Functional similarity shapes global patterns of fish naturalization and invasion richness

Freshwater ecosystems are among the most threatened by biological invasions, but it remains unclear why some exotics are more likely to be successful (known as naturalization success) and why some communities tend to harbor more exotics than others (measured as invasion richness). Here, using trait-based analysis, we addressed the knowledge gaps based on data from 1,691 fish communities worldwide. We found a latitudinal pattern of naturalization success, showing that successful exotic species were functionally more similar to native species at high latitudes than at low latitudes. Furthermore, the latitudinal gradient of invasion success was driven by contemporary climate, with higher exotic-native functional similarity in stressful climate conditions (i.e., high latitudes), while the opposite was observed in benign climates (i.e., low latitudes). Functional similarity was further positively associated with invasion richness, suggesting that preadaptations to novel environments (i.e., high similarity) may facilitate invasion richness. Moreover, invasion richness increased with increasing basin area and human pressure, but the effect of native diversity on richness was variable. Overall, the results highlight the joint influence of ecological processes (i.e., environmental filtering and niche differentiation) and human activities on fish invasions, with the relative role of ecological processes being well-elucidated through functional similarity.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-30
DOI
https://doi.org/10.1073/pnas.2610486123
Primary Topic
Isotope Analysis in Ecology
Type
article
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article

Functional similarity shapes global patterns of fish naturalization and invasion richness

Guohuan Su, Naicheng Wu, Jialin Li, Kun Guo et al.
Proceedings of the National Academy of Sciences
Isotope Analysis in Ecology
article

Functional similarity shapes global patterns of fish naturalization and invasion richness

Guohuan Su, Naicheng Wu, Jialin Li, Kun Guo, Guohao Liu, Beata Messyasz, Juanjuan Chen, Erik Jeppesen, Zhijun Xia, Fandong Yu, David Z. Zhu
article en

Abstract

Freshwater ecosystems are among the most threatened by biological invasions, but it remains unclear why some exotics are more likely to be successful (known as naturalization success) and why some communities tend to harbor more exotics than others (measured as invasion richness). Here, using trait-based analysis, we addressed the knowledge gaps based on data from 1,691 fish communities worldwide. We found a latitudinal pattern of naturalization success, showing that successful exotic species were functionally more similar to native species at high latitudes than at low latitudes. Furthermore, the latitudinal gradient of invasion success was driven by contemporary climate, with higher exotic-native functional similarity in stressful climate conditions (i.e., high latitudes), while the opposite was observed in benign climates (i.e., low latitudes). Functional similarity was further positively associated with invasion richness, suggesting that preadaptations to novel environments (i.e., high similarity) may facilitate invasion richness. Moreover, invasion richness increased with increasing basin area and human pressure, but the effect of native diversity on richness was variable. Overall, the results highlight the joint influence of ecological processes (i.e., environmental filtering and niche differentiation) and human activities on fish invasions, with the relative role of ecological processes being well-elucidated through functional similarity.

Proceedings of the National Academy of SciencesVol. 123(40)
Ningbo University (CN), University of Helsinki (FI), University of Alberta (CA), Chinese Academy of Sciences (CN), Aarhus University (DK), Institute of Hydrobiology (CN), Northeast Institute of Geography and Agroecology (CN), Sino-Danish Centre for Education and Research (CN), Yunnan Institute of Environmental Sciences (CN), Ministry of Agriculture and Rural Affairs (CN), University of Chinese Academy of Sciences (CN), Pearl River Fisheries Research Institute (CN), Chinese Academy of Fishery Sciences (CN), Adam Mickiewicz University in Poznań (PL)
Climate action
Openalex Percentile: Top 12%
Isotope Analysis in Ecology
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