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Advances in the aquatic sciences
RESEARCH ARTICLE

Morphofunctional changes to the phytoplankton community in tropical ecosystems during the El Niño event of 2015–16

F. H. P. C. de Oliveira A C , A. N. Moura A and Ê. W. Dantas A B
+ Author Affiliations
- Author Affiliations

A Botany Department, Universidade Federal Rural de Pernambuco, 52171-900, Recife, Pernambuco, Brazil.

B Centro de Ciências Biológicas e da Saúde, Biology Departament, Universidade Estadual da Paraíba, 58070-450, João Pessoa, Paraíba, Brazil.

C Corresponding author. Email: fportella@gmail.com

Marine and Freshwater Research 70(11) 1576-1584 https://doi.org/10.1071/MF19080
Submitted: 9 March 2019  Accepted: 29 April 2019   Published: 30 July 2019

Abstract

This study reports the effects of the El Niño event of 2015–16 on abiotic and biotic variables in tropical reservoirs in semi-arid and wet regions. Samples were collected in control years (2014) and during the El Niño event (2015–16). Phytoplankton was identified and its biomass quantified. Physicochemical and climatic variables were evaluated. Canonical analyses were performed to determine the effects of abiotic variables on phytoplankton. In semi-arid ecosystems, there was a decrease in diversity during the El Niño event, as well as an increase in the relative biomass of centric diatoms and a decrease in filamentous cyanobacteria. In wet ecosystems, changes in the community were not observed during the El Niño event. The synergistic contribution between physiochemical and climatic variables was most pronounced during the El Niño event in all ecosystems. Filamentous cyanobacteria were associated with the control year and favoured by higher pH values and sulfate concentrations. Centric diatoms were related to higher air temperatures and lower sulfate concentrations during the El Niño event. El Niño caused morphofunctional modifications to the phytoplankton in a distinct way in semi-arid and wet ecosystems. We show that in semi-arid reservoirs the El Niño event decreased the relative biomass of filamentous cyanobacteria and favoured central diatoms because of changes to sulfate concentrations.

Additional keywords: climate changes, functional groups, microalgae, synergism of environmental variables.


References

Alvares, C. A., Stape, J. L., Sentelhas, P. C., Gonçalves, J. L. M., and Sparovek, G. (2013). Köppen’s climate classification map for Brazil. Meteorologische Zeitschrift 22, 711–728.
Köppen’s climate classification map for Brazil.Crossref | GoogleScholarGoogle Scholar |

American Public Health Association (2012). ‘Standard Methods for the Examination of Water and Wastewater.’ 22nd edn. (APHA, American Water Works Association and Water Pollution Control Federation: Washington DC, USA.)

Bakker, E. S., and Hilt, S. (2016). Impact of water-level fluctuations on cyanobacterial blooms: options for management. Aquatic Ecology 50, 485–498.
Impact of water-level fluctuations on cyanobacterial blooms: options for management.Crossref | GoogleScholarGoogle Scholar |

Bouvy, M., Falcão, D., Marinho, M., Pagano, M., and Moura, A. (2000). Occurrence of Cylindrospermopsis (Cyanobacteria) in 39 Brazilian tropical reservoirs during the 1998 drought. Aquatic Microbial Ecology 23, 13–27.
Occurrence of Cylindrospermopsis (Cyanobacteria) in 39 Brazilian tropical reservoirs during the 1998 drought.Crossref | GoogleScholarGoogle Scholar |

Bouvy, M., Nascimento, S. M., Molica, R. J. R., Ferreira, A., Huszar, V., and Azevedo, S. M. F. O. (2003). Limnological features in Tapacurá reservoir (northeast Brazil) during a severe drought. Hydrobiologia 493, 115–130.
Limnological features in Tapacurá reservoir (northeast Brazil) during a severe drought.Crossref | GoogleScholarGoogle Scholar |

Cunha, D. G. F., Calijuri, M. C., and Lamparelli, M. C. A. (2013). Trophic state index for tropical/subtropical reservoirs (TSItsr). Ecological Engineering 60, 126–134.
Trophic state index for tropical/subtropical reservoirs (TSItsr).Crossref | GoogleScholarGoogle Scholar |

Dai, Y., Wu, J., Ma, X., Zhing, F., Cui, N., and Cheng, S. (2017). Increasing phytoplankton-available phosphorus and inhibition of macrophyte on phytoplankton bloom. The Science of the Total Environment 579, 871–880.
Increasing phytoplankton-available phosphorus and inhibition of macrophyte on phytoplankton bloom.Crossref | GoogleScholarGoogle Scholar | 27884524PubMed |

Dunker, S., Nadrowski, K., Jakob, T., Kasprzak, P., Becker, A., Langner, U., Kunath, C., Harpole, S., and Wilhelm, C. (2016). Assessing in situ dominance pattern of phytoplankton classes by dominance analysis as a proxy for realized niches. Harmful Algae 58, 74–84.
Assessing in situ dominance pattern of phytoplankton classes by dominance analysis as a proxy for realized niches.Crossref | GoogleScholarGoogle Scholar | 28073461PubMed |

Fanesi, A., Wagner, H., Becker, A., and Wilhelm, C. (2016). Temperature affects the partitioning of absorbed light energy in freshwater phytoplankton. Freshwater Biology 61, 1365–1378.
Temperature affects the partitioning of absorbed light energy in freshwater phytoplankton.Crossref | GoogleScholarGoogle Scholar |

Hayes, N. M., Vanni, M. J., Horgan, M. J., and Renwick, W. H. (2015). Climate and land use interactively affect lake phytoplankton nutrient limitation status. Ecology 96, 392–402.
Climate and land use interactively affect lake phytoplankton nutrient limitation status.Crossref | GoogleScholarGoogle Scholar | 26240861PubMed |

Hillebrand, H., Dürselen, C., Kirschtel, D., Pollingher, U., and Zohary, T. (1999). Biovolume calculation for pelagic and benthic microalgae. Journal of Phycology 35, 403–424.
Biovolume calculation for pelagic and benthic microalgae.Crossref | GoogleScholarGoogle Scholar |

Hoell, A., Funk, C., Zinke, J., and Harrison, L. (2017). Modulation of the Southern Africa precipitation response to the El Niño Southern Oscillation by the subtropical Indian Ocean Dipole. Climate Dynamics 48, 2529–2540.
Modulation of the Southern Africa precipitation response to the El Niño Southern Oscillation by the subtropical Indian Ocean Dipole.Crossref | GoogleScholarGoogle Scholar |

Hu, S., and Fedorov, A. V. (2016). Exceptionally strong easterly wind burst stalling El Niño of 2014. Proceedings of the National Academy of Sciences of the United States of America 113, 2005–2010.
Exceptionally strong easterly wind burst stalling El Niño of 2014.Crossref | GoogleScholarGoogle Scholar | 26858437PubMed |

Izaguirre, I., Saad, J. F., Schiaffino, M. R., Vinocur, A., Tell, G., Sánchez, M. L., Allende, L., and Sinistro, R. (2016). Comparison of morpho-functional phytoplankton classifications in human-impacted shallow lakes with different stable states. Hydrobiologia 764, 157–170.
Comparison of morpho-functional phytoplankton classifications in human-impacted shallow lakes with different stable states.Crossref | GoogleScholarGoogle Scholar |

John, D. M., Whitton, B. A., and Brook, A. J. (2002). ‘The Freshwater Algal Flora of the British Isles.’ (Cambridge University Press: Cambridge, UK.)

Khan, S. J., Deere, D., Leusch, F. D. L., Humpage, A., Jenkins, M., and Cunliffe, D. (2015). Extreme weather events: should drinking water quality management systems adapt to changing risk profiles? Water Research 85, 124–136.
Extreme weather events: should drinking water quality management systems adapt to changing risk profiles?Crossref | GoogleScholarGoogle Scholar | 26311274PubMed |

Komárek, J., and Anagnostidis, K. (1989). Modern approach to the classification system of Cyanophytes 4: Nostocales. Algological Studies 56, 247–345.

Komárek, J., and Anagnostidis, K. (1999). Suesswasserflora von Mitteleuropa: Cyanoprokayota 1. In ‘Chroococcales’. (Eds H. Ettl, G. Gartner, H. Heyning, and D. Molllenhauer.) pp. 1–548. (Gustav Fischer: Stuttgart, Germany.)

Komárek, J., and Anagnostidis, K. (2005). Subwasserflora von Mitteleuropa: Cyanoprokayota 2. In ‘Oscillatoriales.’ (Eds B. Bridel, L. Krienitz, G. Gartner, and M. Schargerl.) pp. 1–759. (Elsevier GmbH: München, Germany.)

Komárek, J., and Cronberg, G. (2001). Some chroococcalean and oscilatorialen cyanoprokaryotes from southern African lakes, ponds and pools. Nova Hedwigia 73, 129–160.

Komárek, J., and Fott, B. (1983). ‘Chlorophyceae: Chlorococcales.’ (Begründent von August Thienemann: Stuttgart, Germany.)

Krammer, K., and Lange-Bertalot, H. (1991a). ‘Bacillariophyceae, 3. Teil: Centrales, Fragilariaceae, Eunotiaceae.’ (Semper Bonis Artibus: Stuttgart, Germany.)

Krammer, K., and Lange-Bertalot, H. (1991b). ‘Bacillariophyceae, 4. Teil: A Achananthaceae, Kritische Ergänzungen zu Navicula (Lineolatae) and Gomphonema Gesamthitraturverzeichnis Teil 1–4.’ (Semper Bonis Artibus: Stuttgart, Germany.)

Kruk, C., Huszar, V. L. M., Peeters, E. T. H. M., Bonilla, S., Costa, L., and Lürling, M. (2010). A morphological classification capturing functional variation in phytoplankton. Freshwater Biology 55, 614–627.
A morphological classification capturing functional variation in phytoplankton.Crossref | GoogleScholarGoogle Scholar |

Levine, A. F. Z., and Mcphaen, M. J. (2016). How the July 2014 easterly wind burst gave the 2015–2016 El Niño a head start. Geophysical Research Letters 43, 6503–6510.
How the July 2014 easterly wind burst gave the 2015–2016 El Niño a head start.Crossref | GoogleScholarGoogle Scholar |

Medeiros, L. C., Mattos, A., Lürling, M., and Becker, V. (2015). Is the future blue–green or brown? The effects of extreme events on phytoplankton dynamics in a semi-arid man-made lake. Aquatic Ecology 49, 293–307.
Is the future blue–green or brown? The effects of extreme events on phytoplankton dynamics in a semi-arid man-made lake.Crossref | GoogleScholarGoogle Scholar |

Mosley, L. M. (2015). Drought impacts on the water quality of freshwater systems; review and integration. Earth-Science Reviews 140, 203–214.
Drought impacts on the water quality of freshwater systems; review and integration.Crossref | GoogleScholarGoogle Scholar |

Padisák, J., Borics, G., Grigorszky, I., and Soróczki-Pintér, E. (2006). Use of phytoplankton assemblages for monitoring ecological status of lakes within the Water Framework Directive: the assemblage index. Hydrobiologia 553, 1–14.
Use of phytoplankton assemblages for monitoring ecological status of lakes within the Water Framework Directive: the assemblage index.Crossref | GoogleScholarGoogle Scholar |

Paek, H., Yu, J., and Qian, C. (2017). Why were the 2015/2016 and 1997/1998 extreme El Niños different. Geophysical Research Letters 44, 1848–1856.
Why were the 2015/2016 and 1997/1998 extreme El Niños different.Crossref | GoogleScholarGoogle Scholar |

Paerl, H. W., Gardner, W. S., Havens, K. E., Joyner, A. R., Mccarthy, M. J., Newell, S. E., Qin, B., and Scott, J. T. (2016). Mitigating cyanobacterial harmful algal blooms in aquatic ecosystems impacted by climate change and anthropogenic nutrients. Harmful Algae 54, 213–222.
Mitigating cyanobacterial harmful algal blooms in aquatic ecosystems impacted by climate change and anthropogenic nutrients.Crossref | GoogleScholarGoogle Scholar | 28073478PubMed |

Planas, D., and Paquet, S. (2016). Importance of climate change-physical forcing on the increase of cyanobacterial blooms in a small, stratified lake. Journal of Limnology 75, 201–214.
Importance of climate change-physical forcing on the increase of cyanobacterial blooms in a small, stratified lake.Crossref | GoogleScholarGoogle Scholar |

Popovský, J., and Pfiester, L. A. (1990). ‘Süßwasserflora von Mitteleuropa: Dinophyceae (Dinoflagellida).’ (Gustav Fischer: Stuttgart, Germany.)

Portalier, S. M. J., Cherif, M., Zhang, L., and Fussmann, G. (2016). Size-related effects of physical factors on phytoplankton communities. Ecological Modelling 323, 41–50.
Size-related effects of physical factors on phytoplankton communities.Crossref | GoogleScholarGoogle Scholar |

Prescott, G. W., and Vinyard, W. C. (1982). ‘A Synopsis of North American Desmids.’ (University of Nebraska Press: Lincoln, NB, USA).

Prioretti, L., and Giordano, M. (2016). Direct and indirect influence of sulfur availability on phytoplankton evolutionary trajectories. Journal of Phycology 52, 1094–1102.
Direct and indirect influence of sulfur availability on phytoplankton evolutionary trajectories.Crossref | GoogleScholarGoogle Scholar | 27716928PubMed |

Rolighed, J., Jeppesen, E., Sondergarrd, M., Bjerring, R., Janse, J. H., Mooij, W. M., and Trolle, D. (2016). Climate change will make recovery from eutrophication more difficult in shallow Danish lake Søbygaard. Water 8, 459–478.
Climate change will make recovery from eutrophication more difficult in shallow Danish lake Søbygaard.Crossref | GoogleScholarGoogle Scholar |

Shannon, C. E., and Wiener, W. (1949). ‘The Mathematical Theory of Communication.’ (University of Illinois Press: Urbana, IL, USA.)

Sherman, E., Moore, J. K., Primeau, F., and Tanouye, T. (2016). Temperature influence on phytoplankton community growth rates. Global Biogeochemical Cycles 30, 550–559.
Temperature influence on phytoplankton community growth rates.Crossref | GoogleScholarGoogle Scholar |

Striebel, M., Schabhüttl, S., Hodapp, D., Higsamer, P., and Hillebrand, H. (2016). Phytoplankton responses to temperature increases are constrained by abiotic conditions and community composition. Oecologia 182, 815–827.
Phytoplankton responses to temperature increases are constrained by abiotic conditions and community composition.Crossref | GoogleScholarGoogle Scholar | 27488200PubMed |

Ward, P. J., Kummu, M., and Lall, U. (2016). Flood frequencies and durations and their response to El Niño Southern Oscillations: global analysis. Journal of Hydrology 539, 358–378.
Flood frequencies and durations and their response to El Niño Southern Oscillations: global analysis.Crossref | GoogleScholarGoogle Scholar |

Xia, R., Zhang, Y., Critto, A., Wu, J., Fan, J., Zheng, Z., and Zhang, Y. (2016). The potential impacts of climate change factors on freshwater eutrophication: implications for research and countermeasures of water management in China. Sustainability 8, 229–245.
The potential impacts of climate change factors on freshwater eutrophication: implications for research and countermeasures of water management in China.Crossref | GoogleScholarGoogle Scholar |

Xu, K., and Juneau, P. (2016). Different physiological and photosynthetic responses of three cyanobacterial strains to light and zinc. Aquatic Toxicology 170, 251–258.
Different physiological and photosynthetic responses of three cyanobacterial strains to light and zinc.Crossref | GoogleScholarGoogle Scholar | 26675371PubMed |