J Plant Ecol ›› Advance articles     DOI:10.1093/jpe/rtag234

• Review •     Next Articles

Plant invasion through the lens of community assembly: Integrating traits, multitrophic interactions, and environmental change

Lu Liu1, 2, Ayub M. O Oduor2, 3, 4, Caiyun Zhao5, Fanglei Gao3, Keyu Chen3, Kun Guo2, Yanjie Liu2*   

  1. 1. College of Water Resources, North China University of Water Resources and Electric Power, Zhengzhou 450045, China;
    2. Key Laboratory of Marsh Wetland Ecosystem Conservation and Restoration, National Forestry and Grassland Administration, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 130102, China;
    3. Shandong Key Laboratory of Eco-Environmental Science for Yellow River Delta, Shandong University of Aeronautics, Binzhou, Shandong, China;
    4. Department of Biological and Life Sciences, Technical University of Kenya, Nairobi, Kenya;
    5. State Key Laboratory of Environmental Criteria and Risk Assessment, Chinese Research Academy of Environmental Sciences, Beijing, China
    *Corresponding author: Yanjie Liu, E-mail: (liuyanjie@iga.ac.cn)
  • Received:2026-03-05 Revised:2026-08-26 Accepted:2026-09-14 Published:2026-09-28

Abstract: Plant invasions are a major component of global change and an important driver of biodiversity loss and ecosystem transformation. Yet, why only some alien plants establish, spread, and become dominant remains unresolved. This review uses community assembly and modern coexistence theory to integrate mechanisms commonly studied in isolation. Propagule supply initiates invasion; functional traits, phenotypic plasticity, and evolution modify passage through abiotic and biotic filters; density dependence and ecological feedbacks govern persistence and dominance; and repeated dispersal and establishment generate spread. We synthesize evidence for plant–plant competition, kin recognition, allelopathy, interactions with enemies and mutualists, plant–soil feedbacks, cross-trophic pathways, environmental matching, and resource change. These mechanisms alter vital rates by shifting stabilizing niche differences and average fitness differences, with outcomes contingent on invasion stage, spatial scale, population density, exposure history, and environmental change. Once abundant, an alien may shift from a target to a source of filtering by pre-empting resources, restructuring interaction networks, and conditioning soils against later arrivals. Abiotic and multitrophic filters also interact, making invasion outcomes poorly represented by single-process explanations. Progress requires life-cycle studies estimating population growth and conspecific versus heterospecific limitation, long-term and native–introduced range comparisons, and factorial experiments spanning trophic groups and environmental drivers. Comparisons among invasive aliens, non-invasive naturalized aliens, unsuccessful introductions, and successful natives will distinguish invasion-specific mechanisms from attributes of plant dominance generally.

Plant invasions are driven by complex abiotic and biotic filters, including plant-plant interactions, multi-trophic relationships, and plant-environment dynamics. While current studies often isolate single mechanisms, future research must adopt a community ecology perspective to integrate these processes and uncover the holistic drivers of plant invasion and dominance.

Key words: alien, coexistence, non-native, global change, invasion risk, species interactions