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  • 1; 10; 11; 12; 13; 14; 15; 16; 17; 18; 19; 2; 20; 21; 3; 4; 5; 6; 7; 8; 9; Acid-cleaned suction system attached to a towed fish; Asterionellopsis spp.; Cerataulina spp. + Guinardia spp.; Ceratium lineatum; Ceratium pentagonum; Chaetoceros spp.; Corethron spp.; Date/Time of event; DEPTH, water; Detonula spp.; Diatoms, centrales; Dinophysis spp.; Ditylum spp.; Emiliania huxleyi; Emiliania huxleyi morphotypes; Eucampia spp.; Event label; Flagellates, naked; FLS-2015; FLS-2015-1; FLS-2015-10; FLS-2015-11; FLS-2015-12; FLS-2015-13; FLS-2015-14; FLS-2015-15; FLS-2015-16; FLS-2015-17; FLS-2015-18; FLS-2015-19; FLS-2015-2; FLS-2015-20; FLS-2015-21; FLS-2015-3; FLS-2015-4; FLS-2015-5; FLS-2015-6; FLS-2015-7; FLS-2015-8; FLS-2015-9; Foraminifera indeterminata; Forrest; Forrest_late_spring-2015; Gymnodinium spp.; Latitude of event; Leptocylindrus spp.; Licmophora spp.; Longitude of event; Nitzschia spp.; Oligotrichida + Cyclotrichiida; Patagonian fjords; Pennates, large; Pennates, medium; Pennates, small; Plagiogrammopsis spp.; Protoperidinium spp.; Pseudochattonella verruculosa; Pseudo-nitzschia spp.; Pyrophacus spp.; Rhizosolenia spp.; Scanning electron microscope (SEM); Scrippsiella spp.; Silicoflagellates indeterminata; Skeletonema spp.; South Pacific Ocean; Station label; Stephanopyxis turris; Striatella spp.; Syracosphaera spp.; Thalassionema spp.; Thalassiosira spp.; Tintinnid  (1)
  • A, As; Alkalinity, total; Animalia; Aragonite saturation state; B; Benthic animals; Benthos; Bicarbonate ion; Biomass; Biomass/Abundance/Elemental composition; C; Calcification/Dissolution; Calcification rate; Calcification rate of calcium carbonate; Calcite saturation state; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Cnidaria; Coast and continental shelf; Comau Fjord, Patagonia, Chile; CTD; D; Depth, description; DEPTH, water; Desmophyllum dianthus; Ed; Es; Event label; F, Fs, Lillihuapy, Lilliguapi; Field experiment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Growth/Morphology; Identification; LATITUDE; Length; Liliguapi; LONGITUDE; Method comment; Monitoring station; MONS; Near_SWALL; OA-ICC; Ocean Acidification International Coordination Centre; Oxygen; Pared_de_la_cruz; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); pH; Pirate_Cove; Respiration; Respiration rate, oxygen; Rio_Tambor; Salinity; Season; Single species; South Pacific; Species, unique identification; Species, unique identification (Semantic URI); Species, unique identification (URI); Station label; Temperate; Temperature, variability; Temperature, water; Temperature, water, standard deviation; Temperature logger, UTBI-001 TidbiT; Type; X-Telele; X-Telele_deep  (1)
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  • 1
    Publication Date: 2024-01-13
    Description: Physical and chemical parameters and associated coccolithophores species/Emiliania huxleyi morphotypes abundances and biovolume and co-occurring microplankton abundances recorded in southern Patagonia (~ 50-54 ºS) during the austral late-spring 2015 (at the end of november) and early-spring 2017 (at the end of september). Given the scarcity of data about coccolithophores in Patagonian waters and the impressive nearly a century spring-summer reports of Emiliania huxleyi blooms around the North Sea and Norwegian fjords system we want to observe what happens in this side of the planet. To do that, we collected seawater containing planktonic organisms at the surface and in some stations up to 75 m depth. Inverted microscopy along with SEM analyses were used to identify and quantify the planktonic items.
    Keywords: 1; 10; 11; 12; 13; 14; 15; 16; 17; 18; 19; 2; 20; 21; 3; 4; 5; 6; 7; 8; 9; Acid-cleaned suction system attached to a towed fish; Asterionellopsis spp.; Cerataulina spp. + Guinardia spp.; Ceratium lineatum; Ceratium pentagonum; Chaetoceros spp.; Corethron spp.; Date/Time of event; DEPTH, water; Detonula spp.; Diatoms, centrales; Dinophysis spp.; Ditylum spp.; Emiliania huxleyi; Emiliania huxleyi morphotypes; Eucampia spp.; Event label; Flagellates, naked; FLS-2015; FLS-2015-1; FLS-2015-10; FLS-2015-11; FLS-2015-12; FLS-2015-13; FLS-2015-14; FLS-2015-15; FLS-2015-16; FLS-2015-17; FLS-2015-18; FLS-2015-19; FLS-2015-2; FLS-2015-20; FLS-2015-21; FLS-2015-3; FLS-2015-4; FLS-2015-5; FLS-2015-6; FLS-2015-7; FLS-2015-8; FLS-2015-9; Foraminifera indeterminata; Forrest; Forrest_late_spring-2015; Gymnodinium spp.; Latitude of event; Leptocylindrus spp.; Licmophora spp.; Longitude of event; Nitzschia spp.; Oligotrichida + Cyclotrichiida; Patagonian fjords; Pennates, large; Pennates, medium; Pennates, small; Plagiogrammopsis spp.; Protoperidinium spp.; Pseudochattonella verruculosa; Pseudo-nitzschia spp.; Pyrophacus spp.; Rhizosolenia spp.; Scanning electron microscope (SEM); Scrippsiella spp.; Silicoflagellates indeterminata; Skeletonema spp.; South Pacific Ocean; Station label; Stephanopyxis turris; Striatella spp.; Syracosphaera spp.; Thalassionema spp.; Thalassiosira spp.; Tintinnid
    Type: Dataset
    Format: text/tab-separated-values, 1131 data points
    Location Call Number Expected Availability
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  • 2
    Publication Date: 2024-03-15
    Description: The stratified Chilean Comau Fjord sustains a dense population of the cold-water coral (CWC) Desmophyllum dianthus in aragonite supersaturated shallow and aragonite undersaturated deep water. This provides a rare opportunity to evaluate CWC fitness trade-offs in response to physico-chemical drivers and their variability. Here, we combined year-long reciprocal transplantation experiments along natural oceanographic gradients with an in situ assessment of CWC fitness. Following transplantation, corals acclimated fast to the novel environment with no discernible difference between native and novel (i.e. cross-transplanted) corals, demonstrating high phenotypic plasticity. Surprisingly, corals exposed to lowest aragonite saturation (Omega arag 〈 1) and temperature (T 〈 12.0 °C), but stable environmental conditions, at the deep station grew fastest and expressed the fittest phenotype. We found an inverse relationship between CWC fitness and environmental variability and propose to consider the high frequency fluctuations of abiotic and biotic factors to better predict the future of CWCs in a changing ocean.
    Keywords: A, As; Alkalinity, total; Animalia; Aragonite saturation state; B; Benthic animals; Benthos; Bicarbonate ion; Biomass; Biomass/Abundance/Elemental composition; C; Calcification/Dissolution; Calcification rate; Calcification rate of calcium carbonate; Calcite saturation state; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Cnidaria; Coast and continental shelf; Comau Fjord, Patagonia, Chile; CTD; D; Depth, description; DEPTH, water; Desmophyllum dianthus; Ed; Es; Event label; F, Fs, Lillihuapy, Lilliguapi; Field experiment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Growth/Morphology; Identification; LATITUDE; Length; Liliguapi; LONGITUDE; Method comment; Monitoring station; MONS; Near_SWALL; OA-ICC; Ocean Acidification International Coordination Centre; Oxygen; Pared_de_la_cruz; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); pH; Pirate_Cove; Respiration; Respiration rate, oxygen; Rio_Tambor; Salinity; Season; Single species; South Pacific; Species, unique identification; Species, unique identification (Semantic URI); Species, unique identification (URI); Station label; Temperate; Temperature, variability; Temperature, water; Temperature, water, standard deviation; Temperature logger, UTBI-001 TidbiT; Type; X-Telele; X-Telele_deep
    Type: Dataset
    Format: text/tab-separated-values, 20157 data points
    Location Call Number Expected Availability
    BibTip Others were also interested in ...
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