Experiment on the response of the sea star Asterias rubens to heat stress and ocean acidification: experiment 2: A. rubens oxygen diffusion gradients

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Hauptverfasser: Melzner, Frank, Findeisen, Ulrike, Bock, Christian, Panknin, Ulrike, Kiko, Rainer, Hiebenthal, Claas, Lenz, Mark, Wall, Marlene
Format: Dataset Open Access
Sprache:en
Veröffentlicht: PANGAEA 2022
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author Melzner, Frank
Findeisen, Ulrike
Bock, Christian
Panknin, Ulrike
Kiko, Rainer
Hiebenthal, Claas
Lenz, Mark
Wall, Marlene
author_facet Melzner, Frank
Findeisen, Ulrike
Bock, Christian
Panknin, Ulrike
Kiko, Rainer
Hiebenthal, Claas
Lenz, Mark
Wall, Marlene
collection Datos científicos de ciencias marinas y ambientales
contents Robust estimates of marine species vulnerability to ongoing climate change require realistic stressor experiments. Here, we subjected an important coastal predator, the sea star Asterias rubens, to projected warming and ocean acidification over an annual seasonal cycle. Warming and, less so, acidification, had strongly season-specific impacts on animal energy budgets. Specifically, simulated future summer temperatures caused >95% sea star mortality, reduced feeding rate and body mass loss. Additional acute experiments demonstrated that respiratory oxygen flux was preferentially directed to support high summer metabolism at the expense of feeding-related processes. Using 15 years of field temperature data and end of century warming projections, we estimate that potentially lethal summer heat waves will occur in 20% of future years. Our study demonstrates the importance of assessing stress responses along seasonal thermal cycles and the high selective force that future summer heat waves likely can exert on coastal marine animal populations.
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_949414
institution PANGAEA
language en
publishDate 2022
publisher PANGAEA
record_format pangaea
spellingShingle Experiment on the response of the sea star Asterias rubens to heat stress and ocean acidification: experiment 2: A. rubens oxygen diffusion gradients
Melzner, Frank
Findeisen, Ulrike
Bock, Christian
Panknin, Ulrike
Kiko, Rainer
Hiebenthal, Claas
Lenz, Mark
Wall, Marlene
Asterias rubens; Baltic Sea; Climate - Biogeochemistry Interactions in the Tropical Ocean; Cluster of Excellence: The Future Ocean; DATE/TIME; ECO2; Experiment; FutureOcean; Oxygen, partial pressure; oxygen diffusion; Replicate; Salinity; sea star; SFB754; Sub-seabed CO2 Storage: Impact on Marine Ecosystems; Temperature; Temperature, water; Δ oxygen, partial pressure
Robust estimates of marine species vulnerability to ongoing climate change require realistic stressor experiments. Here, we subjected an important coastal predator, the sea star Asterias rubens, to projected warming and ocean acidification over an annual seasonal cycle. Warming and, less so, acidification, had strongly season-specific impacts on animal energy budgets. Specifically, simulated future summer temperatures caused >95% sea star mortality, reduced feeding rate and body mass loss. Additional acute experiments demonstrated that respiratory oxygen flux was preferentially directed to support high summer metabolism at the expense of feeding-related processes. Using 15 years of field temperature data and end of century warming projections, we estimate that potentially lethal summer heat waves will occur in 20% of future years. Our study demonstrates the importance of assessing stress responses along seasonal thermal cycles and the high selective force that future summer heat waves likely can exert on coastal marine animal populations.
title Experiment on the response of the sea star Asterias rubens to heat stress and ocean acidification: experiment 2: A. rubens oxygen diffusion gradients
topic Asterias rubens; Baltic Sea; Climate - Biogeochemistry Interactions in the Tropical Ocean; Cluster of Excellence: The Future Ocean; DATE/TIME; ECO2; Experiment; FutureOcean; Oxygen, partial pressure; oxygen diffusion; Replicate; Salinity; sea star; SFB754; Sub-seabed CO2 Storage: Impact on Marine Ecosystems; Temperature; Temperature, water; Δ oxygen, partial pressure
url https://doi.org/10.1594/PANGAEA.949414