Published May 19, 2026 | Version v1

Data from: Phenotypic plasticity of invasive knotweed across Europe: a distributed common garden experiment

  • 1. Plant Evolutionary Ecology, Institute of Evolution & Ecology, University of Tübingen, 72076 Tübingen, Germany
  • 2. Department of Life Sciences and Systems Biology, University of Torino, 10125 Torino, Italy
  • 3. Ministry of Education Key Laboratory for Biodiversity Science and Ecological Engineering, National Observations and Research Station for Wetland Ecosystems of the Yangtze Estuary, Institute of Biodiversity Science and Institute of Eco-Chongming, School of Life Sciences, Fudan University, Shanghai, China
  • 4. Department of Ecology and Genetics, Plant Ecology and Evolution, Uppsala University, 75236 Uppsala, Sweden
  • 5. Department of Integrative Biology, University of South Florida, 33620 Tampa, Florida, USA
  • 6. Cluster of Excellence GreenRobust, University of Tübingen, 72076 Tübingen, Germany

Description

Successful large-scale biological invasions require introduced species to either rapidly adapt to a broad range of - partly novel - environmental conditions, or to possess a high level of phenotypic plasticity. Replicated common garden experiments across the introduced range provide a powerful framework to investigate these complementary mechanisms. To better understand population differentiation, adaptation and plasticity of invasive Japanese knotweed (Reynoutria japonica) in Europe, we compared the performance of knotweed plants from 46 European populations, collected across a 2000 km latitudinal transect, in three common gardens with contrasting climatic conditions, one at the southern edge, one in the center, and one at the northern edge of the species’ European distribution. The plants exhibited strong phenotypic plasticity across the three gardens, with a more acquisitive growth strategy in the southern garden, and a more conservative strategy and change of architecture in the climatically unfavorable north. Although we observed phenotypic selection on several leaf traits, with some differences in selection between the gardens, we found little evidence for population differentiation or local adaptation, i.e., variation in plant performance was not negatively related to climate or geographic distance. Greater plasticity in leaf thickness across gardens was linked to the production of fewer but larger shoots, indicating a trade-off between growth and clonal expansion. In addition, populations from higher latitudes and regions with greater inter-annual temperature variability displayed increased plasticity in shoot volume and shrubbiness, but reduced plasticity in shoot number. Our results suggest that local adaptation has not played a key role in the success of Japanese knotweed in Europe. Instead, its high overall phenotypic plasticity (‘general purpose genotype’), as well as evolutionary fine-tuning of plasticity, may have contributed to the species’ invasion success across a broad range of environments. 

Notes

These data support the manuscript titled: "Phenotypic plasticity of invasive knotweed across Europe: a distributed common garden experiment". We sampled 46 populations of Japanese knotweed (5 plants each) along a 2000 km latitudinal transect in Europe. We grew the plants in three gardens representing the southern, central and northern edges of their introduced European range. In each garden, we measured variation in plant performance and key functional traits.

 

 

 

 

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