Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36

We evaluated the photosynthetic performance of Posidonia oceanica during short-term laboratory exposures to ambient and elevated temperatures (24-25 °C and 29-30 °C) warming and pCO2 (380, 750 and 1000 ppm pCO2) under normal and low light conditions (200 and 40 µmol photons/m**2/s respectively). Pla...

Full description

Bibliographic Details
Main Authors: Hendriks, Iris, Olsen, Ylva, Duarte, Carlos Manuel
Format: Dataset
Language:English
Published: PANGAEA - Data Publisher for Earth & Environmental Science 2017
Subjects:
pH
Online Access:https://dx.doi.org/10.1594/pangaea.875001
https://doi.pangaea.de/10.1594/PANGAEA.875001
id ftdatacite:10.1594/pangaea.875001
record_format openpolar
spelling ftdatacite:10.1594/pangaea.875001 2023-05-15T17:51:21+02:00 Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36 Hendriks, Iris Olsen, Ylva Duarte, Carlos Manuel 2017 text/tab-separated-values https://dx.doi.org/10.1594/pangaea.875001 https://doi.pangaea.de/10.1594/PANGAEA.875001 en eng PANGAEA - Data Publisher for Earth & Environmental Science https://cran.r-project.org/package=seacarb https://dx.doi.org/10.1016/j.aquabot.2017.02.004 https://cran.r-project.org/package=seacarb Creative Commons Attribution 3.0 Unported https://creativecommons.org/licenses/by/3.0/legalcode cc-by-3.0 CC-BY Benthos Bottles or small containers/Aquaria <20 L Coast and continental shelf Growth/Morphology Laboratory experiment Light Mediterranean Sea Plantae Posidonia oceanica Primary production/Photosynthesis Seagrass Single species Temperate Tracheophyta Type Species Registration number of species Uniform resource locator/link to reference Experiment duration Experiment Identification Temperature, water Salinity Alkalinity, total Carbon dioxide, partial pressure Irradiance pH Aragonite saturation state Range Dry mass Shoots Leaf area Leaf area index Volume Leaf, growth rate Leaf, growth rate, standard error Time in days Photosynthetic quantum efficiency Maximal electron transport rate, relative Light saturation point Maximum photochemical quantum yield of photosystem II Carbonate system computation flag Carbon dioxide Fugacity of carbon dioxide water at sea surface temperature wet air Partial pressure of carbon dioxide water at sea surface temperature wet air Bicarbonate ion Carbonate ion Carbon, inorganic, dissolved Calcite saturation state Potentiometric titration Potentiometric Calculated using CO2SYS Calculated using seacarb after Nisumaa et al. 2010 Ocean Acidification International Coordination Centre OA-ICC Supplementary Dataset dataset Dataset 2017 ftdatacite https://doi.org/10.1594/pangaea.875001 https://doi.org/10.1016/j.aquabot.2017.02.004 2021-11-05T12:55:41Z We evaluated the photosynthetic performance of Posidonia oceanica during short-term laboratory exposures to ambient and elevated temperatures (24-25 °C and 29-30 °C) warming and pCO2 (380, 750 and 1000 ppm pCO2) under normal and low light conditions (200 and 40 µmol photons/m**2/s respectively). Plant growth was measured at the low light regime and showed a negative response to warming. Light was a critical factor for photosynthetic performance, although we found no evidence of compensation of photosynthetic quantum efficiency in high light. Relative Electron Rate Transport (rETRmax) was higher in plants incubated in high light, but not affected by pCO2 or temperature. The saturation irradiance (Ik) was negatively affected by temperature. We conclude that elevated CO2 does not enhance photosynthetic activity and growth, in the short term for P. oceanica, while temperature has a direct negative effect on growth. Low light availability also negatively affected photosynthetic performance during the short experimental period examined here. Therefore increasing concentrations of CO2 may not compensate for predicted future conditions of warmer water and higher turbidity for seagrass meadows. : In order to allow full comparability with other ocean acidification data sets, the R package seacarb (Gattuso et al, 2016) was used to compute a complete and consistent set of carbonate system variables, as described by Nisumaa et al. (2010). In this dataset the original values were archived in addition with the recalculated parameters (see related PI). The date of carbonate chemistry calculation by seacarb is 2017-04-26. Dataset Ocean acidification DataCite Metadata Store (German National Library of Science and Technology) Duarte ENVELOPE(-60.950,-60.950,-64.200,-64.200)
institution Open Polar
collection DataCite Metadata Store (German National Library of Science and Technology)
op_collection_id ftdatacite
language English
topic Benthos
Bottles or small containers/Aquaria <20 L
Coast and continental shelf
Growth/Morphology
Laboratory experiment
Light
Mediterranean Sea
Plantae
Posidonia oceanica
Primary production/Photosynthesis
Seagrass
Single species
Temperate
Tracheophyta
Type
Species
Registration number of species
Uniform resource locator/link to reference
Experiment duration
Experiment
Identification
Temperature, water
Salinity
Alkalinity, total
Carbon dioxide, partial pressure
Irradiance
pH
Aragonite saturation state
Range
Dry mass
Shoots
Leaf area
Leaf area index
Volume
Leaf, growth rate
Leaf, growth rate, standard error
Time in days
Photosynthetic quantum efficiency
Maximal electron transport rate, relative
Light saturation point
Maximum photochemical quantum yield of photosystem II
Carbonate system computation flag
Carbon dioxide
Fugacity of carbon dioxide water at sea surface temperature wet air
Partial pressure of carbon dioxide water at sea surface temperature wet air
Bicarbonate ion
Carbonate ion
Carbon, inorganic, dissolved
Calcite saturation state
Potentiometric titration
Potentiometric
Calculated using CO2SYS
Calculated using seacarb after Nisumaa et al. 2010
Ocean Acidification International Coordination Centre OA-ICC
spellingShingle Benthos
Bottles or small containers/Aquaria <20 L
Coast and continental shelf
Growth/Morphology
Laboratory experiment
Light
Mediterranean Sea
Plantae
Posidonia oceanica
Primary production/Photosynthesis
Seagrass
Single species
Temperate
Tracheophyta
Type
Species
Registration number of species
Uniform resource locator/link to reference
Experiment duration
Experiment
Identification
Temperature, water
Salinity
Alkalinity, total
Carbon dioxide, partial pressure
Irradiance
pH
Aragonite saturation state
Range
Dry mass
Shoots
Leaf area
Leaf area index
Volume
Leaf, growth rate
Leaf, growth rate, standard error
Time in days
Photosynthetic quantum efficiency
Maximal electron transport rate, relative
Light saturation point
Maximum photochemical quantum yield of photosystem II
Carbonate system computation flag
Carbon dioxide
Fugacity of carbon dioxide water at sea surface temperature wet air
Partial pressure of carbon dioxide water at sea surface temperature wet air
Bicarbonate ion
Carbonate ion
Carbon, inorganic, dissolved
Calcite saturation state
Potentiometric titration
Potentiometric
Calculated using CO2SYS
Calculated using seacarb after Nisumaa et al. 2010
Ocean Acidification International Coordination Centre OA-ICC
Hendriks, Iris
Olsen, Ylva
Duarte, Carlos Manuel
Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36
topic_facet Benthos
Bottles or small containers/Aquaria <20 L
Coast and continental shelf
Growth/Morphology
Laboratory experiment
Light
Mediterranean Sea
Plantae
Posidonia oceanica
Primary production/Photosynthesis
Seagrass
Single species
Temperate
Tracheophyta
Type
Species
Registration number of species
Uniform resource locator/link to reference
Experiment duration
Experiment
Identification
Temperature, water
Salinity
Alkalinity, total
Carbon dioxide, partial pressure
Irradiance
pH
Aragonite saturation state
Range
Dry mass
Shoots
Leaf area
Leaf area index
Volume
Leaf, growth rate
Leaf, growth rate, standard error
Time in days
Photosynthetic quantum efficiency
Maximal electron transport rate, relative
Light saturation point
Maximum photochemical quantum yield of photosystem II
Carbonate system computation flag
Carbon dioxide
Fugacity of carbon dioxide water at sea surface temperature wet air
Partial pressure of carbon dioxide water at sea surface temperature wet air
Bicarbonate ion
Carbonate ion
Carbon, inorganic, dissolved
Calcite saturation state
Potentiometric titration
Potentiometric
Calculated using CO2SYS
Calculated using seacarb after Nisumaa et al. 2010
Ocean Acidification International Coordination Centre OA-ICC
description We evaluated the photosynthetic performance of Posidonia oceanica during short-term laboratory exposures to ambient and elevated temperatures (24-25 °C and 29-30 °C) warming and pCO2 (380, 750 and 1000 ppm pCO2) under normal and low light conditions (200 and 40 µmol photons/m**2/s respectively). Plant growth was measured at the low light regime and showed a negative response to warming. Light was a critical factor for photosynthetic performance, although we found no evidence of compensation of photosynthetic quantum efficiency in high light. Relative Electron Rate Transport (rETRmax) was higher in plants incubated in high light, but not affected by pCO2 or temperature. The saturation irradiance (Ik) was negatively affected by temperature. We conclude that elevated CO2 does not enhance photosynthetic activity and growth, in the short term for P. oceanica, while temperature has a direct negative effect on growth. Low light availability also negatively affected photosynthetic performance during the short experimental period examined here. Therefore increasing concentrations of CO2 may not compensate for predicted future conditions of warmer water and higher turbidity for seagrass meadows. : In order to allow full comparability with other ocean acidification data sets, the R package seacarb (Gattuso et al, 2016) was used to compute a complete and consistent set of carbonate system variables, as described by Nisumaa et al. (2010). In this dataset the original values were archived in addition with the recalculated parameters (see related PI). The date of carbonate chemistry calculation by seacarb is 2017-04-26.
format Dataset
author Hendriks, Iris
Olsen, Ylva
Duarte, Carlos Manuel
author_facet Hendriks, Iris
Olsen, Ylva
Duarte, Carlos Manuel
author_sort Hendriks, Iris
title Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36
title_short Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36
title_full Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36
title_fullStr Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36
title_full_unstemmed Light availability and temperature, not increased CO2, will structure future meadows of Posidonia oceanica, supplement to: Hendriks, Iris; Olsen, Ylva; Duarte, Carlos Manuel (2017): Light availability and temperature, not increased CO 2 , will structure future meadows of Posidonia oceanica. Aquatic Botany, 139, 32-36
title_sort light availability and temperature, not increased co2, will structure future meadows of posidonia oceanica, supplement to: hendriks, iris; olsen, ylva; duarte, carlos manuel (2017): light availability and temperature, not increased co 2 , will structure future meadows of posidonia oceanica. aquatic botany, 139, 32-36
publisher PANGAEA - Data Publisher for Earth & Environmental Science
publishDate 2017
url https://dx.doi.org/10.1594/pangaea.875001
https://doi.pangaea.de/10.1594/PANGAEA.875001
long_lat ENVELOPE(-60.950,-60.950,-64.200,-64.200)
geographic Duarte
geographic_facet Duarte
genre Ocean acidification
genre_facet Ocean acidification
op_relation https://cran.r-project.org/package=seacarb
https://dx.doi.org/10.1016/j.aquabot.2017.02.004
https://cran.r-project.org/package=seacarb
op_rights Creative Commons Attribution 3.0 Unported
https://creativecommons.org/licenses/by/3.0/legalcode
cc-by-3.0
op_rightsnorm CC-BY
op_doi https://doi.org/10.1594/pangaea.875001
https://doi.org/10.1016/j.aquabot.2017.02.004
_version_ 1766158468973068288