The evolution of insect body coloration under changing climates
Tài liệu tham khảo
Schilthuizen, 2014, Contemporary climate change and terrestrial invertebrates: evolutionary versus plastic changes, Evol Appl, 7, 56, 10.1111/eva.12116
MacLean, 2018, Using museum specimens to track morphological shifts through climate change, Philos Trans R Soc Lond B Biol Sc, 374
Brakefield, 1985, The basis of thermal melanism in the ladybird Adalia bipunctata: differences in reflectance and thermal properties between the morphs, Heredity, 54, 9, 10.1038/hdy.1985.3
Umbers, 2013, Colour in insect thermoregulation: empirical and theoretical tests in the colour-changing grasshopper, Kosciuscola tristis, J Insect Physiol, 59, 81, 10.1016/j.jinsphys.2012.10.016
Kingsolver, 1995, Fitness consequences of seasonal polyphenism in western white butterflies, Evolution, 49, 942, 10.1111/j.1558-5646.1995.tb02329.x
Chaput-Bardy, 2014, Fitness costs of thermal reaction norms for wing melanisation in the large white butterfly (Pieris brassicae), PLoS One, 9, 10.1371/journal.pone.0090026
Ellers, 2002, The evolution of wing color in Colias butterflies: heritability, sex linkage and population divergence, Evolution, 56, 836, 10.1111/j.0014-3820.2002.tb01394.x
Bishop, 2016, Ant assemblages have darker and larger members in cold environments, Glob Ecol Biogeogr, 25, 1489, 10.1111/geb.12516
Zeuss, 2014, Global warming favours light-coloured insects in Europe, Nat Commun, 5, 10.1038/ncomms4874
Clusella-Trullas, 2007, Thermal melanism in ectotherms, J Thermal Biol, 32, 235, 10.1016/j.jtherbio.2007.01.013
Elith, 2010, The art of modelling range-shifting species, Methods Ecol Evol, 1, 330, 10.1111/j.2041-210X.2010.00036.x
Stuart-Fox, 2017, Thermal consequences of colour and near-infrared reflectance, Philos Trans R Soc B, 372, 10.1098/rstb.2016.0345
Merilä, 2014, Climate change, adaptation, and phenotypic plasticity: the problem and the evidence, Evol Appl, 7, 1, 10.1111/eva.12137
Watt, 1968, Adaptive significance of pigment polymorphisms in Colias butterflies. I. Variation of melanin pigment in relation to thermoregulation, Evolution, 22, 437, 10.1111/j.1558-5646.1968.tb03985.x
Ellers, 2004, Functional ecological implications of intraspecific differences in wing melanization in Colias butterflies, Biol J Linn Soc, 82, 79, 10.1111/j.1095-8312.2004.00319.x
Stoks, 2014, Evolutionary and plastic responses of freshwater invertebrates to climate change: realized patterns and future potential, Evol Appl, 7, 42, 10.1111/eva.12108
Wogan, 2018, The value of space-for-time substitution for studying fine-scale microevolutionary processes, Ecography, 41, 1456, 10.1111/ecog.03235
Verheyen, 2019, Using natural laboratories to study evolution to global warming: contrasting altitudinal, latitudinal, and urbanization gradients, Curr Opin Insect Sci, 35, 10, 10.1016/j.cois.2019.06.001
Pinkert, 2017, Colour lightness of dragonfly assemblages across North America and Europe, Ecography, 40, 1110, 10.1111/ecog.02578
Heidrich, 2018, The dark side of Lepidoptera: colour lightness of geometrid moths decreases with increasing latitude, Global Ecol Biogeogr, 27, 407, 10.1111/geb.12703
Kharouba, 2018, Using insect natural history collections to study global change impacts: challenges and opportunities, Philos Trans R Soc B, 374
MacLean, 2016, Historical changes in thermoregulatory traits of alpine butterflies reveal complex ecological and evolutionary responses to recent climate change, Climate Change Responses, 3, 13, 10.1186/s40665-016-0028-x
de Jong, 1998, Climate and change in clines for melanism in the two-spot ladybird, Adalia bipunctata (Coleoptera: Coccinellidae), Proc R Soc B, 256, 39, 10.1098/rspb.1998.0261
Brakefield, 2011, A steep cline in ladybird melanism has decayed over 25 years: a genetic response to climate change, Heredity, 107, 574, 10.1038/hdy.2011.49
Zvereva, 2019, Climate warming leads to decline in frequencies of melanic individuals in subarctic leaf beetle populations, Sci Total Environ, 673, 237, 10.1016/j.scitotenv.2019.03.458
Merilä, 2012, Evolution in response to climate change: in pursuit of the missing evidence, BioEssays, 34, 811, 10.1002/bies.201200054
Kelly, 2019, Adaptation to climate change through genetic accommodation and assimilation of plastic phenotypes, Philos Trans R Soc B, 374, 10.1098/rstb.2018.0176
Sgrò, 2016, What can plasticity contribute to insect responses to climate change?, Annu Rev Entomol, 61, 433, 10.1146/annurev-ento-010715-023859
Nosil, 2018, Natural selection and the predictability of evolution in Timema stick insects, Science, 359, 765, 10.1126/science.aap9125
Bradshaw, 2001, Genetic shift in photoperiodic response correlated with global warming, Proc Nat Acad Sci U S A, 98, 14509, 10.1073/pnas.241391498
van Asch, 2012, Evolutionary response of the egg hatching date of a herbivorous insect under climate change, Nat Clim Change, 3, 244, 10.1038/nclimate1717
Nielsen, 2020, Compensating for climate change-induced cue-environment mismatches: evidence for contemporary evolution of a photoperiodic reaction norm in Colias butterlies, Ecol Lett, 10.1111/ele.13515
Talloen, 2009, Environmental stress and quantitative genetic variation in butterfly wing characteristics, Evol Ecol, 23, 473, 10.1007/s10682-008-9246-4
Roff, 2013, The costs of being dark: the genetic basis of melanism and its association with fitness-related traits in the sand cricket, J Evol Biol, 26, 1406, 10.1111/jeb.12150
Sandre, 2018, Weak and inconsistent associations between melanic darkness and fitness-related traits in an insect, J Evol Biol, 31, 1959, 10.1111/jeb.13387
Dubovskiy, 2013, More than a colour change: insect melanism, disease resistance and fecundity, Proc B R Soc, 280, 10.1098/rspb.2013.0584
Evison, 2017, Cuticular colour reflects underlying architecture and is affected by a limiting resource, J Insect Physiol, 98, 7, 10.1016/j.jinsphys.2016.11.005
Parkash, 2009, Impact of body melanisation on desiccation resistance in montane populations of Drosophila melanogaster: analysis of seasonal variation, J Insect Physiol, 55, 898, 10.1016/j.jinsphys.2009.06.004
True, 2003, Insect melanism: the molecules matter, Trends Ecol Evol, 18, 640, 10.1016/j.tree.2003.09.006
Wittkopp, 2009, Development and evolution of insect pigmentation: genetic mechanisms and the potential consequences of pleiotropy, Semin Cell Dev Biol, 20, 65, 10.1016/j.semcdb.2008.10.002
Fedorka, 2013, Thermal environment shapes cuticle melanism and melanin-based immunity in the ground cricket Allonemobius socius, Evol Ecol, 27, 521, 10.1007/s10682-012-9620-0
Stoehr, 2006, Costly melanin ornaments: the importance of taxon?, Funct Ecol, 20, 276, 10.1111/j.1365-2435.2006.01090.x
González-Santoyo, 2012, Phenoloxidase: a key component of the insect immune system, Entom Exp Appl, 142, 1, 10.1111/j.1570-7458.2011.01187.x
Talloen, 2004, The cost of melanization: butterfly wing coloration under environmental stress, Evolution, 58, 360
Krams, 2016, A dark cuticle allows higher investment in immunity, longevity and fecundity in a beetle upon a simulated parasite attack, Oecologia, 182, 99, 10.1007/s00442-016-3654-x
Liu, 2015, Pupal melanization is associated with higher fitness in Spodoptera exigua, Sci Rep, 5
Prokkola, 2013, Genetic and phenotypic relationships between immune defense, melanism and life-history traits at different temperatures and sexes in Tenebrio molitor, Heredity, 111, 89, 10.1038/hdy.2013.20
Roulin, 2016, Condition-dependence, pleiotropy and the handicap principle of sexual selection in melanin-based colouration, Biol Rev, 91, 328, 10.1111/brv.12171
Schwenke, 2016, Reproduction-immunity trade-offs in insects, Annu Rev Entomol, 61, 239, 10.1146/annurev-ento-010715-023924
Carnicer, 2017, Evolutionary responses of invertebrates to global climate change: the role of life-history trade-offs and multidecadal climate shifts, 319
Hegna, 2013, To quiver or to shiver: increased melanisation benefits thermoregulation, but reduces warning signal efficacy in the wood tiger moth, Proc B R Soc, 280, 10.1098/rspb.2012.2812
Oliver, 2009, Accommodating natural and sexual selection in butterfly wing pattern evolution, Proc B R Soc, 276, 2369, 10.1098/rspb.2009.0182
Lancaster, 2017, Do group dynamics affect colour morph clines during range shift?, J Evol Biol, 30, 728, 10.1111/jeb.13037
Schweiger, 2016, Size dependency in colour patterns of Western Paleartic carabids, Ecography, 39, 846, 10.1111/ecog.01570
Kingsolver, 2015, Climate variability slows evolutionary responses of Colias butterflies to recent climate change, Proc B R Soc, 282, 10.1098/rspb.2014.2470
Kingsolver, 2018, How do phenology, plasticity, and evolution determine the fitness consequences of climate change for montane butterflies?, Evol Appl, 11, 1231, 10.1111/eva.12618
Gautier, 2018, The genomic basis of color pattern polymorphism in the harlequin ladybird, Curr Biol, 28, 1, 10.1016/j.cub.2018.08.023
Gibert, 2017, Modulation of yellow expression contributes to thermal plasticity of female abdominal pigmentation in Drosophila melanogaster, Sci Rep, 7, 10.1038/srep43370
San-Jose, 2017, Genomics of coloration in natural animal populations, Philos Trans R Soc B, 372, 10.1098/rstb.2016.0337
Shawkey, 2017, Interactions between colour-producing mechanisms and their effects on the integumentary colour palette, Philos Trans R Soc B, 372, 10.1098/rstb.2016.0536
Henze, 2019, Pterin-pigmented nanospheres create the colours of the polymorphic damselfly Ischnura elegans, J R Soc Interface, 16, 10.1098/rsif.2018.0785
Han, 2013, Light trapping effect in wing scales of butterfly Papilio peranthus and its simulations, J Bionic Eng, 10, 162, 10.1016/S1672-6529(13)60211-5
Shanks, 2015, White butterflies as solar photovoltaic concentrators, Sci Rep, 5, 10.1038/srep12267
Shi, 2015, Keeping cool: enhanced optical reflection and radiative heat dissipation in Saharan silver ants, Science, 349, 298, 10.1126/science.aab3564
Tsai, 2020, Physical and behavioral adaptations to prevent overheating of the living wings of butterflies, Nature Comm, 11, 10.1038/s41467-020-14408-8
Krishna, 2020, Infrared optical and thermal properties of microstructures in butterfly wings, Proc Natl Acad Sci U S A, 117, 1566, 10.1073/pnas.1906356117
McNamara, 2014, Cryptic iridescence in a fossil weevil generated by single diamond photonic crystals, J R Soc Interface, 11, 10.1098/rsif.2014.0736
D’Alba, 2019, The golden age of arthropods: ancient mechanisms of colour production in body scales, J R Soc Interface, 16
Troscianko, 2015, Image calibration and analysis toolbox – a free software suite for objectively measuring reflectance, colour and pattern, Methods Ecol Evol, 6, 1320, 10.1111/2041-210X.12439
Kovac, 2019, The thermoregulatory behavior of nectar foraging polistine wasps (Polistes dominula and Polistes gallicus) in different climate conditions, Insects, 10, 187, 10.3390/insects10070187
Holloway, 1995, A quantitative genetic analysis of an aposematic colour pattern and its ecological implications, Philos Trans R Soc Lond B, 348, 373, 10.1098/rstb.1995.0075
Zverev, 2018, Ambient temperatures differently influence colour morphs of the leaf beetle Chrysomela lapponica: roles of thermal melanism and developmental plasticity, J Therm Biol, 74, 100, 10.1016/j.jtherbio.2018.03.019
Comeault, 2015, Selection on a genetic polymorphism counteracts ecological speciation in a stick insect, Curr Biol, 25, 1975, 10.1016/j.cub.2015.05.058
Delhey, 2019, A review of Gloger’s rule, an ecogeographical rule of colour: definitions, interpretations and evidence, Biol Rev, 94, 1294, 10.1111/brv.12503
Roulin, 2014, Melanin-based colour polymorphism responding to climate change, Global Change Biol, 20, 3344, 10.1111/gcb.12594
Forsman, 2011, Rethinking the thermal melanism hypothesis: rearing temperature and coloration in pygmy grasshoppers, Evol Ecol, 25, 1247, 10.1007/s10682-011-9477-7