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Results: 12
Number of items: 12
  • Open Access
    Rhebergen, F. T. (2022). The ecology of adaptive condition-dependent polyphenism. [Thesis, fully internal, Universiteit van Amsterdam].
  • Open Access
    Zeeman, A. N., Smallegange, I. M., Burdfield Steel, E., Groot, A. T., & Stewart, K. A. (2022). Toward an understanding of the chemical ecology of alternative reproductive tactics in the bulb mite (Rhizoglyphus robini). BMC ecology and evolution, 22, Article 5. https://doi.org/10.1186/s12862-021-01956-w
  • Cairns, N. A., Cicchino, A. S., Stewart, K. A., Austin, J. D., & Lougheed, S. C. (2021). Cytonuclear discordance, reticulation and cryptic diversity in one of North America's most common frogs. Molecular Phylogenetics and Evolution, 156, Article 107042. https://doi.org/10.1016/j.ympev.2020.107042
  • Open Access
    Rodriguez-Ezpeleta, N., Morissette, O., Bean, C. W., Manu, S., Banerjee, P., Lacoursière-Roussel, A., Beng, K. C., Alter, S. E., Roger, F., Holman, L. E., Stewart, K. A., Monaghan, M. T., Mauvisseau, Q., Mirimin, L., Wangensteen, O. S., Antognazza, C. M., Helyar, S. J., de Boer, H., Monchamp, M.-E., ... Deiner, K. (2021). Trade-offs between reducing complex terminology and producing accurate interpretations from environmental DNA: Comment on “Environmental DNA: What’s behind the term?” by Pawlowski et al. (2020). Molecular Ecology, 30(19), 4601-4605. https://doi.org/10.1111/mec.15942
  • Open Access
    Stewart, K. A., & Taylor, S. A. (2020). Leveraging eDNA to expand the study of hybrid zones. Molecular Ecology, 29(15), 2768-2776. https://doi.org/10.1111/mec.15514
  • Open Access
    Qu, C., Stewart, K. A., Clemente-Carvalho, R., Zheng, J., Wang, Y., Gong, C., Ma, L., Zhao, J., & Lougheed, S. C. (2020). Comparing fish prey diversity for a critically endangered aquatic mammal in a reserve and the wild using eDNA metabarcoding. Scientific Reports, 10, Article 16715. https://doi.org/10.1038/s41598-020-73648-2
  • Open Access
    Stewart, K., Draaijer, R., Kolasa, M. R., & Smallegange, I. M. (2019). The role of genetic diversity in the evolution and maintenance of environmentally-cued, male alternative reproductive tactics. BMC Evolutionary Biology, 19, Article 58. https://doi.org/10.1186/s12862-019-1385-4
  • Stewart, K. A. (2019). Understanding the effects of biotic and abiotic factors on sources of aquatic environmental DNA. Biodiversity and Conservation, 28(5), 983-1001. https://doi.org/10.1007/s10531-019-01709-8, https://doi.org/10.1007/s10531-019-01709-8
  • Stewart, K., Draaijer, R., Kolasa, M. R., & Smallegange, I. M. (2019). The role of genetic diversity in the evolution and maintenance of environmentally-cued, male alternative reproductive tactics: datasets. [Data set]. Figshare. https://doi.org/10.6084/m9.figshare.7665632.v3
  • Open Access
    Qu, C., & Stewart, K. A. (2019). Evaluating monitoring options for conservation: traditional and environmental DNA tools for a critically endangered mammal. Naturwissenschaften, 106(3-4), Article 9. https://doi.org/10.1007/s00114-019-1605-1
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