Search results for "eutrophication"

showing 10 items of 188 documents

2019

Abstract Eutrophication (as an increase in total phosphorus [TP]) increases harmful algal blooms and reduces the proportion of high-quality phytoplankton in seston and the content of ω-3 long-chain polyunsaturated fatty acids (eicosapentaenoic acid [EPA] and docosahexaenoic acid [DHA]) in fish. However, it is not well-known how eutrophication affects the overall nutritional value of phytoplankton. Therefore, we studied the impact of eutrophication on the production (as concentration; μg L−1) and content (μg mg C−1) of amino acids, EPA, DHA, and sterols, i.e., the nutritional value of phytoplankton in 107 boreal lakes. The lakes were categorized in seven TP concentration categories ranging f…

2. Zero hungerBiomass (ecology)ChemistryfungiSeston010501 environmental sciences15. Life on land01 natural sciencesBiochemistryZooplanktonEicosapentaenoic acidAlgal bloom6. Clean water03 medical and health sciences0302 clinical medicine13. Climate actionEnvironmental chemistryEpilimnionPhytoplanktonlipids (amino acids peptides and proteins)030212 general & internal medicineEutrophication0105 earth and related environmental sciencesGeneral Environmental ScienceEnvironmental Research
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Deep-Sea Bioluminescence Blooms after Dense Water Formation at the Ocean Surface

2013

The deep ocean is the largest and least known ecosystem on Earth. It hosts numerous pelagic organisms, most of which are able to emit light. Here we present a unique data set consisting of a 2.5-year long record of light emission by deep-sea pelagic organisms, measured from December 2007 to June 2010 at the ANTARES underwater neutrino telescope in the deep NW Mediterranean Sea, jointly with synchronous hydrological records. This is the longest continuous time-series of deep-sea bioluminescence ever recorded. Our record reveals several weeks long, seasonal bioluminescence blooms with light intensity up to two orders of magnitude higher than background values, which correlate to changes in th…

:Desenvolupament humà i sostenible::Medi ambient [Àrees temàtiques de la UPC]0106 biological sciencesDYNAMICSSalinityANTARES NEUTRINO TELESCOPE010504 meteorology & atmospheric sciencesNaturwissenschaftliche Fakultät -ohne weitere Spezifikation-IMPACTOcean CirculationPsychologie appliquéelcsh:MedicineCell CountAstronomical SciencesOceanografiaAstrophysicsOceanographyEcologia marina01 natural sciencesBathyal zoneNEUTRINO TELESCOPESMediterranean seaOceanslcsh:Sciencedeep-sea bioluminescenceantaresEcosistemes marinsMultidisciplinaryCLIMATE-CHANGEEcologyMediterrània (Mar)Mediterranean RegionEcologyMarine EcologyMEDITERRANEAN SEAEutrophicationBiogeochemistrySciences bio-médicales et agricolesDeep seaANTARES NEUTRINO TELESCOPE; MEDITERRANEAN SEA; INTERANNUAL VARIABILITYOceanographyLight emissionSeasonsddc:500BioluminescenceINTERANNUAL VARIABILITYBiologieResearch ArticleATLANTICGULFOceans and Seas[PHYS.PHYS.PHYS-BIO-PH]Physics [physics]/Physics [physics]/Biological Physics [physics.bio-ph]Marine Biology-ConvectionDeep seaFluorescenceMicrobial EcologyCarbon CycleMarine ecologyAstroparticle PhysicsMediterranean SeaAnimalsWater ColumnEcosystemSeawater14. Life underwaterSalinitatNeutrinosBiology[SDU.STU.OC]Sciences of the Universe [physics]/Earth Sciences/Oceanography0105 earth and related environmental sciencesMarine planktonBACKGROUND LIGHT010604 marine biology & hydrobiologyBiological Oceanographylcsh:RPlànctonPelagic zoneMarine and aquatic sciencesEarth sciencesLight intensitySea waterGeochemistry13. Climate actionCONVECTIONFISICA APLICADALuminescent MeasurementsAigua de marEnvironmental sciencelcsh:QEutrophicationPhysical Oceanography
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Phytoplankton structure in different lake types in central Finland

1986

Phyloplankton structure and its relation to physical and chemical properties of the water was studied in 58 central Finnish lakes. The biomass ranged from 0.2 to 14.2 g m−3 and the number of taxa per sample ranged from 33 to 152. The lakes were grouped into 5 types according to their trophic state: eutrophic, dyseutrophic, mesotrophic, oligotrophic, and acid oligotrophic lakes. The average biomass in eutrophic lakes was 5.57 g m−3, in dyseutrophic 3.54 g m−3, 1.23 g m−3 in mesotrophic, 0.52 g m−3 in oligotrophic and 0.39 g −3 in acid oligotrophic lakes. The average number of taxa per sample in the corresponding lake types were 109. 1, 79.3, 97.9, 90.9 and 43.8, respectively. The phytoplankt…

Algal groupBiomass (ecology)AlgaebiologyEcologyPhytoplanktonEnvironmental scienceGreen algaeEutrophicationbiology.organism_classificationEcology Evolution Behavior and SystematicsCommunity typesTrophic levelEcography
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Effects of eutrophication and organic loading on the occurrence of profundal harpacticoids in a lake in southern Finland.

1992

Harpacticoids made up 19 and 30% of the meiobenthos proper by number and 39 and 55% by biomass at maximum depths and a depth of 20 m, respectively, in Lake Paijanne. Harpacticoids accounted for higher proportions of the total meiobenthos in oligotrophic and unpolluted areas than in polluted areas. Seven species were identified, with Canthocamptus staphylinus confined to semi-lotic areas influenced by organic pollution from a pulp mill. Other species exhibited somewhat different distributions in oligotrophic and mesotrophic areas. Harpacticoid densities were most closely correlated with oxygen content and phytoplankton biomass, and correlations with environmental values were closer at maximu…

Biomass (ecology)CanthocamptusEcologyMeiobenthosGeneral MedicineManagement Monitoring Policy and LawBiologySedimentationbiology.organism_classificationPollutionDissolved organic carbonProfundal zoneWater pollutionEutrophicationGeneral Environmental ScienceEnvironmental monitoring and assessment
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Spatial distribution of phytoplankton in the Gulf of Riga during spring and summer stages

1999

Distribution patterns of chlorophyll a, phytoplankton species and biomass were studied in the Gulf of Riga, one of the most eutrophicated areas of the Baltic Sea. Quasi-synoptic measurements were carried out during four seasonal stages (spring bloom 1995, early-summer stage 1994, cyanobacterial bloom 1994, and late summer stage 1993). For each stage, common factor analysis was used to simplify the highly correlated patterns of nutrients, salinity, temperature and the depth of mixed layer. Obtained latent variables were used to explain spatial distribution of phytoplankton. Generally, the distribution of phytoplankton variables followed closely the patterns of nutrient rich fresh water. Duri…

Biomass (ecology)Chlorophyll aAquatic ScienceBiologySpring bloomOceanographyAphanizomenonbiology.organism_classificationchemistry.chemical_compoundOceanographychemistryPhytoplanktonPicoplanktonBloomEutrophicationEcology Evolution Behavior and SystematicsJournal of Marine Systems
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Phytoplankton distribution along trophic gradients within and among reservoirs in Catalonia (Spain)

2008

SUMMARY 1. Longitudinal gradients in the epilimnetic waters of stratified reservoirs provide a useful database to study changing environmental conditions. The spatial distribution, assemblage structure and specific adaptations of phytoplankton assemblages can be analysed along these gradients over short time scales. 2. Four reservoirs with a similar typology, located along an altitudinal gradient in the same eco-region, were sampled along their longitudinal axes. In total, 19 sampling stations provided a trophic spectrum, ranging from oligo-mesotrophy to hypertrophy, which was quantified by calculating the trophic state index of each sampling station in the four reservoirs. 3. Several patte…

Biomass (ecology)EcologyAbundance (ecology)PhytoplanktonSettore BIO/03 - Botanica Ambientale E ApplicataTrophic state indexAquatic ScienceBiologycanyon-shaped reservoirs ecological gradients eutrophication phytoplankton structure trophic state indexEutrophicationSpatial distributionHydrobiologyTrophic level
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Differential attributes of phytoplankton across the trophic gradient: a conceptual landscape with gaps

1998

I provide a conceptual landscape of attributes of phytoplankton related to trophic gradients, by reviewing 69 papers and books on eutrophication, with special reference to the ecology of the phytoplankton. Forty-eight ecological variables such as total phosphorus and Chl-a, are used, each related to the trophic gradient measured. They are subdivided in structural features of the phytoplankton, functional or dynamic features, and other relevant properties of the plankton community. Only twelve of the forty-eight variables are statistically related to trophic gradient. In most cases, variability across a trophic gradient is only nominally described. Less attention is given to functional, stru…

Biomass (ecology)VariablesEcologymedia_common.quotation_subjectEcology (disciplines)PhytoplanktonEcosystemBiologyPlanktonEutrophicationTrophic levelmedia_common
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Vegetation Change in Peatland Buffers as an Indicator of Active Areas of Run-On from Forestry

2010

Our aim in this study was to evaluate whether coverage change in the vegetation of a forestry buffer wetland can be used to reveal a possible increase in nutrients. To achieve this, we followed changes in vegetation on two peatland buffers, and biomass with nitrogen content in one of them. Nutrient concentrations were periodically lower in the water inflow than in the outflow. Flooding caused a species change in favor of flood-tolerant grasses and Sphagna, but this species composition did not indicate a higher trophic level. Nitrogen content in the reference site's original surface peat layer, which was rich in woody remains, was higher than that of the newly formed, more acidic Sphagnum pe…

Biomass (ecology)geographyPeatBuffer zonegeography.geographical_feature_categoryWater flowfungifood and beveragesWetlandForestryPlant ScienceVegetationSwampEnvironmental sciencesense organsskin and connective tissue diseasesEutrophicationEcology Evolution Behavior and SystematicsAnnales Botanici Fennici
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Ecological indicators – Schrödinger Ratio

2008

Biomass Entropy Entropy production Exergy Eutrophication Lake ecosystems Negentropy Nonequilibrium systems Phytoplankton RespirationEntropyRespirationPhytoplanktonLake ecosystemsBiomassExergyEutrophicationNegentropyEntropy productionNonequilibrium systems
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Lacustrine profundal meiobenthos as an environmental indicator

1992

Organic loading and eutrophy is indicated at profundal depths by large numbers of resting copepodid stages of cyclopoid copepods, by the occurrence of the naidid oligochaete species, Amphichaeta leydigii and Specariajosinae, and the harpacticoid species Canthocamptus staphylinus, and by a low meiobenthos/ macrobenthos biomass ratio. An oligotrophic environment is indicated by the occurrence of the aeolo-somatid oligochaetes Aeolosoma quaternarium, A. hemprichi and Rheomorpha neiswestnovae, the naidid oligochaete Chaetogaster langi and the harpacticoid species Attheyella crassa and a high meiobenthos/ macrobenthos biomass ratio.

CanthocamptusBiomass (ecology)biologyChaetogasterEcologyMacrobenthosMeiobenthosProfundal zonebiology.organism_classificationEutrophicationBioindicator
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