Ambrosia beetle invasions are structured by inbreeding, intraspecific hybridization, and bridgeheads

dc.contributor.authorHuisamen, Elizabeth J
dc.contributor.authorSchmidt, Thomas L
dc.contributor.authorTerblanche, John S
dc.date.accessioned2026-10-08T06:10:59Z
dc.date.available2026-10-08T06:10:59Z
dc.date.issued2026
dc.description.abstractWhen invasive populations establish in regions far from their origin, they may accumulate deleterious mutations that limit population viability and later expansion. Invasions stemming from such bridgehead populations may experience further sequential bottlenecks. However, deleterious mutations can be masked or eliminated when populations outbreed with other lineages. Here, we analyze global invasions of a species complex of persistently inbreeding ambrosia beetles, using genomic data (n = 247) from invasive populations in Africa, North America, and Australia, and from native populations in Asia. We mostly focus on one species of this complex (Euwallacea fornicatus), which poses a severe threat to tree species worldwide and is rapidly expanding its global range. We uncover a single lineage of this species across California, South Africa, and Western Australia, involving an invasive bridgehead and containing almost no nuclear genetic variation. In South Africa, we identify a second lineage that has repeatedly hybridized with the first lineage. Genetic patterns in the native range indicate that such opportunistic outbreeding may be common. Despite lacking nuclear variation, the first lineage contained two CO1 haplotypes that were also observed in every hybrid lineage, pointing to heteroplasmy and possible hybrid origins of this lineage. Native populations had fewer missense mutations than invasive populations, indicating that opportunistic outbreeding may help purge fixed deleterious mutations when local lineage diversity is high. These findings highlight the importance of outbreeding even when inbreeding is common, and they demonstrate the biosecurity threat posed by subsequent gene flow into invasive populations.
dc.identifier.citationSchmidt, T.L., Bierman, A., Huisamen, E.J., Terblanche, J.S. and Hoffmann, A.A., 2026. Ambrosia beetle invasions are structured by inbreeding, intraspecific hybridization, and bridgeheads. Molecular Biology and Evolution, 43(9), p.msag231.
dc.identifier.urihttps://doi.org/10.1093/molbev/msag231
dc.identifier.urihttps://hdl.handle.net/10566/25504
dc.language.isoen
dc.publisherOxford University Press
dc.subjectbiological invasion
dc.subjectexpansion load
dc.subjecthybrid
dc.subjectinvasive bridgehead
dc.subjectmito-nuclear discordance
dc.titleAmbrosia beetle invasions are structured by inbreeding, intraspecific hybridization, and bridgeheads
dc.typeArticle

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