70.
    10. Camacho, A., M. R. Miracle & E. Vicente, 2003. Which factors determine the abundance and distribution of picocyanobacteria in inland waters? A comparison among different types of lakes and ponds. Archives of Hydrobiology 157(3): 321-38. CrossRef
    11. Cao, H., F. Recknagel & P. Orr, 2013. Enhanced functionality of the redesigned hybrid evolutionary algorithm HEA demonstrated by predictive modelling of algal growth in the Wivenhoe Reservoir, Queensland (Australia). Ecological Modelling 252: 32-3. CrossRef
    12. Chan, W. S., F. Recknagel, H. Cao & H.-D. Park, 2007. Elucidation and short-term forecasting of microcystin concentrations in Lake Suwa (Japan) by means of artificial neural networks and evolutionary algorithms. Water Research 41: 2247-255. CrossRef
    13. Delazari-Barroso, A., G. F. Barroso, W. L. M. Huszar & S. M. F. O. Azevedo, 2009. Physical regimes and nutrient limitation affecting phytoplankton growth in a meso-eutrophic water supply reservoir in southeast Brazil. Lakes & Reservoirs: Research and Management 14: 269-78. CrossRef
    14. Furtado, A. L. F. F., M. D. C. Calijuri, A. S. Lorenzi, R. Y. Honda, D. B. Genuario & M. F. Fiore, 2009. Morphological and molecular characterization of cyanobacteria from a Brazilian facultative wastewater stabilization pond and evaluation of microcystis production. Hydrobiologia 627: 195-09. CrossRef
    15. Gentil, R. C., A. Tuci & C. L. Sant’Anna, 2008. Dinamica da comunidade fitoplanct?nica e aspectos sanitários de um lago urbano eutrófico em S?o Paulo, SP. Hoehnea 35(2): 265-80. CrossRef
    16. Guarino, A. S., C. W. C. Branco, G. P. Diniz & R. Rocha, 2005. Limnological Studies in an Old Tropical Reservoir (Lajes Reservoir, RJ, Brazil). Acta Limnologica Brasiliensia 17: 129-41.
    17. Hickel, J. B. & U. Pollingher, 1988. Mass development of an iron precipitating cyanophyte ( / Cy
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Hydrobiology
    Ecology
  • 出版者:Springer Netherlands
  • ISSN:1573-5117
文摘
Five years of water quality data from six stations across the mesotrophic and oligomictic Lajes Reservoir (Brazil) were utilized to develop 7-day ahead forecasting models for the picocyanobacteria Cyanodictyon imperfectum, Cyanogranis ferruginea and Synechococcus sp. by means of the hybrid evolutionary algorithm HEA. The data included physical and chemical water quality parameters as well as abundance data of the three picocyanobacteria. Models based on site-specific data of?six monitoring stations forecasted population dynamics of Synechococcus with coefficients of determination (r 2) between 0.58 for and 0.88, of Cyanodictyon with r 2 between 0.5 and 0.89 and of Cyanogranis with r 2 between 0.53 and 0.77. Despite phosphorus limiting conditions the sensitivity analysis revealed that the three picocyanobacteria responded much stronger to nitrate rather than to phosphate concentrations throughout the Lajes Reservoir suggesting that cyanobacteria may have adopted the sulphur-for-phosphorus strategy by utilizing sulfolipids instead. Cyanogranis displayed a negative relationship with increasing water temperature indicating its higher competitiveness at internal nutrient supply and low light levels during winter turnover. The resulting models will inform operational intervention and prevention of fast growth and dispersal of picocyanobacteria in Lajes Reservoir, and reveal environmental thresholds for outbreaks of such events.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700