Selection shapes the evolution of genome size in a globally invasive plant

Summary Biological invasions provide powerful natural experiments for understanding how genome architecture responds to novel climatic environments. Transposable elements (TEs) can rapidly restructure genomes, yet their role in adaptive genome size evolution during invasion remains poorly understood. Here, we examined genome size and TE abundance in 439 individuals of globally invasive common ragweed ( Ambrosia artemisiifolia L.) across native (North American) and invasive (European, Australian) ranges. By integrating whole-genome resequencing, flow cytometry, and trait versus genetic differentiation comparison ( Q ST –F ST ), we tested whether genome size evolution is shaped by selection, climate, and life-history traits. Genome size was significantly larger in Australian genotypes, driven by increased TE and rRNA (ribosomal RNA) abundance. Crucially, trait versus genetic differentiation comparison provided evidence of divergent selection on genome size in North American and European populations, but not in Australia. Genome size was correlated with mean annual temperature (MAT) across all ranges, linking genomic traits to environmental variables. Genome size evolution during invasion can be rapid, adaptive, and range-specific, with TE-driven genome expansion emerging as a potential genomic response to the demographic and environmental pressures accompanying colonization of novel environments.

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Publication Details

Journal
New Phytologist
Published
2026-08-28
DOI
https://doi.org/10.1111/nph.71538
Citations
1
Primary Topic
Chromosomal and Genetic Variations
Type
article
Field-Weighted Citation Impact
4.82

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Selection shapes the evolution of genome size in a globally invasive plant

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article

Selection shapes the evolution of genome size in a globally invasive plant

Kathryn A. Hodgins, Alexandre Fournier‐Level, John R. Stinchcombe, Michael D. Martin, Paul Battlay, Byonkesh Nongthongbam, Katherine G. Maunder
article en
1 citations

Abstract

Summary Biological invasions provide powerful natural experiments for understanding how genome architecture responds to novel climatic environments. Transposable elements (TEs) can rapidly restructure genomes, yet their role in adaptive genome size evolution during invasion remains poorly understood. Here, we examined genome size and TE abundance in 439 individuals of globally invasive common ragweed ( Ambrosia artemisiifolia L.) across native (North American) and invasive (European, Australian) ranges. By integrating whole-genome resequencing, flow cytometry, and trait versus genetic differentiation comparison ( Q ST –F ST ), we tested whether genome size evolution is shaped by selection, climate, and life-history traits. Genome size was significantly larger in Australian genotypes, driven by increased TE and rRNA (ribosomal RNA) abundance. Crucially, trait versus genetic differentiation comparison provided evidence of divergent selection on genome size in North American and European populations, but not in Australia. Genome size was correlated with mean annual temperature (MAT) across all ranges, linking genomic traits to environmental variables. Genome size evolution during invasion can be rapid, adaptive, and range-specific, with TE-driven genome expansion emerging as a potential genomic response to the demographic and environmental pressures accompanying colonization of novel environments.

New Phytologist
University of Toronto (CA), La Trobe University (AU), Norwegian University of Science and Technology (NO), Monash University (AU)
Monash University, Natural Sciences and Engineering Research Council of Canada
Climate action
Openalex Percentile: Top 10%
Chromosomal and Genetic Variations
4.82
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