0000000000006436

AUTHOR

Jimi Kirvesoja

showing 4 related works from this author

Safety in Numbers: How Color Morph Frequency Affects Predation Risk in an Aposematic Moth

2021

Polymorphic warning signals in aposematic systems are enigmatic because predator learning should favor the most common form, creating positive frequency-dependent survival. However, many populations exhibit variation in warning signals. There are various selective mechanisms that can counter positive frequency-dependent selection and lead to temporal or spatial warning signal diversification. Examining these mechanisms and their effects requires first confirming whether the most common morphs are favored at both local and regional scales. Empirical examples of this are uncommon and often include potentially confounding factors, such as a lack of knowledge of predator identity and behavior. …

varoitusväriForagingFrequency-dependent selectionColorPREYAposematismMothswarning colorationtäpläsiilikäsSEXUAL SELECTIONpolymorphismPredationSIGNALSAnimalsaposematismPasseriformesDEPENDENT SELECTIONmuuntelu (biologia)PredatorEcology Evolution Behavior and SystematicsParusluonnonvalintaHYPOTHESISbiologyEcologycontext-dependent predationLEAF BEETLEMIMICRYbiology.organism_classificationBiological EvolutionsaalistusPOLYMORPHISMfrequency-dependent selectionSympatric speciationPredatory BehaviorTRADE-OFFSexual selection1181 Ecology evolutionary biologyThe American Naturalist
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Heterozygote advantage and pleiotropy contribute to intraspecific color trait variability

2022

The persistence of intrapopulation phenotypic variation typically requires some form of balancing selection because drift and directional selection eventually erode genetic variation. Heterozygote advantage remains a classic explanation for the maintenance of genetic variation in the face of selection. However, examples of heterozygote advantage, other than those associated with disease resistance, are rather uncommon. Across most of its distribution, males of the aposematic moth Arctia plantaginis have two hindwing phenotypes determined by a heritable one locus-two allele polymorphism (genotypes: WW/Wy = white morph, yy = yellow morph). Using genotyped moths, we show that the presence of o…

varoitusväriMaleMATING SUCCESSHeterozygoteFREQUENCY-DEPENDENT SELECTIONColorMothsYELLOW GENEgenotyyppitäpläsiilikäsSEXUAL SELECTIONPARASEMIApleiotropyGeneticsAnimalsmuuntelu (biologia)Life History TraitsEcology Evolution Behavior and SystematicsluonnonvalintaPolymorphism GeneticLABORATORY ADAPTATIONwood tiger mothColor locusEVOLUTIONARY DYNAMICSPOLYMORPHISMlife-history traitscolor locusheterozygote advantageMATE CHOICEWARNING COLORATIONPhenotypesukupuolivalintaintraspecific trait variation1181 Ecology evolutionary biologyfenotyyppiFemaleGeneral Agricultural and Biological SciencesEvolution
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Genetic colour variation visible for predators and conspecifics is concealed from humans in a polymorphic moth

2022

The definition of colour polymorphism is intuitive: genetic variants express discretely coloured phenotypes. This classification is, however, elusive as humans form subjective categories or ignore differences that cannot be seen by human eyes. We demonstrate an example of a 'cryptic morph' in a polymorphic wood tiger moth (Arctia plantaginis), a phenomenon that may be common among well-studied species. We used pedigree data from nearly 20,000 individuals to infer the inheritance of hindwing colouration. The evidence supports a single Mendelian locus with two alleles in males: WW and Wy produce the white and yy the yellow hindwing colour. The inheritance could not be resolved in females as t…

Malevaroitusvärigenetic structuresColorMothsgenotyyppitäpläsiilikäspolymorphismMultispectral imagingAposematismhavainnointimultispectral imagingAnimalsHumansaposematismPolymorphismArctia plantaginismuuntelu (biologia)Wood tiger mothEcology Evolution Behavior and SystematicsPolymorphism GeneticPigmentationwood tiger mothdiscriminant analysisDiscriminant analysisPhenotype1181 Ecology evolutionary biologyFemalefenotyyppi
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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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