IJMEC_2026v16n1

International Journal of Molecular Ecology and Conservation, 2026, Vol.16, No.1, 1-12 http://ecoevopublisher.com/index.php/ijmec 10 Ben Chehida Y., van der Heijden E.S., Page E.J., Salazar C.P.A., Rosser N., Gabriela Gavilanes Córdova K., et al., 2025, Genetic parallelism underpins convergent mimicry coloration across Lepidoptera, bioRxiv, 2025-06. https://doi.org/10.1101/2025.06.26.661542 Betz A., Höglinger B., Walker F., and Petschenka G., 2025, Regionality and temporal dynamics of sequestration and relocation of cardenolides in the monarch butterfly, Danaus plexippus, Journal of Chemical Ecology, 51(1): 19. https://doi.org/10.1007/s10886-025-01572-8 Brower L.P., 1995, Understanding and misunderstanding the migration of the monarch butterfly (Nymphalidae) in North America: 1857-1995, Journal of the Lepidopterists' Society, 49: 304-385. Dale J., and Stumpe M., 2014, Host plant toxicity, predator-prey interactions, and the evolution of defense: a synopsis, Ecology Letters, 17(7): 831-842. Dalla S., and Edger P.P., 2014, Evolution of the plant Na+/K+-ATPase gene family: evidence for functional diversification, BMC Genomics, 15: 1-13. Davey J.W., Chouteau M., Barker S.L., Maroja L., Baxter S.W., Simpson F., Merrill R.M., Joron M., Mallet J., and Dasmahapatra K.K., et al., 2016, Major improvements to the Heliconius melpomene genome assembly reveal multiple chromosomal fusions in Lepidoptera, G3: Genes, Genomes, Genetics, 6(3): 695-708. https://doi.org/10.1534/g3.115.023655 de Roode J.C., Pedersen A.B., Hunter M.D., and Altizer S., 2008, Host plant species affects virulence in monarch butterfly parasites, Journal of Animal Ecology, 77(2): 120-127. https://doi.org/10.1111/j.1365-2656.2007.01305.x De-Kayne R., Gordon I.J., Terblanche R.F., Collins S., Saitoti Omufwoko K., Martins D.J., and Martin S.H., 2025, Incomplete recombination suppression fuels extensive haplotype diversity in a butterfly colour pattern supergene, PLoS Biology, 23(2): e3003043. https://doi.org/10.1371/journal.pbio.3003043 Di Cristina G., Dirksen E., Altenhein B., Büschges A., and Korsching S.I., 2025, Pioneering genome editing in parthenogenetic stick insects: CRISPR/Cas9-mediated gene knockout in Medauroidea extradentata, Scientific Reports, 15(1): 2584. https://doi.org/10.1038/s41598-025-85911-5 Dreisbach D., Bhandari D.R., Betz A., Tenbusch L., Vilcinskas A., Spengler B., and Petschenka G., 2023, Spatial metabolomics reveal divergent cardenolide processing in the monarch (Danaus plexippus) and the common crow butterfly (Euploea core), Molecular Ecology Resources, 23(6): 1195-1210. https://doi.org/10.1111/1755-0998.13786 Dreisbach T.A., Hastings A.P., and Agrawal A.A., 2023, Untargeted metabolomics reveals chemical diversity and inducibility of cardenolides across milkweed species, Journal of Chemical Ecology, 49(4): 345-360. Erickson E., Jason C., Machiorlete H., de la Espriella L., Crone E.E., and Schultz C.B., 2023, Using community science to map western monarch butterflies (Danaus plexippus) in spring, Ecology and Evolution, 13(12): e10766. https://doi.org/10.1002/ece3.10766 Freedman M.G., and Kronforst M.R., 2023, Genomic insights into the evolution and loss of migration in monarch butterflies, Molecular Ecology, 32(8): 1950-1966. Freedman M.G., and Kronforst M.R., 2023, Migration genetics take flight: genetic and genomic insights into monarch butterfly migration, Current Opinion in Insect Science, 59: 101079. https://doi.org/10.1016/j.cois.2023.101079 Green D.A., and Kronforst M.R., 2019, Monarch butterflies use an environmentally sensitive, internal timer to control overwintering dynamics, Molecular Ecology, 28(16): 3642-3655. https://doi.org/10.1111/mec.15178 Guerra P.A., Merlin C., Gegear R.J., and Reppert S.M., 2012, Discordant timing between antennae disrupts sun compass orientation in migratory monarch butterflies, Nature Communications, 3: 958. https://doi.org/10.1038/ncomms1965 Hammer T.J., McMillan W.O., and Fierer N., 2014, Metamorphosis of a butterfly-associated bacterial community, PLOS ONE, 9(1): e86995. https://doi.org/10.1371/journal.pone.0086995 Hemstrom W., Freedman M., Zalucki M.P., and Miller M., 2025, Novel genetic association with migratory diapause in Australian monarch butterflies, BMC Ecology and Evolution, 25(1): 43. https://doi.org/10.1186/s12862-025-02384-w Hoogshagen M., Hastings A.P., Chavez J., Duckett M., Pettit R., Pahnke A.P., Agrawal A.A., and de Roode J.C., 2024, Mixtures of milkweed cardenolides protect monarch butterflies against parasites, Journal of Chemical Ecology, 50(1): 52-62. https://doi.org/10.1007/s10886-023-01461-y Höök L., Vila R., Wiklund C., and Backström N., 2024, Temporal dynamics of faster neo-Z evolution in butterflies, Evolution, 78(9): 1554-1567. https://doi.org/10.1093/evolut/qpae082 Li H., Handsaker B., Wysoker A., Fennell T., Ruan J., Homer N., Marth G., Abecasis G., Durbin R., and 1000 Genome Project Data Processing Subgroup, 2009, The sequence alignment/map format and SAMtools, Bioinformatics, 25(16): 2078-2079. https://doi.org/10.1093/bioinformatics/btp352 Livraghi L., Hanly J.J., Loh L.S., Henry A., Keck C., Shirey V.M., Tsai C.C., Yu N.F., Belleghem S.M.V., and Roberts W.M., et al., 2025, Genetic basis of an adaptive polymorphism controlling butterfly silver iridescence, Current Biology, 35(9): 2154-2163. https://doi.org/10.1016/j.cub.2025.03.028

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