Self-organized hummock-hollow patterns redistribute salinity stress in coastal meadows

Self-organization theory predicts that ecosystem functioning and resilience can emerge from feedbacks that generate spatial patterns. These emergent properties have commonly been explained by local positive feedbacks that concentrate limiting resources within productive patches. Here, we identify a stress-redistribution feedback underlying self-organized hummock-hollow patterning. Through this feedback, salinity stress is partitioned across the patterned landscape, maintaining vegetated hummocks as low-salinity refugia alongside salt-rich hollows and thereby sustaining ecosystem functioning under climate-related salinization. A spatially explicit model predicts that rain-driven salt redistribution lowers hummocks salinity, increases productivity, and enhances resilience to a salt pulse. Field and remote-sensing data support these predictions: Patterned hummocks have lower soil salinity, higher biomass, greater reproductive output, and prolonged phenological activity compared with adjacent homogeneous vegetation. Together, these results reveal that spatial self-organization can support ecosystem functioning and resilience under climate stress through an underappreciated mechanism: the spatial redistribution of environmental stress. Restoring such self-organized patterning may offer a promising strategy for sustaining ecosystems in a changing climate.

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Publication Details

Journal
Science Advances
Published
2026-09-30
DOI
https://doi.org/10.1126/sciadv.aec0903
Primary Topic
Ecosystem dynamics and resilience
Type
article
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article

Self-organized hummock-hollow patterns redistribute salinity stress in coastal meadows

Johan van de Koppel, Pieter C. Roos, Quan‐Xing Liu, Gregory Scott Fivash et al.
Science Advances
Ecosystem dynamics and resilience
article

Self-organized hummock-hollow patterns redistribute salinity stress in coastal meadows

Johan van de Koppel, Pieter C. Roos, Quan‐Xing Liu, Gregory Scott Fivash, Archontoula Valsamidou, Tjeerd Joris Bouma, Max Rietkerk, Jim van Belzen, Mingxuan Wu, Zhiyuan Zhao
article en

Abstract

Self-organization theory predicts that ecosystem functioning and resilience can emerge from feedbacks that generate spatial patterns. These emergent properties have commonly been explained by local positive feedbacks that concentrate limiting resources within productive patches. Here, we identify a stress-redistribution feedback underlying self-organized hummock-hollow patterning. Through this feedback, salinity stress is partitioned across the patterned landscape, maintaining vegetated hummocks as low-salinity refugia alongside salt-rich hollows and thereby sustaining ecosystem functioning under climate-related salinization. A spatially explicit model predicts that rain-driven salt redistribution lowers hummocks salinity, increases productivity, and enhances resilience to a salt pulse. Field and remote-sensing data support these predictions: Patterned hummocks have lower soil salinity, higher biomass, greater reproductive output, and prolonged phenological activity compared with adjacent homogeneous vegetation. Together, these results reveal that spatial self-organization can support ecosystem functioning and resilience under climate stress through an underappreciated mechanism: the spatial redistribution of environmental stress. Restoring such self-organized patterning may offer a promising strategy for sustaining ecosystems in a changing climate.

Science AdvancesVol. 12(40)
University of Antwerp (BE), University of Groningen (NL), Shanghai Jiao Tong University (CN), Utrecht University (NL), Royal Netherlands Institute for Sea Research (NL), Wageningen University & Research (NL), University of Twente (NL)
Climate action
Openalex Percentile: Top 15%
Ecosystem dynamics and resilience
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