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Evaluating potential routes of invasion of pathogens and vectors of sanitary importance is essential for planning and decision-making at multiple scales. An effective tool are process-explicit models that allow coupling environmental, demographic and dispersal information to evaluate population growth and range dynamics as a function of the abiotic conditions in a region. In this work we simulate multiple dispersal/invasion routes in Mexico that could be taken by ambrosia beetles and a specific symbiont, Harringtonia lauricola, responsible for a severe epiphytic of Lauraceae in North America. We used Xyleborus bispinatus Eichhoff 1868 as a study subject and estimated its demography in the laboratory in a temperature gradient (17, 20, 26, 29, 35 °C), which we then used to parameterize a process-based model to estimate its metapopulation dynamics. The maximum intrinsic growth rate of X. bispinatus is 0.13 with a thermal optimum of 26.2 °C. The models suggest important regions for the establishment and dispersal the states of Veracruz, Chiapas and Oaxaca (high host and secondary vectors diversity), the Isthmus of Tehuantepec (connectivity region), and Michoacán and Jalisco (important avocado plantations). The use of hybrid process-based models is a promising tool to refine the predictions applied to the study of biological invasions and species distributions.
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http://dx.doi.org/10.1038/s41598-024-57590-1 | DOI Listing |
iScience
September 2025
Department of Biological Sciences, University of Illinois, Chicago, IL, USA.
Ambrosia beetles are social, fungal-farming insects that nest within tree xylem. Their close living conditions make them potentially vulnerable to microbial infectious diseases. We show that the insect pathogenic fungus effectively infects and kills adults, even within sawdust-based colony habitats.
View Article and Find Full Text PDFJ Econ Entomol
August 2025
Horticultural Insects Research Laboratory, USDA-Agricultural Research Service, Wooster, OH, USA.
The ambrosia beetles Xylosandrus crassiusculus (Motschulsky) and Xylosandrus germanus (Blandford) (Coleoptera: Curculionidae) are major pests in fruit, nut, and ornamental tree nurseries. Adult females tunnel into stressed trees, creating galleries in the sapwood and heartwood to cultivate their nutritional fungal mutualists, which are associated with branch dieback and tree death. The current management approach relies on trunk applications of permethrin and bifenthrin to decrease infestation risk in the United States.
View Article and Find Full Text PDFBull Entomol Res
August 2025
Department of Zoology, Fisheries, Hydrobiology and Apiculture, Faculty of AgriSciences, Mendel University in Brno, Czech Republic.
Understanding the circadian rhythms of bark and ambrosia beetles (Scolytinae) is crucial for assessing their dispersal strategies, trophic specialisation, and microhabitat preferences. This study investigated circadian rhythms in Scolytinae communities using flight interception traps in an oak forest in the southern part of Czechia. Ordination biplot revealed a flight activity gradient, with nocturnal dispersers distinct from diurnal species.
View Article and Find Full Text PDFInt J Biometeorol
August 2025
ICAR (Indian Council of Agricultural Research), CCARI (Central Coastal Agricultural Research Institute), Ela, Old Goa, Goa, 403402, India.
Euplatypus parallelus (Fabricius, 1801) is a highly destructive invasive insect pest endemic to the Neotropics, causing economic and ecological damage to natural forests, plantations, and fruit trees. We employed the MaxEnt model to predict the global suitability of E. parallelus under current and future scenarios based on the shared socioeconomic pathways (SSPs) 126 and SSP585 in 2050 and 2070, utilizing the Coupled Model Intercomparison Project phase 6 (CMIP6) dataset.
View Article and Find Full Text PDFMol Ecol
August 2025
Hawkesbury Institute for the Environment, Western Sydney University, Penrith, New South Wales, Australia.
Eusociality in insects has arisen multiple times independently in Hymenoptera (bees, wasps and ants), Blattodea (termites) and Coleoptera (beetles). In Hymenoptera and Blattodea, the evolution of eusociality led to species proliferation. In the hyperdiverse Coleoptera, obligate eusociality evolved only once, in the ancient Australian ambrosia beetle Austroplatypus incompertus (Curculionidae: Platypodinae).
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