Amazonian trees under long-term drought exposure are more resilient to El Niño extreme

Abstract The rising frequency and intensity of extreme droughts across the Amazon raises uncertainty about the capacity of tropical forests to adjust to future climate. Here, we combined the severe 2023 El Niño drought with a multi-decadal throughfall-exclusion experiment to compare eco-physiological resilience between pre-exposed drought-primed trees (PT) and untreated controls (CT). During El Niño, PTs reduced transpiration by 25%, while CTs declined by up to 54% relative to pre-drought levels. Post-drought, PTs fully recovered transpiration, whereas CTs recovered only to 77.5%, showing legacy effects and pronounced leaf area loss. These differences were reinforced by long-term structural changes (i.e., mortality) in the TFE, which reduced water competition during extreme drought. Tree structural data revealed a significantly smaller crown-to-stem size ratio in PTs, reducing sensitivity to evaporative demand and underpinning their enhanced drought resistance and resilience. These findings reveal that physiological resilience to extreme events can emerge from long-term drought exposure through structural adjustments at both ecosystem and individual tree scale.

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Publication Details

Journal
Communications Earth & Environment
Published
2026-09-14
DOI
https://doi.org/10.1038/s43247-026-03887-0
Primary Topic
Plant Water Relations and Carbon Dynamics
Type
article
Field-Weighted Citation Impact
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article

Amazonian trees under long-term drought exposure are more resilient to El Niño extreme

Louise Terryn, João Athaydes Silva, Kim Calders, Pablo Sanchez‐Martinez et al.
Communications Earth & Environment
Plant Water Relations and Carbon Dynamics
article

Amazonian trees under long-term drought exposure are more resilient to El Niño extreme

Louise Terryn, João Athaydes Silva, Kim Calders, Pablo Sanchez‐Martinez, Rafael S. Oliveira, Edward T. A. Mitchard, Caterina Buranelli, Antônio C. L. da Costa, Mathias Disney, Wouter A.J. Van den Broeck, Rosa Pacheco, A.B. Silva, Lucy Rowland, Vanessa Negrão-Rodrigues, Grazielle Sales Teodoro, Maurizio Mencuccini, Wout Cherlet, Lion R. Martius, Sassan Saatchi, Mateus C. Silva, Oliver Binks, Patrick Meir, Paulo Bittencourt, Calil Torres‐Amaral, Ross Deans, Zane Cooper
article en

Abstract

Abstract The rising frequency and intensity of extreme droughts across the Amazon raises uncertainty about the capacity of tropical forests to adjust to future climate. Here, we combined the severe 2023 El Niño drought with a multi-decadal throughfall-exclusion experiment to compare eco-physiological resilience between pre-exposed drought-primed trees (PT) and untreated controls (CT). During El Niño, PTs reduced transpiration by 25%, while CTs declined by up to 54% relative to pre-drought levels. Post-drought, PTs fully recovered transpiration, whereas CTs recovered only to 77.5%, showing legacy effects and pronounced leaf area loss. These differences were reinforced by long-term structural changes (i.e., mortality) in the TFE, which reduced water competition during extreme drought. Tree structural data revealed a significantly smaller crown-to-stem size ratio in PTs, reducing sensitivity to evaporative demand and underpinning their enhanced drought resistance and resilience. These findings reveal that physiological resilience to extreme events can emerge from long-term drought exposure through structural adjustments at both ecosystem and individual tree scale.

Communications Earth & EnvironmentVol. 7(1)
Institució Catalana de Recerca i Estudis Avançats (ES), Museu Paraense Emílio Goeldi (BR), Jet Propulsion Laboratory (US), Universidade Estadual de Campinas (UNICAMP) (BR), University of Exeter (GB), Universidade Federal Rural da Amazônia (BR), Department of Space (IN), Ghent University (BE), National Centre for Earth Observation (GB), Centre for Research on Ecology and Forestry Applications (ES), University College London (GB), Universidade Federal do Pará (BR), Cardiff University (GB), University of Edinburgh (GB)
Climate action
Openalex Percentile: Top 13%
Plant Water Relations and Carbon Dynamics
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