Chytrid parasitism facilitates trophic transfer between bloom-forming cyanobacteria and zooplankton (Daphnia)

被引:73
作者
Agha, Ramsy [1 ]
Saebelfeld, Manja [1 ,2 ]
Manthey, Christin [1 ]
Rohrlack, Thomas [3 ]
Wolinska, Justyna [1 ,2 ]
机构
[1] Leibniz Inst Freshwater Ecol & Inland Fisheries I, Berlin, Germany
[2] Free Univ Berlin, Inst Biol, Dept Biol, Chem,Pharm, Berlin, FU, Germany
[3] Norwegian Univ Life Sci NMBU, Dept Environm Sci, As, Norway
关键词
POPULATION-GROWTH; FOOD QUALITY; PHYTOPLANKTON; REPRODUCTION; BACTERIA; LIMITATION; METAANALYSIS; COMMUNITIES; HISTORY; DIETS;
D O I
10.1038/srep35039
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Parasites are rarely included in food web studies, although they can strongly alter trophic interactions. In aquatic ecosystems, poorly grazed cyanobacteria often dominate phytoplankton communities, leading to the decoupling of primary and secondary production. Here, we addressed the interface between predator-prey and host-parasite interactions by conducting a life-table experiment, in which four Daphnia galeata genotypes were maintained on quantitatively comparable diets consisting of healthy cyanobacteria or cyanobacteria infected by a fungal (chytrid) parasite. In four out of five fitness parameters, at least one Daphnia genotype performed better on parasitised cyanobacteria than in the absence of infection. Further treatments consisting of purified chytrid zoospores and heterotrophic bacteria suspensions established the causes of improved fitness. First, Daphnia feed on chytrid zoospores which trophically upgrade cyanobacterial carbon. Second, an increase in heterotrophic bacterial biomass, promoted by cyanobacterial decay, provides an additional food source for Daphnia. In addition, chytrid infection induces fragmentation of cyanobacterial filaments, which could render cyanobacteria more edible. Our results demonstrate that chytrid parasitism can sustain zooplankton under cyanobacterial bloom conditions, and exemplify the potential of parasites to alter interactions between trophic levels.
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页数:9
相关论文
共 62 条
[1]   Food web topology and parasites in the pelagic zone of a subarctic lake [J].
Amundsen, Per-Arne ;
Lafferty, Kevin D. ;
Knudsen, Rune ;
Primicerio, Raul ;
Klemetsen, Anders ;
Kuris, Armand M. .
JOURNAL OF ANIMAL ECOLOGY, 2009, 78 (03) :563-572
[2]  
Azam F., 1983, Estuaries, V50
[3]   Trophic upgrading of autotrophic picoplankton by the heterotrophic nanoflagellate Paraphysomonas sp. [J].
Bec, Alexandre ;
Martin-Creuzburg, Dominik ;
von Elert, Eric .
LIMNOLOGY AND OCEANOGRAPHY, 2006, 51 (04) :1699-1707
[4]   Effects of a cyanobacterial bloom (Cylindrospermopsis raciborskii) on bacteria and zooplankton communities in Ingazeira reservoir (northeast Brazil) [J].
Bouvy, M ;
Pagano, M ;
Troussellier, M .
AQUATIC MICROBIAL ECOLOGY, 2001, 25 (03) :215-227
[5]   A meta-analysis of the freshwater trophic cascade [J].
Brett, MT ;
Goldman, CR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (15) :7723-7726
[6]   EFFECTS OF PHOSPHORUS LIMITATION ON THE EPIDEMIOLOGY OF A CHYTRID PHYTOPLANKTON PARASITE [J].
BRUNING, K .
FRESHWATER BIOLOGY, 1991, 25 (03) :409-417
[7]  
Carpenter S.R., 1996, The trophic cascade in lakes
[8]   Cyanobacterial toxins: risk management for health protection [J].
Codd, GA ;
Morrison, LF ;
Metcalf, JS .
TOXICOLOGY AND APPLIED PHARMACOLOGY, 2005, 203 (03) :264-272
[9]   GLYCOGEN AND OTHER SOLUBLE GLUCANS FROM CHYTRIDIOMYCETE AND OOMYCETE SPECIES [J].
COULTER, DB ;
ARONSON, JM .
ARCHIVES OF MICROBIOLOGY, 1977, 115 (03) :317-322
[10]   Mesozooplankton and microzooplankton grazing during cyanobacterial blooms in the western basin of Lake Erie [J].
Davis, Timothy W. ;
Koch, Florian ;
Marcoval, Maria Alejandra ;
Wilhelm, Steven W. ;
Gobler, Christopher J. .
HARMFUL ALGAE, 2012, 15 :26-35