Search results for "algae"

showing 10 items of 403 documents

Algae in Biotechnological Processes

2018

As photoautotrophic organisms, algae possess all of the valuable features that determine their role as the primary producers in the biosphere. A wide range of tolerance based on their extremely efficient adaptation to biochemical processes, as well as the specific cellular structure of these organisms, when correlated with the ecological plasticity of microalgae in particular, predispose these biota to growing and developing under either laboratory or industrial conditions. Hence, the natural features of algae have opened wide the door for the multidirectional biotechnological use of these organisms, with a dynamically growing number of such applications fully supporting this thesis. Among …

0106 biological sciences0301 basic medicineCyanobacteriaPollutantbiologyPrimary producersPhycobiliproteinBiomassBiotabiology.organism_classification01 natural sciences03 medical and health sciences030104 developmental biologyAlgae010608 biotechnologyEcosystemBiochemical engineering
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Notulae to the Italian flora of algae, bryophytes, fungi and lichens: 4

2017

In this contribution, new data concerning bryophytes, fungi and lichens of the Italian flora are presented. It includes new records and confirmations for the bryophyte generaCampylopus,Paludella,Tortula, andConocephalum, the fungal generaAgonimia,Buelliella,Entorrhiza,Filicupula,Poronia, andSporisorium, the lichen generaCladonia,Dibaeis,Lasallia, andRhizocarpon.

0106 biological sciences0301 basic medicineFloraAscomycota Basidiomycota Bryidae Marchantiidae floristic dataPlant Science01 natural sciencesBryidae03 medical and health sciencesfloristic dataAlgaeAscomycotalcsh:BotanyBotanyLichenBryidaeEcology Evolution Behavior and SystematicsbiologyAscomycotaBasidiomycotaBasidiomycota030108 mycology & parasitologybiology.organism_classificationlcsh:QK1-989GeographyMarchantiidaeMarchantiidae010606 plant biology & botanyItalian Botanist
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Notulae to the Italian flora of algae, bryophytes, fungi and lichens: 7

2019

In this contribution, new data concerning algae, bryophytes, fungi, and lichens of the Italian flora are presented. It includes new records and confirmations for the algae genusChara, the bryophyte generaCephalozia,Conardia,Conocephalum,Didymodon,Sphagnum,Tetraplodon, andTortula, the fungal generaEndophyllum,Gymnosporangium,Microbotryum,Phragmidium, andPluteus, and the lichen generaCandelariella,Cladonia,Flavoplaca,Lichenothelia,Peltigera,Placolecis,Rinodina,Scytinium, andSolenopsora.

0106 biological sciences0301 basic medicineFloraCharophyceaeJungermanniidaeAscomycota; Basidiomycota; Bryidae; Charophyceae; JungermanniidaePlant Science010603 evolutionary biology01 natural sciencesBryidae03 medical and health sciencesAlgaeAscomycotalcsh:BotanyJungermanniidaeBotanyLichenAscomycota Basidiomycota Bryidae Charophyceae JungermanniidaeBryidaeEcology Evolution Behavior and SystematicsbiologyAscomycotaBasidiomycotaLichens taxonomy floraCharophyceaeBasidiomycota030108 mycology & parasitologybiology.organism_classificationlcsh:QK1-989
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Notulae to the Italian flora of algae, bryophytes, fungi and lichens: 3

2017

In this contribution, new data concerning bryophytes, fungi and lichens and of the Italian flora are presented. It includes new records and confirmations for the bryophyte generaDicranodontium,Fontinalis,LophocoleaandRiccia, the fungal genusDiplolaeviopsis, the lichen generaAgonimia,Cladonia,Protoparmelia,Rhizocarpon, andScytinium.

0106 biological sciences0301 basic medicineFloraJungermanniidaePlant Science01 natural sciencesBryidae03 medical and health sciencesfloristic dataAlgaeAscomycotalcsh:BotanyJungermanniidaeBotanyLichenBryidaeEcology Evolution Behavior and SystematicsbiologyAscomycotaEcology030108 mycology & parasitologybiology.organism_classificationlcsh:QK1-989Ascomycota Bryidae Marchantiidae Jungermanniidae floristic dataMarchantiidaeMarchantiidae010606 plant biology & botany
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The Water to Water Cycles in Microalgae.

2016

In oxygenic photosynthesis, light produces ATP plus NADPH via linear electron transfer, i.e. the in-series activity of the two photosystems: PSI and PSII. This process, however, is thought not to be sufficient to provide enough ATP per NADPH for carbon assimilation in the Calvin-Benson-Bassham cycle. Thus, it is assumed that additional ATP can be generated by alternative electron pathways. These circuits produce an electrochemical proton gradient without NADPH synthesis, and, although they often represent a small proportion of the linear electron flow, they could have a huge importance in optimizing CO2 assimilation. In Viridiplantae, there is a consensus that alternative electron flow comp…

0106 biological sciences0301 basic medicineLightPhysiology[SDV]Life Sciences [q-bio]Cell RespirationMehler reactionPlastoquinonePlant ScienceWater to water cyclesPhotosynthesis01 natural sciences03 medical and health scienceschemistry.chemical_compoundWater CycleMicroalgaePhotosynthesisElectrochemical gradientPhotosystemOrganellesbiologyChemistryElectron transportRuBisCOfood and beveragesCell BiologyGeneral MedicineElectron transport chain030104 developmental biologybiology.proteinBiophysicsPhotorespirationOxidoreductases010606 plant biology & botanyPlantcell physiology
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The Role of Phospholipase D and MAPK Signaling Cascades in the Adaption of Lichen Microalgae to Desiccation: Changes in Membrane Lipids and Phosphopr…

2016

Classically, lichen phycobionts are described as poikilohydric organisms able to undergo desiccation due to the constitutive presence of molecular protection mechanisms. However, little is known about the induction of cellular responses in lichen phycobionts during drying. The analysis of the lipid composition of the desiccated lichen microalga Asterochloris erici revealed the unusual accumulation of highly polar lipids (oligogalactolipids and phosphatidylinositol), which prevents the fusion of membranes during stress, but also the active degradation of cone-shaped lipids (monogalactosyldiacylglycerol and phosphatidylethanolamine) to stabilize membranes in desiccated cells. The level of pho…

0106 biological sciences0301 basic medicineMAPK/ERK pathwayLichensPhysiologyMAP Kinase Signaling SystemMembrane lipidsPlant ScienceBiology01 natural sciencesDesiccation toleranceDephosphorylation03 medical and health scienceschemistry.chemical_compoundMembrane LipidsChlorophytaOsmotic PressureMicroalgaePhospholipase DPhosphorylationProtein kinase ADehydrationPhospholipase DKinaseCell BiologyGeneral MedicinePhosphatidic acidPhosphoproteinsAdaptation Physiological030104 developmental biologychemistryBiochemistrylipids (amino acids peptides and proteins)010606 plant biology & botanyPlantcell physiology
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Microalgae, old sustainable food and fashion nutraceuticals.

2017

8 p.-1 fig.

0106 biological sciences0301 basic medicineOpinionbusiness.industryNatural resource economicsIndustrial scaleBioengineeringHealth benefits01 natural sciencesApplied Microbiology and BiotechnologyBiochemistryBiotechnology03 medical and health sciences030104 developmental biologyNutraceutical010608 biotechnologySustainable agricultureDietary SupplementsMicroalgaeAnimalsHumansBusinessSDG 2: End hunger achieve food security and improved nutrition and promote sustainable agricultureNutritive ValueBiotechnologyMicrobial biotechnology
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Mixotrophy in diatoms: Molecular mechanism and industrial potential

2021

Diatoms are microalgae well known for their high variability and high primary productivity, being responsible for about 20% of the annual global carbon fixation. Moreover, they are interesting as potential feedstocks for the production of biofuels and high-value lipids and carotenoids. Diatoms exhibit trophic flexibility and, under certain conditions, they can grow mixotrophically by combing photosynthesis and respiration. So far, only a few species of diatoms have been tested for their mixotrophic metabolism; in some cases, they produced more biomass and with higher lipid content when grown under this condition. Phaeodactylum tricornutum is the most studied diatom species for its mixotroph…

0106 biological sciences0301 basic medicinePhysiologyrespiration.photosynthesisPlant SciencePhotosynthesisSettore BIO/19 - Microbiologia Generale01 natural sciences03 medical and health sciencesBotanydiatomMicroalgaeGeneticsSettore BIO/04 - Fisiologia VegetaleBiomassPhaeodactylum tricornutumPhotosynthesisTrophic levelDiatomsBiomass (ecology)biologyfungiCarbon fixationmicroalgaeCell BiologyGeneral Medicinebiology.organism_classificationmetabolism030104 developmental biologyDiatomBiofuelBiofuelsmixotrophyMixotroph010606 plant biology & botanyPhysiologia Plantarum
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Flashing light emitting diodes (LEDs) induce proteins, polyunsaturated fatty acids and pigments in three microalgae

2020

As the periodic emission of light pulses by light emitting diodes (LEDs) is known to stimulate growth or induce high value biocompounds in microalgae, this flashing light regime was tested on growth and biochemical composition of the microalgae Nannochloropsis gaditana, Koliella antarctica and Tetraselmis chui. At low flashing light frequencies (e.g., 5 and 50 Hz, Duty cycle = 0.05), a strain-dependent growth inhibition and an accumulation of protein, polyunsaturated fatty acids, chlorophyll or carotenoids (lutein, β-carotene, violaxanthin and neoxanthin) was observed. In addition, a 4-day application of low-frequency flashing light to concentrated cultures increased productivities of eicos…

0106 biological sciences0301 basic medicinePigmentsLuteinBio Process EngineeringTotal lipidsSettore ING-IND/25 - Impianti ChimiciBioengineering01 natural sciencesApplied Microbiology and Biotechnology03 medical and health scienceschemistry.chemical_compoundPigment:Matematikk og Naturvitenskap: 400::Zoologiske og botaniske fag: 480::Plantefysiologi: 492 [VDP]NeoxanthinPulsed lightChlorophytaVDP::Teknologi: 500::Bioteknologi: 590010608 biotechnologyVDP::Technology: 500::Biotechnology: 590MicroalgaeFood scienceBiomassCarotenoidVLAGchemistry.chemical_classificationDuty cycleDuty cycle Pigments PUFA Pulsed light Total lipidsFatty Acidsfood and beveragesGeneral Medicine:Matematikk og Naturvitenskap: 400::Basale biofag: 470::Molekylærbiologi: 473 [VDP]Flashing030104 developmental biologychemistryChlorophyllvisual_artvisual_art.visual_art_mediumFatty Acids Unsaturated:Teknologi: 500::Bioteknologi: 590 [VDP]StramenopilesPUFABiotechnologyPolyunsaturated fatty acidViolaxanthin
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Marine Cryptophytes Are Great Sources of EPA and DHA

2017

Microalgae have the ability to synthetize many compounds, some of which have been recognized as a source of functional ingredients for nutraceuticals with positive health effects. One well-known example is the long-chain polyunsaturated fatty acids (PUFAs), which are essential for human nutrition. Eicosapentaenoic acid (EPA) and docosahexaenoic acid (DHA) are the two most important long-chain omega-3 (-3) PUFAs involved in human physiology, and both industries are almost exclusively based on microalgae. In addition, algae produce phytosterols that reduce serum cholesterol. Here we determined the growth rates, biomass yields, PUFA and sterol content, and daily gain of eight strains of marine…

0106 biological sciences0301 basic medicineTROPICAL AUSTRALIAN MICROALGAELINOLENIC ACIDrasvahapotPharmaceutical Sciencesterols01 natural scienceschemistry.chemical_compoundFunctional FoodDrug DiscoveryFood scienceBiomasslcsh:QH301-705.5Pharmacology Toxicology and Pharmaceutics (miscellaneous)functional foodsPOLYUNSATURATED FATTY-ACIDSchemistry.chemical_classificationnutraceuticalsFRESH-WATERPRODUCTIVITYbiologymicroalgae; polyunsaturated fatty acids; omega-3; omega-6; sterols; functional foods; nutraceuticalsCHOLESTEROLmicroalgaeNANNOCHLOROPSISPhytosterolsfood and beveragesEicosapentaenoic acidEicosapentaenoic AcidDocosahexaenoic acidFatty Acids Unsaturatedlipids (amino acids peptides and proteins)omega-3CryptophytaPolyunsaturated fatty acidpolyunsaturated fatty acidsDocosahexaenoic Acidsomega-6CHEMICAL-COMPOSITIONterveysvaikutteiset elintarvikkeetfatty acidsGas Chromatography-Mass SpectrometryArticleMARICULTURE03 medical and health sciencesNutraceuticalAlgaeFatty Acids Omega-6Fatty Acids Omega-31172 Environmental sciencessterolit010604 marine biology & hydrobiologyomega fatty acidsta1183ta1182GROWTH-RATEmikrolevätbiology.organism_classificationSterolomegarasvahapot030104 developmental biologyHuman nutrition416 Food Sciencelcsh:Biology (General)chemistry13. Climate actionDietary SupplementsStearidonic acidMarine Drugs; Volume 16; Issue 1; Pages: 3
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