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Zheng, Ying; Giordano, Mario; Gao, Kunshan (2015): The impact of fluctuating light on the dinoflagellate Prorocentrum micans depends on NO3- and CO2 availability [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.851340, Supplement to: Zheng, Y et al. (2015): The impact of fluctuating light on the dinoflagellate Prorocentrum micans depends on NO3- and CO2 availability. Journal of Plant Physiology, 180, 18-26, https://doi.org/10.1016/j.jplph.2015.01.020

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Abstract:
Increasing atmospheric pCO2 and its dissolution into oceans leads to ocean acidification and warming, which reduces the thickness of upper mixing layer (UML) and upward nutrient supply from deeper layers. These events may alter the nutritional conditions and the light regime to which primary producers are exposed in the UML. In order to better understand the physiology behind the responses to the concomitant climate changes factors, we examined the impact of light fluctuation on the dinoflagellate Prorocentrum micans grown at low (1 µmol/L) or high (800 µmol/L) [NO3(-)] and at high (1000 µatm) or low (390 µatm, ambient) pCO2. The light regimes to which the algal cells were subjected were (1) constant light at a photon flux density (PFD) of either 100 (C100) or 500 (C500) µmol/m**2/s or (2) fluctuating light between 100 or 500 µmol photons/m**2/s with a frequency of either 15 (F15) or 60 (F60) min. Under continuous light, the initial portion of the light phase required the concomitant presence of high CO2 and NO3(-) concentrations for maximum growth. After exposure to light for 3h, high CO2 exerted a negative effect on growth and effective quantum yield of photosystem II (F'(v)/F'(m)). Fluctuating light ameliorated growth in the first period of illumination. In the second 3h of treatment, higher frequency (F15) of fluctuations afforded high growth rates, whereas the F60 treatment had detrimental consequences, especially when NO3(-) concentration was lower. F'(v)/F'(m) respondent differently from growth to fluctuating light: the fluorescence yield was always lower than at continuous light at 100 µmol/m**2/s, and always higher at 500 µmol/m**2/s. Our data show that the impact of atmospheric pCO2 increase on primary production of dinoflagellate depends on the availability of nitrate and the irradiance (intensity and the frequency of irradiance fluctuations) to which the cells are exposed. The impact of global change on oceanic primary producers would therefore be different in waters with different chemical and physical (mixing) properties.
Keyword(s):
Biomass/Abundance/Elemental composition; Bottles or small containers/Aquaria (<20 L); Chromista; Growth/Morphology; Laboratory experiment; Laboratory strains; Myzozoa; North Pacific; Pelagos; Phytoplankton; Primary production/Photosynthesis; Prorocentrum micans; Single species
Further details:
Gattuso, Jean-Pierre; Epitalon, Jean-Marie; Lavigne, Héloïse (2015): seacarb: seawater carbonate chemistry with R. R package version 3.0.8. https://cran.r-project.org/package=seacarb
Comment:
In order to allow full comparability with other ocean acidification data sets, the R package seacarb (Gattuso et al, 2015) 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 is 2015-09-24.
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1SpeciesSpeciesGao, Kunshan
2FigureFigGao, Kunshan
3Time in minutesTimeminGao, Kunshanmin
4Time in minutesTimeminGao, Kunshanmax
5TreatmentTreatGao, KunshanLC-HN=low pCO2 high NO3-, HC-HN=high CO2 high NO3-, LC-LN=low pCO2 low NO3-, LC-HN=low pCO2 high NO3-
6Light modeL modeGao, Kunshan
7Growth rateµ1/dayGao, Kunshan
8Growth rate, standard deviationµ std dev±Gao, Kunshan
9Time in minutesTimeminGao, Kunshan
10Effective quantum yieldYGao, Kunshan
11Effective quantum yield, standard deviationY std dev±Gao, Kunshan
12RatioRatioGao, KunshanFv'/Fm' ratio (HC/LC)
13Ratio, standard deviationRatio std dev±Gao, KunshanFv'/Fm' ratio (HC/LC)
14RatioRatioGao, KunshanFv'/Fm' ratio (HN/LN)
15Ratio, standard deviationRatio std dev±Gao, KunshanFv'/Fm' ratio (HN/LN)
16Time in hoursTimehGao, Kunshan
17Cell densityCells#/mlGao, Kunshan
18Cell density, standard deviationCells std dev±Gao, Kunshan
19Chlorophyll a per cellChl a/cellpg/#Gao, Kunshan
20Chlorophyll a, standard deviationChl a std dev±Gao, Kunshan
21Carotenoids per cellCarotenoids/cellpg/#Gao, Kunshan
22Carotenoids, standard deviationCarotenoids std dev±Gao, Kunshan
23Mycosporine-like amino acid, per cellMAAs/cellpg/#Gao, Kunshan
24Mycosporine-like amino acid, standard deviationMAAs std dev±Gao, Kunshan
25SalinitySalGao, Kunshan
26Temperature, waterTemp°CGao, Kunshan
27Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmGao, KunshanCalculated using CO2SYSbefore
28Partial pressure of carbon dioxide, standard deviationpCO2 std dev±Gao, KunshanCalculated using CO2SYSbefore
29pHpHGao, KunshanPotentiometricbefore, NBS scale
30pH, standard deviationpH std dev±Gao, KunshanPotentiometricbefore, NBS scale
31Carbon, inorganic, dissolvedDICµmol/kgGao, KunshanCoulometric titrationbefore
32Carbon, inorganic, dissolved, standard deviationDIC std dev±Gao, KunshanCoulometric titrationbefore
33Bicarbonate ion[HCO3]-µmol/kgGao, KunshanCalculated using CO2SYSbefore
34Bicarbonate ion, standard deviation[HCO3]- std dev±Gao, KunshanCalculated using CO2SYSbefore
35Carbonate ion[CO3]2-µmol/kgGao, KunshanCalculated using CO2SYSbefore
36Carbonate ion, standard deviation[CO3]2- std dev±Gao, KunshanCalculated using CO2SYSbefore
37Carbon dioxideCO2µmol/kgGao, KunshanCalculated using CO2SYSbefore
38Carbon dioxide, standard deviationCO2 std dev±Gao, KunshanCalculated using CO2SYSbefore
39Alkalinity, totalATµmol/kgGao, KunshanCalculated using CO2SYSbefore
40Alkalinity, total, standard deviationAT std dev±Gao, KunshanCalculated using CO2SYSbefore
41Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmGao, KunshanCalculated using CO2SYSafter
42Partial pressure of carbon dioxide, standard deviationpCO2 std dev±Gao, KunshanCalculated using CO2SYSafter
43pHpHGao, KunshanPotentiometricafter, NBS scale
44pH, standard deviationpH std dev±Gao, KunshanPotentiometricafter, NBS scale
45Carbon, inorganic, dissolvedDICµmol/kgGao, KunshanCoulometric titrationafter
46Carbon, inorganic, dissolved, standard deviationDIC std dev±Gao, KunshanCoulometric titrationafter
47Bicarbonate ion[HCO3]-µmol/kgGao, KunshanCalculated using CO2SYSafter
48Bicarbonate ion, standard deviation[HCO3]- std dev±Gao, KunshanCalculated using CO2SYSafter
49Carbonate ion[CO3]2-µmol/kgGao, KunshanCalculated using CO2SYSafter
50Carbonate ion, standard deviation[CO3]2- std dev±Gao, KunshanCalculated using CO2SYSafter
51Carbon dioxideCO2µmol/kgGao, KunshanCalculated using CO2SYSafter
52Carbon dioxide, standard deviationCO2 std dev±Gao, KunshanCalculated using CO2SYSafter
53Alkalinity, totalATµmol/kgGao, KunshanCalculated using CO2SYSafter
54Alkalinity, total, standard deviationAT std dev±Gao, KunshanCalculated using CO2SYSafter
55Carbonate system computation flagCSC flagYang, YanCalculated using seacarb after Nisumaa et al. (2010)
56pHpHYang, YanCalculated using seacarb after Nisumaa et al. (2010)before, total scale
57Carbon dioxideCO2µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
58Fugacity of carbon dioxide (water) at sea surface temperature (wet air)fCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
59Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
60Bicarbonate ion[HCO3]-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
61Carbonate ion[CO3]2-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
62Alkalinity, total, standard deviationAT std dev±Yang, YanCalculated using seacarb after Nisumaa et al. (2010)before
63Aragonite saturation stateOmega ArgYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
64Calcite saturation stateOmega CalYang, YanCalculated using seacarb after Nisumaa et al. (2010)before
65pHpHYang, YanCalculated using seacarb after Nisumaa et al. (2010)after, total scale
66Carbon dioxideCO2µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
67Fugacity of carbon dioxide (water) at sea surface temperature (wet air)fCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
68Partial pressure of carbon dioxide (water) at sea surface temperature (wet air)pCO2water_SST_wetµatmYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
69Bicarbonate ion[HCO3]-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
70Carbonate ion[CO3]2-µmol/kgYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
71Alkalinity, total, standard deviationAT std dev±Yang, YanCalculated using seacarb after Nisumaa et al. (2010)after
72Aragonite saturation stateOmega ArgYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
73Calcite saturation stateOmega CalYang, YanCalculated using seacarb after Nisumaa et al. (2010)after
Status:
Curation Level: Enhanced curation (CurationLevelC)
Size:
48164 data points

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