Declining hydraulic safety in a drier world

Снижение гидравлической безопасности в более сухом мире
Qing Ye, Shirong Liu, Nate G. McDowell, Hui Liu, Ze‐Xin Fan, Zhicheng Chen, Xiangping Tan, Junwei Luan, X. L. Lu, Weibin Li, Xingyun Liang, Defu Wang, Bo Cui, Jiemin Chen, Keyi Qiu, Xuhui Zhou, Qinghai Song, Ying Jin, Cuiju Liu, Yi Wang, Zhongguo Li, Qiuyu Liu, Pengcheng He, Cheng Yang, Bin Liu, Mujuan Deng, Yuxuan Miu, Xin Tan, Junhua Yan
2026-08-24

drought acclimationembolism resistanceforest throughfall reduction experimentshydraulic failurehydraulic safety margins
Forests worldwide are increasingly exposed to soil drought under climate change, with their fates depending on the ability to maintain essential functions like water transport (hydraulics) and photosynthesis. Acclimation is expected to mitigate drought impacts, but the extent to which trees acclimate remains largely untested, which limits our predictive confidence. Here, we examined 24 physiological attributes from 40 globally distributed forest throughfall reduction (TFE) experiments and found no evidence that trees adjusted their hydraulic or photosynthetic systems in response to drought. Key attributes related to embolism resistance, hydraulic efficiency, leaf nutrients, and Rubisco carboxylation capacity remained unchanged, regardless of coniferous or broadleaf trees, local precipitation levels, or the duration and severity of drought treatments. However, drought-induced declines in tissue water potentials, combined with unchanged embolism resistance, led to narrower hydraulic safety margins and thus an increased risk of hydraulic failure. Although net photosynthetic rate declined significantly due to stomatal closure, nonstructural carbohydrates (starch and sugars) remained stable, suggesting a shift in carbohydrate allocation toward storage. These findings indicate that trees maintain their hydraulic and photosynthetic capacities under drier conditions, enabling them to maximize carbon assimilation on favorable periods following rainfall, while facing an increased risk of hydraulic failure during drought. Physiological acclimation is unlikely to mitigate future drought impacts, while tree mortality from hydraulic failure is likely to increase.
1
Across 40 globally distributed throughfall-reduction experiments, trees showed no hydraulic or photosynthetic acclimation to drought across 24 physiological attributes.
2
Drought lowered tissue water potentials without changing embolism resistance, narrowing hydraulic safety margins and increasing the risk of hydraulic failure.
3
Embolism resistance, hydraulic efficiency, leaf nutrients, and Rubisco carboxylation capacity remained unchanged regardless of tree type, precipitation, drought duration, or drought severity.
4
Stomatal closure significantly reduced net photosynthesis, while stable starch and sugar levels suggested greater carbohydrate allocation toward storage.
5
Trees retained hydraulic and photosynthetic capacities that may support carbon assimilation after rainfall, but physiological acclimation is unlikely to prevent increasing drought-related hydraulic mortality.

Trees and forest ecosystems exposed to soil drought in globally distributed forest throughfall reduction experiments

Drought acclimation of hydraulic and photosynthetic systems, including changes in embolism resistance, hydraulic efficiency, tissue water potential, hydraulic safety margins, photosynthesis, and carbohydrate allocation, and its implications for hydraulic failure and tree mortality

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2026-08-24
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Authors
Qing Ye
Shirong Liu
Nate G. McDowell
Hui Liu
Ze‐Xin Fan
Zhicheng Chen
Xiangping Tan
Junwei Luan
X. L. Lu
Weibin Li
Xingyun Liang
Defu Wang
Bo Cui
Jiemin Chen
Keyi Qiu
Xuhui Zhou
Qinghai Song
Ying Jin
Cuiju Liu
Yi Wang
Zhongguo Li
Qiuyu Liu
Pengcheng He
Cheng Yang
Bin Liu
Mujuan Deng
Yuxuan Miu
Xin Tan
Junhua Yan
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