Warming air temperatures alter the timing and magnitude of reservoir zooplankton biomass

dc.contributor.authorWander, Heather L.en
dc.contributor.authorLofton, Mary E.en
dc.contributor.authorDoubek, Jonathan P.en
dc.contributor.authorHoward, Dexter W.en
dc.contributor.authorHipsey, Matthew R.en
dc.contributor.authorThomas, R. Quinnen
dc.contributor.authorCarey, Cayelan C.en
dc.date.accessioned2025-08-06T11:57:24Zen
dc.date.available2025-08-06T11:57:24Zen
dc.date.issued2025-10-01en
dc.description.abstractWarming air temperatures are altering many physical, chemical, and biological processes in freshwater ecosystems. Process-based ecosystem models are important tools for predicting potential future changes to water quality due to warming by simulating complex ecological interactions. However, while previous studies have modeled climate-driven impacts on water quality (e.g., water temperature, dissolved oxygen, phytoplankton), few have included zooplankton, despite their critical role in freshwater ecosystems. Zooplankton functional groups can exhibit variable responses to warming temperatures, but the implications of these responses on freshwater ecosystems are not well understood. To understand the effects of warming on reservoir zooplankton and water quality, we configured and calibrated a process-based freshwater ecosystem model simulating three zooplankton functional groups and then applied multiple air temperature scenarios to explore ecosystem responses. We found that warming air temperature increased modeled rotifer biomass and decreased modeled cladoceran and copepod biomass. While the timing of annual rotifer peak biomass was not altered by warming air temperatures, annual copepod biomass peaks were delayed by 54–100 days within a year across warming scenarios. The timing of cladoceran biomass peaks was more variable in response to warming. Changes to the timing and magnitude of modeled zooplankton biomass were likely driven by changes in nutrients and phytoplankton, as we observed a trophic mismatch between phytoplankton and zooplankton biomass. These results highlight the importance of including zooplankton functional groups in process-based models when exploring the future effects of climate change on freshwater ecosystems, as changes in zooplankton communities can directly and indirectly alter ecosystem dynamics.en
dc.description.notesSource info: ECOMOD-25-599en
dc.description.versionAccepted versionen
dc.format.mimetypeapplication/pdfen
dc.identifier.doihttps://doi.org/10.1016/j.ecolmodel.2025.111272en
dc.identifier.issn0304-3800en
dc.identifier.orcidCarey, Cayelan [0000-0001-8835-4476]en
dc.identifier.urihttps://hdl.handle.net/10919/136972en
dc.identifier.volume509en
dc.language.isoenen
dc.rightsCreative Commons Attribution-NonCommercial-NoDerivatives 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/en
dc.subjectClimate changeen
dc.subjectcrustaceansen
dc.subjectlake ecosystem modelen
dc.subjectplankton dynamicsen
dc.subjectrotifersen
dc.subjectwater qualityen
dc.titleWarming air temperatures alter the timing and magnitude of reservoir zooplankton biomassen
dc.title.serialEcological Modellingen
dc.typeArticle - Refereeden
dc.type.dcmitypeTexten
dc.type.otherJournal Articleen
pubs.organisational-groupVirginia Techen
pubs.organisational-groupVirginia Tech/Scienceen
pubs.organisational-groupVirginia Tech/Science/Biological Sciencesen
pubs.organisational-groupVirginia Tech/All T&R Facultyen
pubs.organisational-groupVirginia Tech/Science/COS T&R Facultyen
pubs.organisational-groupVirginia Tech/Post-docsen
pubs.organisational-groupVirginia Tech/Graduate studentsen
pubs.organisational-groupVirginia Tech/Graduate students/Doctoral studentsen

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