森林樹木は長期化する干ばつに十分適応できないことを新研究が示す(New Study Shows Forest Trees Ill-equipped for Longer Droughts)

2026-08-27 中国科学院(CAS)

中国科学院華南植物園(SCBG)などの研究チームは、世界各地の森林で実施された40件の実験を統合し、森林樹木が長期的な干ばつに直面しても、内部の生理機能を大きく変化させないことを明らかにした。研究では、林冠下に雨水を遮る樋を設置して土壌への水供給を減らし、自然環境に近い条件で樹木の24種類の形質を調査した。その結果、水輸送機能や光合成能力などは概ね維持された一方、樹体の水分状態は低下し、水輸送系が損傷する限界までの「安全余裕」が縮小した。機能を維持することは、降雨回復後に速やかに炭素を吸収できる利点があるものの、干ばつ耐性そのものが高まるわけではない。気候変動による干ばつの頻度・強度増大に対し、森林は従来想定されたほど容易には適応できない可能性があり、森林保全や将来予測モデルの改善に重要な知見となる。

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乾燥化が進む世界における水力の安全性の低下 Declining hydraulic safety in a drier world

Xingyun Liang, Nate G. McDowell, Defu Wang, +25 , and Qing Ye
Proceedings of the National Academy of Sciences  Published:August 24, 2026
DOI:https://doi.org/10.1073/pnas.2622754123

Abstract

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.

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