Search results for "Fungi"

showing 10 items of 3688 documents

Maxillary necrosis by mucormycosis : a case report and literature review

2007

The maxilla rarely undergoes necrosis due to its rich vascularity. Maxillary necrosis can occur due to bacterial infections such as osteomyelitis, viral infections such as herpes zoster or fungal infections such as mucormycosis, aspergillosis etc. Mucormycosis is an opportunistic fulminant fungal infection, which mainly infects immunocompromised patients. The infection begins in the nose and paranasal sinuses due to inhalation of fungal spores. The infection can spread to orbital and intracranial structures either by direct invasion or through the blood vessels. The fungus invades the arteries leading to thrombosis that subsequently causes necrosis of hard and soft tissues. We report a case…

uncontrolled diabetesMaxillary bone necrosisUNESCO::CIENCIAS MÉDICASfungi:CIENCIAS MÉDICAS [UNESCO]mucormycosis
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Modelling the effect of ethanol on growth rate of food spoilage moulds

2005

The effect of ethanol (E) on the radial growth rate (mu) of food spoilage moulds (Aspergillus candidus, Aspergillus flavus, Aspergillus niger, Cladosporium cladosporioides, Eurotium herbariorum, Mucor circinelloides, Mucor racemosus, Paecilomyces variotii, Penicillium chrysogenum, Penicillium digitatum, Rhizopus oryzae and Trichoderma harzianum) was assessed in Potato Dextrose Agar (PDA) medium at a(w) 0.99, 25 degrees C. In order to model this effect, the Monod type equation described previously by Houtsma et al. (Houtsma, P.C., Kusters, B.J.M., de Wit, J.C., Rombouts, F.M., Zwietering, M.H., 1994. Modelling growth rates of Listeria monocytogenes as a function of lactate concentration. Int…

vaporColony Count MicrobialRhizopus oryzaebreadshelf-life extensionModels BiologicalMicrobiologyLevensmiddelenmicrobiologieAspergillus candidusBotanywater activityFood scienceVLAGPenicillium digitatumbacterial-growthDose-Response Relationship DrugEthanolbiologyMucor racemosusAspergillus nigerFungiPenicilliumWaterTrichoderma harzianumtemperatureGeneral Medicinebiology.organism_classificationethylKineticsAspergillusMucor circinelloidesFood MicrobiologyPotato dextrose agarmodified atmosphereFood ScienceInternational Journal of Food Microbiology
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Multimodal Aposematic Defenses Through the Predation Sequence

2021

Aposematic organisms warn predators of their unprofitability using a combination of defenses, including visual warning signals, startling sounds, noxious odors, or aversive tastes. Using multiple lines of defense can help prey avoid predators by stimulating multiple senses and/or by acting at different stages of predation. We tested the efficacy of three lines of defense (color, smell, taste) during the predation sequence of aposematic wood tiger moths (Arctia plantaginis) using blue tit (Cyanistes caeruleus) predators. Moths with two hindwing phenotypes (genotypes: WW/Wy = white, yy = yellow) were manipulated to have defense fluid with aversive smell (methoxypyrazines), body tissues with a…

varoitusväri0106 biological sciencesTastepredator-prey interactionsPyrrolizidine alkaloidEvolutiondefense mechanismsmultimodal signalingPREYAVOIDANCEZoologyContext (language use)AposematismITHOMIINE BUTTERFLIESBiology010603 evolutionary biology01 natural sciencestäpläsiilikäsPredation03 medical and health scienceschemistry.chemical_compoundCyanistes caeruleuschemical defensePYRROLIZIDINE ALKALOIDSQH359-425aposematismpuolustusmekanismit (biologia)Arctia plantaginissinitiainenQH540-549.5EDUCATED PREDATORSEcology Evolution Behavior and Systematics030304 developmental biology0303 health sciencesTASTEEcologyfungiCyanistesbiology.organism_classificationsaalistusWARNING COLORATIONCHEMICAL DEFENSEchemistryTRADE-OFFwarning signals1181 Ecology evolutionary biologyPyrrolizidineChemical defensePYRAZINE ODORFrontiers in Ecology and Evolution
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Multiple modalities in insect warning displays have additive effects against wild avian predators

2019

Allocation to different components of defence has been suggested as an explanation for the existence of multiple aposematic morphs in a single population. We tested whether there are trade-offs between warning colouration and chemical defence or whether these have an additive effect when combined, using blue tits (Cyanistes caeruleus) as predators and the polymorphic wood tiger moth (Arctia plantaginis) as prey. We used artificial edible models (with and without the moths’ defensive fluids) with paper wings whose colour and pattern properties matched those of real moths. When the models were presented sans defensive fluids or when the fluids were presented without colour cues, we detected n…

varoitusväri0106 biological sciencesanimal structuresgenetic structuresmedia_common.quotation_subjectPopulationZoologyAposematismInsectwarning colorationBiology010603 evolutionary biology01 natural sciencesPredation0501 psychology and cognitive sciences050102 behavioral science & comparative psychologypuolustusmekanismit (biologia)insectseducationPredatorEcology Evolution Behavior and Systematicsmedia_commoneducation.field_of_studyfungi05 social sciencesdefence mechanisms (biological phenomena)BeakAnimal ecologyhyönteisetMimicryAnimal Science and ZoologyBehavioral Ecology and Sociobiology
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Predator-Induced Plasticity on Warning Signal and Larval Life-History Traits of the Aposematic Wood Tiger Moth, Arctia plantaginis

2021

Correction Frontiers in Ecology and Evolution Volume 9 Article Number 737651 DOI 10.3389/fevo.2021.737651 Published JUL 29 2021 Predator-induced plasticity in life-history and antipredator traits during the larval period has been extensively studied in organisms with complex life-histories. However, it is unclear whether different levels of predation could induce warning signals in aposematic organisms. Here, we investigated whether predator-simulated handling affects warning coloration and life-history traits in the aposematic wood tiger moth larva, Arctia plantaginis. As juveniles, a larger orange patch on an otherwise black body signifies a more efficient warning signal against predators…

varoitusväriREACTION NORMSperhosetcostsmelanizationcolorationtäpläsiilikästoukatlarvaddc:570PHENOTYPIC PLASTICITYBENEFITSCOLORaposematismFORAGING BEHAVIORplastic responseRISKsopeutuminenfungiMELANIZATIONEVOLUTIONsaalistusmaladaptationLepidopteraelinkiertoTRADE-OFF1181 Ecology evolutionary biologyfenotyyppi
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Defense against predators incurs high reproductive costs for the aposematic moth Arctia plantaginis

2020

Abstract To understand how variation in warning displays evolves and is maintained, we need to understand not only how perceivers of these traits select color and toxicity but also the sources of the genetic and phenotypic variation exposed to selection by them. We studied these aspects in the wood tiger moth Arctia plantaginis, which has two locally co-occurring male color morphs in Europe: yellow and white. When threatened, both morphs produce defensive secretions from their abdomen and from thoracic glands. Abdominal fluid has shown to be more important against invertebrate predators than avian predators, and the defensive secretion of the yellow morph is more effective against ants. Her…

varoitusvärigenetic structuresAcademicSubjects/SCI01330fungicolor polymorphismOriginal Articlesheritabilitylisääntyminentäpläsiilikäsperiytyvyyseritteetchemical defensepuolustusmekanismit (biologia)cost of defenseBehavioral Ecology
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The impact of life stage and pigment source on the evolution of novel warning signal traits

2021

Our understanding of how novel warning color traits evolve in natural populations is largely based on studies of reproductive stages and organisms with endogenously produced pigmentation. In these systems, genetic drift is often required for novel alleles to overcome strong purifying selection stemming from frequency-dependent predation and positive assortative mating. Here, we integrate data from field surveys, predation experiments, population genomics, and phenotypic correlations to explain the origin and maintenance of geographic variation in a diet-based larval pigmentation trait in the redheaded pine sawfly (Neodiprion lecontei), a pine-feeding hymenopteran. Although our experiments c…

varoitusvärimäntypistiäisetecological geneticsPopulationFREQUENCY-DEPENDENT SELECTIONevoluutioAposematismPredationravintoNegative selectionchemical defenseGenetic driftAposematismpolytypic colorationGeneticsAnimalsaposematismCOLORPOPULATION-GENETICSmuuntelu (biologia)educationEcology Evolution Behavior and Systematicseducation.field_of_studybiologyPigmentationfungiAssortative matingcarotenoidsfood and beverageshost adaptationbiology.organism_classificationBiological EvolutionHymenopterakarotenoiditREAD ALIGNMENTNeodiprion leconteiSawflyCHEMICAL DEFENSEPhenotypeEvolutionary biologyTRADE-OFFLarvaPredatory Behavior1181 Ecology evolutionary biologySHIFTING BALANCEWOOD TIGER MOTHGeneral Agricultural and Biological SciencesGENETIC CORRELATIONSMULLERIAN MIMICRYEvolution
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The complete mitochondrial genome of the wood tiger moth (Arctia plantaginis) and phylogenetic analyses within Arctiinae

2021

We report the assembly and annotation of the complete mitochondrial genome of the warningly-coloured wood tiger moth (Arctia plantaginis) and investigate its phylogenetic position within Arctiinae. The A.plantaginis mitogenome is 15,479 bp long with 13 protein-coding genes, 22 transfer RNAs, 2 ribosomal RNA genes, and an A + T-rich region (D-loop). The phylogenetic analyses based on 13 protein-coding genes showed A.plantaginis clustering within a clade of species with white wings and yellow or red bodies. This result can be useful in understanding the evolution of coloration in Arctiid moths. Peer reviewed

varoitusvärisiilikkäätmitokondriotfylogenetiikkafungievoluutioColour polymorphismgenomiikkatäpläsiilikäsREAD ALIGNMENTWARNING COLORATIONcolour polymorphismperimäevolution1181 Ecology evolutionary biologyMitogenome AnnouncementResearch Article
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In-Depth Characterization of Bioactive Extracts from Posidonia oceanica Waste Biomass

2019

© 2019 by the authors.

ved/biology.organism_classification_rank.speciesPhytochemicalsPharmaceutical ScienceBiomassMicrobiologiaantioxidant capacity7. Clean energy01 natural sciencesEcologia marinaAntioxidantsFoodborne Diseaseschemistry.chemical_compoundMicevalorisationAnti-Infective AgentsDrug DiscoveryFood scienceAntifungal activityBiomasslcsh:QH301-705.5Pharmacology Toxicology and Pharmaceutics (miscellaneous)Caliciviridae InfectionsPlant Proteinschemistry.chemical_classificationFeline calicivirusAlismatalesbiologyultrasound04 agricultural and veterinary sciences040401 food scienceantiviralLipids6. Clean waterAntioxidant capacityMicrobiologia marinaPosidonia oceanicaMitosporic FungiValorisationValorisationMicrobial Sensitivity TestsPolysaccharideArticle0404 agricultural biotechnologyPhenolsPolysaccharidesUltrasoundAnimalsHumansAntiviralHot water extractionEthanolEthanol010405 organic chemistryved/biologyPlant Extractsantifungal activityNorovirusWaterbiology.organism_classification0104 chemical sciencesEcologiaHot water extractionRAW 264.7 Cellslcsh:Biology (General)chemistryCatsSolventsAntiviralesQuímica Analíticahot water extractionMurine norovirusCalicivirus FelineMarine Drugs
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Inferring Phytoplankton, Terrestrial Plant and Bacteria Bulk δ¹³C Values from Compound Specific Analyses of Lipids and Fatty Acids.

2015

Stable isotope mixing models in aquatic ecology require δ13C values for food web end members such as phytoplankton and bacteria, however it is rarely possible to measure these directly. Hence there is a critical need for improved methods for estimating the δ13C ratios of phytoplankton, bacteria and terrestrial detritus from within mixed seston. We determined the δ13C values of lipids, phospholipids and biomarker fatty acids and used these to calculate isotopic differences compared to the whole-cell δ13C values for eight phytoplankton classes, five bacterial taxa, and three types of terrestrial organic matter (two trees and one grass). The lipid content was higher amongst the phytoplankton (…

ved/biology.organism_classification_rank.speciesta1172lcsh:MedicineAlgaeaquatic ecologyterrestrial plantsPhytoplanktonTerrestrial plantBotanyMetabolomics14. Life underwaterBiomasslcsh:Sciencevesiekologia2. Zero hungerBiomass (ecology)Carbon IsotopesMultidisciplinaryDetritusbiologyδ13CBacteriaved/biologyStable isotope ratioSestonFatty Acidsfungilcsh:R15. Life on landbiology.organism_classificationLipidsbacteria bulk13. Climate actionEnvironmental chemistryPhytoplanktonphytoplanktonta1181lcsh:QBiomarkersResearch ArticlePLoS ONE
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