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Unfolding the dynamics of ecosystems undergoing alternating wet-dry transitional states

  • Rebeca Arias-Real
  • , Manuel Delgado-Baquerizo
  • , Sergi Sabater
  • , Cayetano Gutiérrez-Cánovas
  • , Enrique Valencia
  • , Gregorio Aragón
  • , Yolanda Cantón
  • , Thibault Datry
  • , Paolo Giordani
  • , Nagore G. Medina
  • , Asunción de los Ríos
  • , Anna M. Romaní
  • , Bettina Weber
  • , Pilar Hurtado
  • CSIC - Biological Mission of Galicia
  • CSIC - Institute of Natural Resources and Agrobiology of Seville
  • Catalan Institute for Water Research
  • University of Girona
  • Universidad Rey Juan Carlos
  • Complutense University
  • University of Almeria
  • INRAE
  • University of Genoa
  • Universidad Autónoma de Madrid
  • University of Graz
  • Max Planck Institute for Chemistry

Research output: Contribution to journalArticlepeer-review

25 Citations (Scopus)

Abstract

A significant fraction of Earth's ecosystems undergoes periodic wet-dry alternating transitional states. These globally distributed water-driven transitional ecosystems, such as intermittent rivers and coastal shorelines, have traditionally been studied as two distinct entities, whereas they constitute a single, interconnected meta-ecosystem. This has resulted in a poor conceptual and empirical understanding of water-driven transitional ecosystems. Here, we develop a conceptual framework that places the temporal availability of water as the core driver of biodiversity and functional patterns of transitional ecosystems at the global scale. Biological covers (e.g., aquatic biofilms and biocrusts) serve as an excellent model system thriving in both aquatic and terrestrial states, where their succession underscores the intricate interplay between these two states. The duration, frequency, and rate of change of wet-dry cycles impose distinct plausible scenarios where different types of biological covers can occur depending on their desiccation/hydration resistance traits. This implies that the distinct eco-evolutionary potential of biological covers, represented by their trait profiles, would support different functions while maintaining similar multifunctionality levels. By embracing multiple alternating transitional states as interconnected entities, our approach can help to better understand and manage global change impacts on biodiversity and multifunctionality in water-driven transitional ecosystems, while providing new avenues for interdisciplinary studies.
Original languageEnglish
Article numbere14488
JournalEcology Letters
Volume27
Issue number8
DOIs
Publication statusPublished - Aug 2024
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2024 The Author(s). Ecology Letters published by John Wiley & Sons Ltd.

Keywords

  • alternating transitional states
  • biocrust
  • biofilm
  • biological covers
  • multifunctionality
  • succession
  • water availability

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