Absence of canopy temperature variation despite stomatal adjustment in Pinus sylvestris under multidecadal soil moisture manipulation

天蓬 光合作用 环境科学 气孔导度 含水量 农学 水分 生物 植物 化学 工程类 有机化学 岩土工程
作者
Alice Gauthey,Christoph Bachofen,Janisse Deluigi,Margaux Didion‐Gency,Petra D’Odorico,Jonas Gisler,Eugénie Mas,Marcus Schaub,Philipp Schuler,Christopher J. Still,Álex Tuñas Corzón,Charlotte Grossiord
出处
期刊:New Phytologist [Wiley]
卷期号:240 (1): 127-137 被引量:3
标识
DOI:10.1111/nph.19136
摘要

Global warming and droughts push forests closer to their thermal limits, altering tree carbon uptake and growth. To prevent critical overheating, trees can adjust their thermotolerance (Tcrit ), temperature and photosynthetic optima (Topt and Aopt ), and canopy temperature (Tcan ) to stay below damaging thresholds. However, we lack an understanding of how soil droughts affect photosynthetic thermal plasticity and Tcan regulation. In this study, we measured the effect of soil moisture on the seasonal and diurnal dynamics of net photosynthesis (A), stomatal conductance (gs ), and Tcan , as well as the thermal plasticity of photosynthesis (Tcrit , Topt , and Aopt ), over the course of 1 yr using a long-term irrigation experiment in a drought-prone Pinus sylvestris forest in Switzerland. Irrigation resulted in higher needle-level A, gs , Topt , and Aopt compared with naturally drought-exposed trees. No daily or seasonal differences in Tcan were observed between treatments. Trees operated below their thermal thresholds (Tcrit ), independently of soil moisture content. Despite strong Tcan and Tair coupling, we provide evidence that drought reduces trees' temperature optimum due to a substantial reduction of gs during warm and dry periods of the year. These findings provide important insights regarding the effects of soil drought on the thermal tolerance of P. sylvestris.
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