Active Plants, Animals & Ecology Food & Agriculture

Ragweeds in Europe: What makes a successful plant invader?

In plain English

AI plain-English summary

Three ragweed species arrived in Europe at roughly the same time, but one has spread aggressively while the others have barely gained a foothold—and researchers want to know why. This matters because invasive species are the second biggest threat to global biodiversity, and ragweed in particular causes severe hay fever and cuts crop yields when it invades farmland. Current prevention efforts are hampered by a lack of understanding of what makes some introductions succeed while others fail. The team will analyse historical herbarium specimens to track the invaders’ genetic changes over time, and examine the microbes living on and inside the plants’ leaves and roots to see whether beneficial or pathogenic microbes influence invasion success. If this hologenomic approach works, it could reveal the genomic and microbial markers that predict whether a newly introduced species will become invasive. That knowledge would help biosecurity officials prioritise which species to monitor and where to intervene, potentially reducing the spread of ragweed and other harmful invaders. The research is fundamental science—it asks how evolution and microbial partnerships shape invasion—but similar work on invasive species has previously informed practical strategies for containment and eradication.

View original technical description
Due to global trade and travel, more and more species get introduced to new environments and may eventually become invasive. Invasive are the second biggest threat to global biodiversity. This project seeks to better understand the processes that underly successful plant invasions. We will use three Ambrosia species that have been introduced to Europe around the same time but very substantially in their invasion success. Ambrosia plants produce highly allergic pollen which are one of the main causes of hay fever and can substantially reduce crop yields when growing in agricultural field. Historical herbarium specimens will be used to investigate the invasion history, track changes over time, and infer genomic regions under selection. In addition, the leaf and root metagenome will be explored to infer associations between host and microbial community, and the role of beneficial and pathogenic microbes on invasion success. This hologenomic approach is at the cutting- edge of the field of evolutionary genomics. This project offers the unique opportunity to unravel the genomic and metagenomic basis of invasion that could be applied to other (potentially) invasive species and thus inform prevention and mitigation efforts.

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Researchers

Rafal Gutaker (Principal Investigator)Vanessa Bieker (Fellow)

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Original classification

Fellowship

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