The interaction between cyanobacteria and zooplankton in a more eutrophic world

As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being public health hazards, cyanobacteria have long been considered a poor quality food for key zooplankton grazers that link phytoplankton to hig...

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Published inHarmful algae Vol. 54; pp. 128 - 144
Main Authors Ger, Kemal Ali, Urrutia-Cordero, Pablo, Frost, Paul C., Hansson, Lars-Anders, Sarnelle, Orlando, Wilson, Alan E., Lürling, Miquel
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 01.04.2016
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Abstract As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being public health hazards, cyanobacteria have long been considered a poor quality food for key zooplankton grazers that link phytoplankton to higher trophic levels. While past laboratory studies have found negative effects of nutritional constraints and defensive traits (i.e., toxicity and colonial or filamentous morphology) on the fitness of large generalist grazers (i.e., Daphnia), cyanobacterial blooms often co-exist with high biomass of small-bodied zooplankton in nature. Indeed, recent studies highlight the remarkable diversity and flexibility in zooplankton responses to cyanobacterial prey. Reviewed here are results from a wide range of laboratory and field experiments examining the interaction of cyanobacteria and a diverse zooplankton taxa including cladocerans, copepods, and heterotrophic protists from temperate to tropical freshwater systems. This synthesis shows that longer exposure to cyanobacteria can shift zooplankton communities toward better-adapted species, select for more tolerant genotypes within a species, and induce traits within the lifetime of individual zooplankton. In turn, the function of bloom-dominated plankton ecosystems, the coupling between primary producers and grazers, the stability of blooms, and the potential to use top down biomanipulation for controlling cyanobacteria depend largely on the species, abundance, and traits of interacting cyanobacteria and zooplankton. Understanding the drivers and consequences of zooplankton traits, such as physiological detoxification and selective vs. generalist grazing behavior, are therefore of major importance for future studies. Ultimately, co-evolutionary dynamics between cyanobacteria and their grazers may emerge as a critical regulator of blooms.
AbstractList As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being public health hazards, cyanobacteria have long been considered a poor quality food for key zooplankton grazers that link phytoplankton to higher trophic levels. While past laboratory studies have found negative effects of nutritional constraints and defensive traits (i.e., toxicity and colonial or filamentous morphology) on the fitness of large generalist grazers (i.e., Daphnia), cyanobacterial blooms often co-exist with high biomass of small-bodied zooplankton in nature. Indeed, recent studies highlight the remarkable diversity and flexibility in zooplankton responses to cyanobacterial prey. Reviewed here are results from a wide range of laboratory and field experiments examining the interaction of cyanobacteria and a diverse zooplankton taxa including cladocerans, copepods, and heterotrophic protists from temperate to tropical freshwater systems. This synthesis shows that longer exposure to cyanobacteria can shift zooplankton communities toward better-adapted species, select for more tolerant genotypes within a species, and induce traits within the lifetime of individual zooplankton. In turn, the function of bloom-dominated plankton ecosystems, the coupling between primary producers and grazers, the stability of blooms, and the potential to use top down biomanipulation for controlling cyanobacteria depend largely on the species, abundance, and traits of interacting cyanobacteria and zooplankton. Understanding the drivers and consequences of zooplankton traits, such as physiological detoxification and selective vs. generalist grazing behavior, are therefore of major importance for future studies. Ultimately, co-evolutionary dynamics between cyanobacteria and their grazers may emerge as a critical regulator of blooms.As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being public health hazards, cyanobacteria have long been considered a poor quality food for key zooplankton grazers that link phytoplankton to higher trophic levels. While past laboratory studies have found negative effects of nutritional constraints and defensive traits (i.e., toxicity and colonial or filamentous morphology) on the fitness of large generalist grazers (i.e., Daphnia), cyanobacterial blooms often co-exist with high biomass of small-bodied zooplankton in nature. Indeed, recent studies highlight the remarkable diversity and flexibility in zooplankton responses to cyanobacterial prey. Reviewed here are results from a wide range of laboratory and field experiments examining the interaction of cyanobacteria and a diverse zooplankton taxa including cladocerans, copepods, and heterotrophic protists from temperate to tropical freshwater systems. This synthesis shows that longer exposure to cyanobacteria can shift zooplankton communities toward better-adapted species, select for more tolerant genotypes within a species, and induce traits within the lifetime of individual zooplankton. In turn, the function of bloom-dominated plankton ecosystems, the coupling between primary producers and grazers, the stability of blooms, and the potential to use top down biomanipulation for controlling cyanobacteria depend largely on the species, abundance, and traits of interacting cyanobacteria and zooplankton. Understanding the drivers and consequences of zooplankton traits, such as physiological detoxification and selective vs. generalist grazing behavior, are therefore of major importance for future studies. Ultimately, co-evolutionary dynamics between cyanobacteria and their grazers may emerge as a critical regulator of blooms.
As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being public health hazards, cyanobacteria have long been considered a poor quality food for key zooplankton grazers that link phytoplankton to higher trophic levels. While past laboratory studies have found negative effects of nutritional constraints and defensive traits (i.e., toxicity and colonial or filamentous morphology) on the fitness of large generalist grazers (i.e., Daphnia), cyanobacterial blooms often co-exist with high biomass of small-bodied zooplankton in nature. Indeed, recent studies highlight the remarkable diversity and flexibility in zooplankton responses to cyanobacterial prey. Reviewed here are results from a wide range of laboratory and field experiments examining the interaction of cyanobacteria and a diverse zooplankton taxa including cladocerans, copepods, and heterotrophic protists from temperate to tropical freshwater systems. This synthesis shows that longer exposure to cyanobacteria can shift zooplankton communities toward better-adapted species, select for more tolerant genotypes within a species, and induce traits within the lifetime of individual zooplankton. In turn, the function of bloom-dominated plankton ecosystems, the coupling between primary producers and grazers, the stability of blooms, and the potential to use top down biomanipulation for controlling cyanobacteria depend largely on the species, abundance, and traits of interacting cyanobacteria and zooplankton. Understanding the drivers and consequences of zooplankton traits, such as physiological detoxification and selective vs. generalist grazing behavior, are therefore of major importance for future studies. Ultimately, co-evolutionary dynamics between cyanobacteria and their grazers may emerge as a critical regulator of blooms.
As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being public health hazards, cyanobacteria have long been considered a poor quality food for key zooplankton grazers that link phytoplankton to higher trophic levels. While past laboratory studies have found negative effects of nutritional constraints and defensive traits (i.e., toxicity and colonial or filamentous morphology) on the fitness of large generalist grazers (i.e., Daphnia), cyanobacterial blooms often co-exist with high biomass of small-bodied zooplankton in nature. Indeed, recent studies highlight the remarkable diversity and flexibility in zooplankton responses to cyanobacterial prey. Reviewed here are results from a wide range of laboratory and field experiments examining the interaction of cyanobacteria and a diverse zooplankton taxa including cladocerans, copepods, and heterotrophic protists from temperate to tropical freshwater systems. Thissynthesis shows that longer exposure to cyanobacteria can shift zooplankton communities toward better-adapted species, select for more tolerant genotypes within a species, and induce traits within the lifetime of individual zooplankton. In turn, the function of bloom-dominated plankton ecosystems, the coupling between primary producers and grazers, the stability of blooms, and the potential to use top down biomanipulation for controlling cyanobacteria depend largely on the species, abundance, and traits of interacting cyanobacteria and zooplankton. Understanding the drivers and consequences of zooplankton traits, such as physiological detoxification and selective vs. generalist grazing behavior, are therefore of major importance for future studies. Ultimately, co-evolutionary dynamics between cyanobacteria and their grazers may emerge as a critical regulator of blooms.
Author Frost, Paul C.
Lürling, Miquel
Wilson, Alan E.
Hansson, Lars-Anders
Ger, Kemal Ali
Urrutia-Cordero, Pablo
Sarnelle, Orlando
Author_xml – sequence: 1
  givenname: Kemal Ali
  surname: Ger
  fullname: Ger, Kemal Ali
  email: aligerger@gmail.com
  organization: Department of Ecology, Center for Biosciences, Federal University of Rio Grande do Norte, RN, Brazil
– sequence: 2
  givenname: Pablo
  surname: Urrutia-Cordero
  fullname: Urrutia-Cordero, Pablo
  organization: Center for Environmental and Climate Research, Lund University, Lund, Sweden
– sequence: 3
  givenname: Paul C.
  surname: Frost
  fullname: Frost, Paul C.
  organization: Department of Biology, Trent University, Peterborough, Ontario, Canada
– sequence: 4
  givenname: Lars-Anders
  surname: Hansson
  fullname: Hansson, Lars-Anders
  organization: Department of Biology, Lund University, Lund, Sweden
– sequence: 5
  givenname: Orlando
  surname: Sarnelle
  fullname: Sarnelle, Orlando
  organization: Department of Fisheries and Wildlife, 163A Natural Resources Building, Michigan State University, East Lansing, MI 48824, USA
– sequence: 6
  givenname: Alan E.
  surname: Wilson
  fullname: Wilson, Alan E.
  organization: School of Fisheries, Aquaculture, and Aquatic Sciences, Auburn University, Auburn, AL, USA
– sequence: 7
  givenname: Miquel
  surname: Lürling
  fullname: Lürling, Miquel
  organization: Department of Environmental Sciences, Aquatic Ecology and Water Quality Management Group, Wageningen University, Wageningen, The Netherlands
BackLink https://www.ncbi.nlm.nih.gov/pubmed/28073472$$D View this record in MEDLINE/PubMed
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Plankton
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Snippet As blooms of cyanobacteria expand and intensify in freshwater systems globally, there is increasing interest in their ecological effects. In addition to being...
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StartPage 128
SubjectTerms adverse effects
algae
Animals
Biologi
Biological Sciences
biomass
Co-evolution
Copepoda
Cyanobacteria
Cyanobacteria - physiology
Daphnia
Ecology
Ecology (including Biodiversity Conservation)
Ecosystem
ecosystems
Ekologi
Eutrophication
Evolutionary Biology
Evolutionsbiologi
field experimentation
food quality
Fresh Water
freshwater
genotype
Grazing
health hazards
Local-adaptation
Natural Sciences
Naturvetenskap
phytoplankton
Plankton
protists
public health
toxicity
trophic relationships
zooplankton
Zooplankton - microbiology
Zooplankton - physiology
Title The interaction between cyanobacteria and zooplankton in a more eutrophic world
URI https://dx.doi.org/10.1016/j.hal.2015.12.005
https://www.ncbi.nlm.nih.gov/pubmed/28073472
https://www.proquest.com/docview/1817813731
https://www.proquest.com/docview/1857753941
https://lup.lub.lu.se/record/de2688a6-fb8e-4728-9e79-3dfd49810252
oai:portal.research.lu.se:publications/de2688a6-fb8e-4728-9e79-3dfd49810252
http://www.narcis.nl/publication/RecordID/oai:library.wur.nl:wurpubs%2F508578
Volume 54
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