Search results for "SEAWATER"

showing 10 items of 386 documents

Iodine emissions from the sea ice of the Weddell Sea

2012

Iodine compounds were measured above, below and within the sea ice of the Weddell Sea during a cruise in 2009, to make progress in elucidating the mechanism of local enhancement and volatilisation of iodine. I<sub>2</sub> mixing ratios of up to 12.4 pptv were measured 10 m above the sea ice, and up to 31 pptv was observed above surface snow on the nearby Brunt Ice Shelf – large amounts. Atmospheric IO of up to 7 pptv was measured from the ship, and the average sum of HOI and ICl was 1.9 pptv. These measurements confirm the Weddell Sea as an iodine hotspot. Average atmospheric concentrations of CH<sub>3</sub>I, C<sub>2</sub>H<sub>5</sub>I, CH&l…

0106 biological sciencesAtmospheric Science010504 meteorology & atmospheric sciencesIodidechemistry.chemical_element010501 environmental sciencesIodine01 natural sciencesIce shelflcsh:Chemistrychemistry.chemical_compoundSea iceIodate0105 earth and related environmental scienceschemistry.chemical_classificationgeographygeography.geographical_feature_category010604 marine biology & hydrobiologyFirnSnowlcsh:QC1-999ChemistryOceanographylcsh:QD1-999chemistry13. Climate actionSeawaterlcsh:PhysicsAtmospheric Chemistry and Physics
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Impact of high pCO2 on shell structure of the bivalve Cerastoderma edule

2016

Raised atmospheric emissions of carbon dioxide (CO2) result in an increased ocean pCO2 level and decreased carbonate saturation state. Ocean acidification potentially represents a major threat to calcifying organisms, specifically mollusks. The present study focuses on the impact of elevated pCO2 on shell microstructural and mechanical properties of the bivalve Cerastoderma edule. The mollusks were collected from the Baltic Sea and kept in flow-through systems at six different pCO2 levels from 900 μatm (control) to 24,400 μatm. Extreme pCO2 levels were used to determine the effects of potential leaks from the carbon capture and sequestration sites where CO2 is stored in sub-seabed geologica…

0106 biological sciencesCerastoderma edule010504 meteorology & atmospheric sciencesCarbonatesShell (structure)MineralogyAquatic ScienceOceanography01 natural scienceschemistry.chemical_compoundAnimal ShellsMollusc shellAnimalsSeawaterCardiidae0105 earth and related environmental sciencesbiology010604 marine biology & hydrobiologyOcean acidificationGeneral MedicineCarbon DioxideHydrogen-Ion Concentrationbiology.organism_classificationPollutionchemistryCarbon dioxideCarbonateSeawaterNorth SeaSaturation (chemistry)Environmental MonitoringMarine Environmental Research
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Ocean Acidification and the Loss of Phenolic Substances in Marine Plants

2012

Rising atmospheric CO(2) often triggers the production of plant phenolics, including many that serve as herbivore deterrents, digestion reducers, antimicrobials, or ultraviolet sunscreens. Such responses are predicted by popular models of plant defense, especially resource availability models which link carbon availability to phenolic biosynthesis. CO(2) availability is also increasing in the oceans, where anthropogenic emissions cause ocean acidification, decreasing seawater pH and shifting the carbonate system towards further CO(2) enrichment. Such conditions tend to increase seagrass productivity but may also increase rates of grazing on these marine plants. Here we show that high CO(2) …

0106 biological sciencesCymodocea nodosaved/biology.organism_classification_rank.speciesCarbonatesSecondary MetabolismMarine and Aquatic Scienceslcsh:MedicinePlant Science01 natural scienceschemistry.chemical_compoundGlobal Change Ecologylcsh:SciencePhysiological EcologyMultidisciplinaryAlismatalesbiologyEcologyEcologyPlant BiochemistryMarine EcologyOcean acidificationPotamogetonaceaeHydrogen-Ion ConcentrationSeagrassProductivity (ecology)ItalyCarbon dioxideCoastal EcologyResearch ArticleOceans and SeasMarine Biology010603 evolutionary biologyStatistics NonparametricHydrothermal VentsPhenolsPlant-Environment InteractionsTerrestrial plantSeawater14. Life underwaterocean acidification climate change mediterranean sea seagrassBiologyAnalysis of VarianceChemical EcologyMarylandved/biology010604 marine biology & hydrobiologyPlant Ecologyfungilcsh:R15. Life on landCarbon Dioxidebiology.organism_classificationSalinitychemistry13. Climate actionEarth Scienceslcsh:QRuppia maritima
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Transgenerational acclimation to seawater acidification in the Manila clam Ruditapes philippinarum: Preferential uptake of metabolic carbon

2017

Abstract Ocean acidification may interfere with the calcifying physiology of marine bivalves. Therefore, understanding their capacity for acclimation and adaption to low pH over multiple generations is crucial to make predictions about the fate of this economically and ecologically important fauna in an acidifying ocean. Transgenerational exposure to an acidification scenario projected by the end of the century (i.e., pH 7.7) has been shown to confer resilience to juvenile offspring of the Manila clam, Ruditapes philippinarum. However, whether, and to what extent, this resilience can persist into adulthood are unknown and the mechanisms driving transgenerational acclimation remain poorly un…

0106 biological sciencesEnvironmental Engineering010504 meteorology & atmospheric sciencesAcclimatizationRuditapesBiology01 natural sciencesAcclimatizationCondition indexTotal inorganic carbonDissolved organic carbonAnimalsEnvironmental ChemistryJuvenileSeawaterWaste Management and Disposal0105 earth and related environmental sciencesEcology010604 marine biology & hydrobiologyWater PollutionOcean acidificationCarbon DioxideHydrogen-Ion Concentrationbiology.organism_classificationPollutionCarbonBivalviaSeafoodSeawaterEnvironmental MonitoringScience of The Total Environment
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Sodium provides unique insights into transgenerational effects of ocean acidification on bivalve shell formation

2016

Abstract Ocean acidification is likely to have profound impacts on marine bivalves, especially on their early life stages. Therefore, it is imperative to know whether and to what extent bivalves will be able to acclimate or adapt to an acidifying ocean over multiple generations. Here, we show that reduced seawater pH projected for the end of this century (i.e., pH 7.7) led to a significant decrease of shell production of newly settled juvenile Manila clams, Ruditapes philippinarum. However, juveniles from parents exposed to low pH grew significantly faster than those from parents grown at ambient pH, exhibiting a rapid transgenerational acclimation to an acidic environment. The sodium compo…

0106 biological sciencesEnvironmental Engineering010504 meteorology & atmospheric sciencesEcology010604 marine biology & hydrobiologySodiumchemistry.chemical_elementOcean acidificationRuditapesBiologybiology.organism_classification01 natural sciencesPollutionAcclimatizationTransgenerational epigeneticschemistryEnvironmental ChemistrySeawaterBivalve shellWaste Management and DisposalHomeostasis0105 earth and related environmental sciencesScience of The Total Environment
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Bivalve shell formation in a naturally CO2-enriched habitat: Unraveling the resilience mechanisms from elemental signatures

2018

Abstract Marine bivalves inhabiting naturally pCO2-enriched habitats can likely tolerate high levels of acidification. Consequently, elucidating the mechanisms behind such resilience can help to predict the fate of this economically and ecologically important group under near-future scenarios of CO2-driven ocean acidification. Here, we assess the effects of four environmentally realistic pCO2 levels (900, 1500, 2900 and 6600 μatm) on the shell production rate of Mya arenaria juveniles originating from a periodically pCO2-enriched habitat (Kiel Fjord, Western Baltic Sea). We find a significant decline in the rate of shell growth as pCO2 increases, but also observe unchanged shell formation r…

0106 biological sciencesEnvironmental Engineering010504 meteorology & atmospheric sciencesHealth Toxicology and Mutagenesismedia_common.quotation_subjectFjord01 natural sciencesFluid chemistryEnvironmental ChemistryLimited capacityBivalve shell0105 earth and related environmental sciencesmedia_commongeographygeography.geographical_feature_categoryEcology010604 marine biology & hydrobiologyPublic Health Environmental and Occupational HealthOcean acidificationGeneral MedicineGeneral ChemistryPollutionHabitatEnvironmental scienceSeawaterPsychological resilienceChemosphere
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Warming-related shifts in the distribution of two competing coastal wrasses

2016

13 páginas, 5 figuras , 1 tabla, 1 apéndice con tres tablas y una figura

0106 biological sciencesFood ChainRange (biology)[SDE.MCG]Environmental Sciences/Global ChangesCorisThalassoma pavoDistributional shiftsWrasseInterspecific interactionsAquatic ScienceOceanography010603 evolutionary biology01 natural sciencesGlobal WarmingWrassesMediterranean seaAbundance (ecology)Aquatic scienceAnimalsSeawater14. Life underwaterManyGLMDemographyTemperaturesDistributional shiftbiologyEcology010604 marine biology & hydrobiologyGlobal warmingFishesTemperatureGeneral MedicineInterspecific competitionbiology.organism_classificationPollutionPerciformesCoastal waterOceanographyGeographyFish13. Climate actionMediterranean seaCoastal watersInterspecific interactionWarmingEnvironmental Monitoring
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The response of cultured meiofaunal and benthic foraminiferal communities to lead exposure: Results from mesocosm experiments

2018

Lead (Pb) has been regarded as a very toxic element that poses a serious threat to biota. A mesocosm experiment is performed to assess the influence of Pb on meiofaunal (metazoans within 45-500 µm) and benthic foraminiferal (protozoans) communities. To this end, sediments bearing such communities are incubated in mesocosms, exposed to different levels of Pb in seawater, and monitored for up to eight weeks. Concentrations of Pb below 1 ppm in water do not promote a significant increase of this metal in sediments. Relatively high concentrations of Pb seem to affect meiofaunal and benthic foraminiferal communities by reducing their richness or diversity, and the abundance of the most sensitive…

0106 biological sciencesGeologic SedimentsHealth Toxicology and MutagenesisMeiobenthosmeiofauna; foraminifera; lead; mesocosm; sedimentForaminifera010501 environmental sciences01 natural sciencesMesocosmForaminiferaMediterranean SeaEnvironmental ChemistrySeawater0105 earth and related environmental sciencesPollutantDose-Response Relationship Drugbiology010604 marine biology & hydrobiologySedimentBiotaBiodiversityModels Theoreticalbiology.organism_classificationmesocosmsedimentLeadBenthic zoneEnvironmental chemistrymeiofaunaEnvironmental scienceSeawaterWater Pollutants ChemicalEnvironmental MonitoringEnvironmental Toxicology and Chemistry
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Driving factors of dinoflagellate cyst distribution in surface sediments of aMediterranean lagoon with limited access to the sea

2016

International audience; Seasonal distribution of dinoflagellate cysts were studied at five surface sediment study stations in Ghar El MelhLagoon (GML) (Tunisia) in relation to physicochemical parameters and phytoplankton abundance in the watercolumn. At least sixteen dinocyst types were identified, dominated mainly by Protoperidinium spp., Scrippsiellatrochoidea complex, Lingulodinum machaerophorum, Alexandrium spp. and Gymnodinium spp., along with manyround brown cysts. Cyst abundance ranged from 0 to 229 g−1 dry sediment. No significant differences in cyst distributionwere found among stations, though a significant variation was observed among seasons with cyst dominancein autumn. No sign…

0106 biological sciencesGeologic SedimentsTunisia010504 meteorology & atmospheric sciencesGhar El Melh lagoonAquatic ScienceBiologyOceanography01 natural sciences[ SDE ] Environmental SciencesMediterranean seaWater columnPhytoplanktonparasitic diseasesMediterranean SeaAnimalsDinocystDominance (ecology)Seawater14. Life underwaterGymnodiniumAbiotic factors0105 earth and related environmental sciencesEcology010604 marine biology & hydrobiologyDinoflagellate cystsDinoflagellateSedimentbiology.organism_classificationPollutionOceanography[SDE]Environmental SciencesPhytoplanktonDinoflagellidaSeasonsEnvironmental Monitoring
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Are mussels able to distinguish underwater sounds? Assessment of the reactions of Mytilus galloprovincialis after exposure to lab-generated acoustic …

2016

This study examined the effects of lab-generated acoustic signals on the behaviour and biochemistry of Mediterranean mussels (Mytilus galloprovincialis). The experiment was carried out in a tank equipped with a video-recording system using six groups of five mussels exposed to five acoustic treatments (each treatment was replicated three times) for 30 min. The acoustic signals, with a maximum sound pressure level of 150 dB rms re 1 μPa, differed in frequency range as follows: low (0.1–5 kHz), mid-low (5–10 kHz), mid (10–20 kHz), mid-high (20–40 kHz) and high (40–60 kHz). The exposure to sweeps did not produce any significant changes in the mussels' behaviour. Conversely, the specimens expos…

0106 biological sciencesHemocytesPhysiologyVideo RecordingMytilus galloprovincialiLow frequency band010501 environmental sciencesAcoustic signal01 natural sciencesBiochemistryAnimal scienceBiochemical streHemolymphAnimalsHSP70 Heat-Shock ProteinsSeawaterBehaviourUnderwaterSound pressureMolecular BiologyEcosystem0105 earth and related environmental sciencesMytilusVideo recordingBehavior Animalbiology010604 marine biology & hydrobiologyBiochemical stressProteinsAcousticsbiology.organism_classificationMytilusFisheryGlucoseAcoustic StimulationAcetylcholinesteraseFish <Actinopterygii>Comparative Biochemistry and Physiology Part A: Molecular &amp; Integrative Physiology
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