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Alexandre, Ana; Silva, João; Buapet, Pimchanok; Björk, Mats; Santos, Rui (2012): Effects of CO2 enrichment on photosynthesis, growth, and nitrogen metabolism of the seagrass Zostera noltii [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.831352, Supplement to: Alexandre, A et al. (2012): Effects of CO2 enrichment on photosynthesis, growth, and nitrogen metabolism of the seagrass Zostera noltii. Ecology and Evolution, 2(10), 2625-2635, https://doi.org/10.1002/ece3.333

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Abstract:
Seagrass ecosystems are expected to benefit from the global increase in CO2 in the ocean because the photosynthetic rate of these plants may be Ci-limited at the current CO2 level. As well, it is expected that lower external pH will facilitate the nitrate uptake of seagrasses if nitrate is cotransported with H+ across the membrane as in terrestrial plants. Here, we investigate the effects of CO2 enrichment on both carbon and nitrogen metabolism of the seagrass Zostera noltii in a mesocosm experiment where plants were exposed for 5 months to two experimental CO2 concentrations (360 and 700 ppm). Both the maximum photosynthetic rate (Pm) and photosynthetic efficiency (a) were higher (1.3- and 4.1-fold, respectively) in plants exposed to CO2-enriched conditions. On the other hand, no significant effects of CO2 enrichment on leaf growth rates were observed, probably due to nitrogen limitation as revealed by the low nitrogen content of leaves. The leaf ammonium uptake rate and glutamine synthetase activity were not significantly affected by increased CO2 concentrations. On the other hand, the leaf nitrate uptake rate of plants exposed to CO2-enriched conditions was fourfold lower than the uptake of plants exposed to current CO2 level, suggesting that in the seagrass Z. noltii nitrate is not cotransported with H+ as in terrestrial plants. In contrast, the activity of nitrate reductase was threefold higher in plant leaves grown at high-CO2 concentrations. Our results suggest that the global effects of CO2 on seagrass production may be spatially heterogeneous and depend on the specific nitrogen availability of each system. Under a CO2 increase scenario, the natural levels of nutrients will probably become limiting for Z. noltii. This potential limitation becomes more relevant because the expected positive effect of CO2 increase on nitrate uptake rate was not confirmed.
Keyword(s):
Benthos; Coast and continental shelf; Field experiment; Mesocosm or benthocosm; North Atlantic; Plantae; Primary production/Photosynthesis; Seagrass; Single species; Temperate; Tracheophyta; Zostera noltii
Further details:
Lavigne, Héloïse; Gattuso, Jean-Pierre (2011): seacarb: seawater carbonate chemistry with R. R package version 2.4. https://cran.r-project.org/package=seacarb
Comment:
In order to allow full comparability with other ocean acidification data sets, the R package seacarb (Lavigne and Gattuso, 2011) 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 2014-03-31.
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1SpeciesSpeciesAlexandre, Ana
2IdentificationIDAlexandre, Ana
3Time of dayTime of dayAlexandre, Ana
4TreatmentTreatAlexandre, Ana
5Electron transport rateETRµmol e/m2/sAlexandre, Ana
6Electron transport rate, standard deviationETR std dev±Alexandre, Ana
7IrradianceEµmol/m2/sAlexandre, Ana
8Net photosynthesis rate, oxygenPN O2µmol/cm2/hAlexandre, Ana
9Ammonium uptake rate[NH4]+ upt rateµmol/g/hAlexandre, Ana
10Ammonium uptake rate, standard error[NH4]+ upt rate std e±Alexandre, Ana
11Nitrate uptake rateNO3 upt rateµmol/g/hAlexandre, Ana
12Nitrate uptake rate, standard errorNO3 upt rate std e±Alexandre, Ana
13Nitrate reductase activityNO3 reduct actµmol/g/hAlexandre, Ana
14Nitrate reductase activity, standard errorNO3 reduct act std e±Alexandre, Ana
15Glutamine synthetase activityGS actµmol/g/hAlexandre, Ana
16Glutamine synthetase activity, standard errorGS act std e±Alexandre, Ana
17Temperature, waterTemp°CAlexandre, Ana
18SalinitySalAlexandre, Ana
19pHpHAlexandre, AnaNBS scale
20Alkalinity, totalATµmol/kgAlexandre, AnaCalculated using seacarb after Nisumaa et al. (2010)
21Carbonate system computation flagCSC flagYang, YanCalculated using seacarb after Nisumaa et al. (2010)
22pHpHYang, YanCalculated using seacarb after Nisumaa et al. (2010)total scale
23Carbon dioxideCO2µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
24Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)
25Fugacity of carbon dioxide (water) at sea surface temperature (wet air)fCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)
26Bicarbonate ion[HCO3]-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
27Carbonate ion[CO3]2-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
28Carbon, inorganic, dissolvedDICµmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
29Aragonite saturation stateOmega ArgYang, YanCalculated using seacarb after Nisumaa et al. (2010)
30Calcite saturation stateOmega CalYang, YanCalculated using seacarb after Nisumaa et al. (2010)
Status:
Curation Level: Enhanced curation (CurationLevelC)
Size:
1766 data points

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