Precipitation and soil phosphorus regulate post-drought resilience in tropical forests
Artikel i vetenskaplig tidskrift, 2026

Tropical forests are increasingly affected by drought, yet the factors that control post-drought ecosystem resilience—the capacity to withstand disturbances—are not fully understood. Here we use temporal autocorrelation of satellite-derived vegetation greenness to quantify ecosystem resilience following 142,444 severe drought events across tropical forests from 2003 to 2022. We show that resilience declined in 68.8% of areas after droughts, particularly in dry environments, whereas 20.3% of areas with increased resilience were located in moist tropical forests. More intense and prolonged droughts led to a pronounced decline in resilience. Mean annual precipitation was identified as the most important regulator influencing resilience changes after drought, while soil phosphorus was the most consistent regulator across forest biomes, exhibiting widespread mitigating effects on resilience loss. Along decreasing precipitation gradients, the mitigating effect of soil phosphorus on post-drought resilience loss intensified. These findings provide insights into how tropical forests respond to drought and offer practical guidance for region-specific, adaptive forest management under a changing climate.

Författare

Yang Chu

Beijing Normal University

Yuhao Feng

The University of Hong Kong

Yanjun Su

Chinese Academy of Sciences

China National Botanical Garden

Chao Wu

Tsinghua University

Yingping Wang

Monash University

University of Chinese Academy of Sciences

Tingting Li

Chinese Academy of Sciences

Lanlan Guo

Beijing Normal University

Ziqian Zhong

Chalmers, Rymd-, geo- och miljövetenskap, Geovetenskap och fjärranalys

Tiewei Li

Tsinghua University

Hongtao Xu

Zhejiang Normal University

Guoyan Yang

Beijing Normal University

Huan Zheng

Beijing Normal University

Xiangqi He

Beijing Normal University

Haoxiang Zhao

Beijing Normal University

Chengcheng Huang

Beijing Normal University

Yiyang Gao

Beijing Normal University

Shiyu Yao

Chinese Academy of Sciences

Bin He

Tsinghua University

Nature Geoscience

1752-0894 (ISSN) 1752-0908 (eISSN)

Vol. In Press

Unveiling the impacts of vapor pressure deficit on forest productivity (VAPOR)

Europeiska kommissionen (EU) (EC/HE/101154385), 2024-09-19 -- 2025-09-18.

Ämneskategorier (SSIF 2025)

Skogsvetenskap

Ekologi

Klimatvetenskap

DOI

10.1038/s41561-026-02095-x

Mer information

Senast uppdaterat

2026-09-14