Search results for "Ocean Acidification"

showing 10 items of 135 documents

Plant and sediment properties in seagrass meadows from two Mediterranean CO2 vents: Implications for carbon storage capacity of acidified oceans

2019

Abstract Assessing the status of important carbon sinks such as seagrass meadows is of primary importance when dealing with potential climate change mitigation strategies. This study examined plant and sediment properties in seagrass meadows (Cymodocea nodosa (Ucria) Asch.) from two high pCO2–low pH Mediterranean vent systems, located at Milos (Greece) and Vulcano (Italy) Islands, providing insights on carbon storage potential in future acidified oceans. Contrary to what has been suggested, carbon content (both inorganic and organic) and its surficial accumulation decreased at high pCO2–low pH in comparison with controls. The decrease in inorganic carbon may result from the higher solubilit…

0106 biological sciencesCarbon sequestrationSettore BIO/07 - EcologiaCymodocea nodosaAquatic ScienceCarbon sequestrationOceanography010603 evolutionary biology01 natural sciencesCarbon sinkBlue carbonTotal inorganic carbonLow pHTotal organic carbonBlue carbonCymodocea nodosabiology010604 marine biology & hydrobiologyOcean acidificationCarbon sinkOcean acidificationGeneral Medicinebiology.organism_classificationPollutionSeagrassEnvironmental chemistryEnvironmental science
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Seagrass ecosystem response to long-term high CO2 in a Mediterranean volcanic vent

2014

We examined the long-term effect of naturally acidified water on a Cymodocea nodosa meadow growing at a shallow volcanic CO2 vent in Vulcano Island (Italy). Seagrass and adjacent unvegetated habitats growing at a low pH station (pH = 7.65 ± 0.02) were compared with corresponding habitats at a control station (pH = 8.01 ± 0.01). Density and biomass showed a clear decreasing trend at the low pH station and the below- to above-ground biomass ratio was more than 10 times lower compared to the control. C content and δ13C of leaves and epiphytes were significantly lower at the low pH station. Photosynthetic activity of C. nodosa was stimulated by low pH as seen by the significant increase in Chla…

0106 biological sciencesCarbon sequestrationSettore BIO/07 - EcologiaCymodocea nodosaPHOcean acidification Carbon cycling Carbon sequestration Metabolism pH PhotosynthesisAquatic ScienceOceanography010603 evolutionary biology01 natural sciencesElectron TransportMagnoliopsidaNutrientHydrothermal VentsMediterranean Sea14. Life underwaterBiomassPhotosynthesisEcosystemCarbon cyclingBiomass (ecology)Analysis of VariancebiologyEcology010604 marine biology & hydrobiologyOcean acidificationPrimary productionOcean acidificationGeneral Medicine15. Life on landCarbon DioxideHydrogen-Ion Concentrationbiology.organism_classificationPollutionCarbonSeagrassMetabolismAgronomyProductivity (ecology)13. Climate actionEnvironmental scienceEpiphyte
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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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Behavioural responses of fish groups exposed to a predatory threat under elevated CO2

2019

Most of the studies dealing with the effects of ocean acidification (OA) on fish behaviour tested individuals in isolation, even when the examined species live in shoals in the wild. Here we evaluated the effects of elevated CO2 concentrations (i.e. ∼900 μatm) on the shelter use and group cohesion of the gregarious damselfish Chromis viridis using groups of sub-adults exposed to a predatory threat. Results showed that, under predatory threat, fish reared at elevated CO2 concentrations displayed a risky behaviour (i.e. decreased shelter use), whereas their group cohesion was unaffected. Our findings add on increasing evidence to account for social dynamics in OA experiments, as living in gro…

0106 biological sciencesChromis viridisGroup fishbiologyCoral reef fish010604 marine biology & hydrobiologyOcean acidificationZoologyPredationGeneral MedicineAquatic ScienceOceanographybiology.organism_classificationCoral reef fish010603 evolutionary biology01 natural sciencesPollutionPredationGroup cohesivenessShelter useFish <Actinopterygii>DamselfishGlobal changeRisk assessment
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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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Ocean acidification impairs vermetid reef recruitment

2014

Vermetids form reefs in sub-tropical and warm-temperate waters that protect coasts from erosion, regulate sediment transport and accumulation, serve as carbon sinks and provide habitat for other species. The gastropods that form these reefs brood encapsulated larvae; they are threatened by rapid environmental changes since their ability to disperse is very limited. We used transplant experiments along a natural CO2 gradient to assess ocean acidification effects on the reef-building gastropod Dendropoma petraeum. We found that although D. petraeum were able to reproduce and brood at elevated levels of CO2, recruitment success was adversely affected. Long-term exposure to acidified conditions…

0106 biological sciencesDendropoma petraeumGeologic Sediments010504 meteorology & atmospheric sciencesOceans and SeasGastropoda01 natural sciencesArticleCLIMATE-CHANGE ECOLOGYWater MovementsAnimals14. Life underwaterReefMollusca0105 earth and related environmental sciencesgeographyMultidisciplinarygeography.geographical_feature_categorybiologyEcologyCoral Reefs010604 marine biology & hydrobiologyfungiECOSYSTEM ECOLOGYWaterOcean acidificationCoral reefCarbon DioxideHydrogen-Ion Concentrationbiology.organism_classificationBroodFisheryHabitatEnvironmental scienceECOSYSTEM ECOLOGY; CLIMATE-CHANGE ECOLOGYEnvironmental issues with coral reefsgeographic locationsScientific Reports
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2016

AbstractOcean acidification is predicted to have detrimental effects on many marine organisms and ecological processes. Despite growing evidence for direct impacts on specific species, few studies have simultaneously considered the effects of ocean acidification on individuals (e.g. consequences for energy budgets and resource partitioning) and population level demographic processes. Here we show that ocean acidification increases energetic demands on gastropods resulting in altered energy allocation, i.e. reduced shell size but increased body mass. When scaled up to the population level, long-term exposure to ocean acidification altered population demography, with evidence of a reduction i…

0106 biological sciencesEcophysiologyeducation.field_of_studyMultidisciplinaryPopulation levelReproductive successEcology010604 marine biology & hydrobiologyPopulationOcean acidificationBiology010603 evolutionary biology01 natural sciencesGene flowGenetic drift13. Climate action14. Life underwaterAdaptationeducationScientific Reports
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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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