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◆ Ecological Applications2026-03-01· Restoration ecology

Trait‐based approaches to restoration ecology: Synthesizing insights from diverse systems

Julia Briand, Sheryl C. Hosler, Thomas K. Merchant, Rolf D. Vinebrooke, Rebecca Ostertag, Celia C. Symons, Marc W. Cadotte, Valerie T. Eviner, Matthew E. S. Bracken, Rachel R. Carlson, Jonathan J. Henn, Magda Garbowski, Jonathan T. Bauer, Justin C. Luong, Joe Atkinson, A. Randall Hughes, Carrie Reinhardt Adams, Amanda E. Bates, Jennifer L. Funk, Allegra Love, Liting Zheng, Emily Galloway, Stephanie Green

原始摘要(英文原文)· Original abstract
Under accelerating global change, trait-based approaches are emerging as essential tools in the ecological restoration toolbox. Where restoration has traditionally focused on the recovery of focal species in isolated systems, trait-based methods can provide a common language that extends beyond species- or system-specific contexts, allowing scientists and practitioners to translate insights across organisms and ecosystems and predict functional variation critical to resilience in the face of rapidly changing environmental conditions. Trait-based insights can thus help achieve restoration that is both adaptable and scalable as future climate scenarios unfold. To date, trait-based approaches to restoration have developed and proceeded independently across habitats and ecosystems, limiting information sharing and innovation. Here, we synthesize diverse perspectives and research on trait-informed restoration across ecosystems, distilling our findings into three key insights. First, variable contexts and trade-offs in trait-function linkages shape restoration outcomes at distinct ecological scales and project stages. For example, individual-level traits that underpin stress tolerance may play a critical role in initial survival and establishment during early project stages, while traits that influence species interactions and modify energy transformation may play a larger role as communities reassemble and ecosystem function becomes a priority at later stages. Second, coordinating trait-informed restoration across ecosystems can advance multi-trophic and multi-system restoration by closing the divide between "top down" approaches that target individual organisms or populations typically in large, mobile animal reintroductions and "bottom-up" approaches that target community-level organization in the restoration of foundation species. Finally, enhanced interdisciplinary communication and knowledge-sharing can help develop solutions to major challenges hindering the progress of trait-informed restoration (e.g., accounting for intraspecific variation). As novel environmental conditions continue to arise, an integrative approach to trait-informed restoration that spans ecological scales, promotes knowledge-sharing across diverse ecosystems, and fosters management-science collaboration can help unify and advance restoration efforts under current and future disturbance scenarios.
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