Phytoplankton diversity loss along a gradient of future warming and brownification in freshwater mesocosms

被引:58
作者
Urrutia-Cordero, Pablo [1 ,2 ]
Ekvall, Mattias K. [1 ]
Ratcovich, Jens [1 ,3 ]
Soares, Margarida [1 ,4 ]
Wilken, Susanne [1 ,5 ,6 ]
Zhang, Huan [1 ]
Hansson, Lars-Anders [1 ]
机构
[1] Lund Univ, Dept Biol Aquat Ecol, Lund, Sweden
[2] Uppsala Univ, Dept Ecol & Genet Limnol, Evolutionary Biol Ctr, Uppsala, Sweden
[3] Lansstyrelsen Kalmar Ian, Vattenenheten, Tillvaxt & Miljo, Kalmar, Sweden
[4] Lund Univ, Dept Biol Microbial Ecol, Lund, Sweden
[5] Netherlands Inst Ecol NIOO KNAW, Dept Aquat Ecol, Wageningen, Netherlands
[6] Monterey Bay Aquarium Res Inst, Moss Landing, CA USA
关键词
biodiversity; climate change; food webs; mesocosms; phytoplankton; DISSOLVED ORGANIC-CARBON; PEG-MODEL; CLIMATE; CYANOBACTERIA; SHALLOW; LAKES; ZOOPLANKTON; DOMINANCE; INCREASE; PLANKTON;
D O I
10.1111/fwb.13027
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
1. Globally, freshwater ecosystems are warming at unprecedented rates and northern temperate lakes are simultaneously experiencing increased runoff of humic substances (brownification), with little known consequences for future conservation of biodiversity and ecosystem functioning. 2. We employed an outdoor mesocosm experiment during spring and summer to investigate the combined effects of gradually increasing warming and brownification perturbations on the phytoplankton community structure (biodiversity and composition) and functioning (biomass). 3. While we did not observe overall significant treatment effects on total phytoplankton biomasses, we show that predicted increases in warming and brownification can reduce biodiversity considerably, occasionally up to 90% of Shannon diversity estimates. Our results demonstrate that the loss of biodiversity is driven by the dominance of mixotrophic algae (Dinobryon and Cryptomonas), whereas several other phytoplankton taxa may be temporarily displaced from the community, including Cyclotella, Desmodesmus, Monoraphidium, Tetraedron, Nitzschia and Golenkinia. 4. The observed loss of biodiversity coincided with an increase in bacterial production providing resources for potential mixotrophs along the gradient of warming and brownification. This coupling between bacterial production and mixotrophs was likely a major cause behind the competitive displacement of obligate phototrophs and supports evidence for the importance of consumer-prey dynamics in shaping environmental impacts on phytoplankton communities. 5. We conclude that warming and brownification are likely to cause a profound loss of biodiversity by indirectly affecting competitive interactions among phytoplankton taxa. Importantly, our results did not show an abrupt loss of biodiversity; instead the reduction in taxa richness levelled off after exceeding a threshold of warming and brownification. These results exemplify the complex nonlinear responses of biodiversity to environmental perturbations and provide further insights for predicting biodiversity patterns to the future warming and brownification of freshwaters.
引用
收藏
页码:1869 / 1878
页数:10
相关论文
共 67 条
  • [1] [Anonymous], 2013, CLIMATE CHANGE 2013
  • [2] [Anonymous], 1969, RECOMMENDED PROCEDUR
  • [3] Terrestrial organic matter and light penetration: Effects on bacterial and primary production in lakes
    Ask, Jenny
    Karlsson, Jan
    Persson, Lennart
    Ask, Per
    Bystrom, Par
    Jansson, Mats
    [J]. LIMNOLOGY AND OCEANOGRAPHY, 2009, 54 (06) : 2034 - 2040
  • [4] Biospheric primary production during an ENSO transition
    Behrenfeld, MJ
    Randerson, JT
    McClain, CR
    Feldman, GC
    Los, SO
    Tucker, CJ
    Falkowski, PG
    Field, CB
    Frouin, R
    Esaias, WE
    Kolber, DD
    Pollack, NH
    [J]. SCIENCE, 2001, 291 (5513) : 2594 - 2597
  • [5] BOTTRELL HH, 1976, NORW J ZOOL, V24, P419
  • [6] Brierley B., 2007, PHYTOPLANKTON CLASSI
  • [7] Brown JH, 2004, ECOLOGY, V85, P1771, DOI 10.1890/03-9000
  • [8] Temperature mean and variance alter phytoplankton biomass and biodiversity in a long-term microcosm experiment
    Burgmer, Tanja
    Hillebrand, Helmut
    [J]. OIKOS, 2011, 120 (06) : 922 - 933
  • [9] Nonlinear dynamics in ecosystem response to climatic change: Case studies and policy implications
    Burkett, VR
    Wilcox, DA
    Stottlemyer, R
    Barrow, W
    Fagre, D
    Baron, J
    Price, J
    Nielsen, JL
    Allen, CD
    Peterson, DL
    Ruggerone, G
    Doyle, T
    [J]. ECOLOGICAL COMPLEXITY, 2005, 2 (04) : 357 - 394
  • [10] Carpenter SR, 1999, ECOL APPL, V9, P751, DOI 10.1890/1051-0761(1999)009[0751:MOEFLS]2.0.CO