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Terrestrial dissolved organic matter supports growth and reproduction ofDaphnia magnawhen algae are limiting
Author(s) -
Bailey C. McMeans,
ApostolosManuel Koussoroplis,
Michael T. Arts,
Martin J. Kainz
Publication year - 2015
Publication title -
journal of plankton research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.87
H-Index - 93
eISSN - 1464-3774
pISSN - 0142-7873
DOI - 10.1093/plankt/fbv083
Subject(s) - daphnia , biology , algae , cladocera , dissolved organic carbon , branchiopoda , reproduction , botany , ecology , environmental chemistry , zooplankton , chemistry
We experimentally show that Daphnia magna can use terrestrial-derived dissolved organic matter (t-DOM) to support growth and reproduction when alternative food sources are limiting or absent. Unlike previous studies, we restricted available food to limiting algae (0.1 mg C L of Scenedesmus obliquus, provided to all treatments) and bacteria (conditions were not sterile) by excluding heterotrophic protists and running our experiment in darkness to prevent algal growth. Daphnia receiving 10 mg t-DOC L leached from either beech (Fagus sylvatica, t-DOMbeech) or hazel leaves (Corylus maxima, t-DOMhazel) had significantly higher juvenile growth rates and deposited larger clutch sizes across a range of realistic temperatures (15, 20, 258C) than Daphnia receiving no t-DOM, which failed to deposit eggs. Growth rates of t-DOM-supplied Daphnia were similar (0.10+ 0.01 d) and clutch sizes were low (,2 eggs female) across temperatures. Our experimental leachate additions mimic fresh t-DOM inputs in natural systems (e.g. during runoff or precipitation) and suggest that t-DOM and t-DOM-supported bacteria can supplement Daphnia growth and reproduction across a range of temperatures even when algae are strongly limiting. Low growth and reproduction rates, however, indicate that t-DOM based resources are unlikely to sustain Daphnia populations independently from sufficient algal contributions.

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