Physiological acclimation dampens initial effects of elevated temperature and atmospheric CO 2 concentration in mature boreal Norway spruce
作者:Shubhangi Lamba, Marianne Hall, Mats Räntfors, Nitin Chaudhary, Sune Linder, Danielle A. Way, Johan Uddling, Göran Wallin · 发表于:Plant Cell & Environment · 年份:2017 · DOI:10.1111/pce.13079 · 被引用次数:54 · 研究领域:Plant Water Relations and Carbon Dynamics、Plant responses to elevated CO2、Tree-ring climate responses
Abstract Physiological processes of terrestrial plants regulate the land–atmosphere exchange of carbon, water, and energy, yet few studies have explored the acclimation responses of mature boreal conifer trees to climate change. Here we explored the acclimation responses of photosynthesis, respiration, and stomatal conductance to elevated temperature and/or CO 2 concentration ([CO 2 ]) in a 3‐year field experiment with mature boreal Norway spruce. We found that elevated [CO 2 ] decreased photosynthetic carboxylation capacity (−23% at 25 °C) and increased shoot respiration (+64% at 15 °C), while warming had no significant effects. Shoot respiration, but not photosynthetic capacity, exhibited seasonal acclimation. Stomatal conductance at light saturation and a vapour pressure deficit of 1 kPa was unaffected by elevated [CO 2 ] but significantly decreased (−27%) by warming, and the ratio of intercellular to ambient [CO 2 ] was enhanced (+17%) by elevated [CO 2 ] and decreased (−12%) by warming. Many of these responses differ from those typically observed in temperate tree species. Our results show that long‐term physiological acclimation dampens the initial stimulation of plant net carbon assimilation to elevated [CO 2 ], and of plant water use to warming. Models that do not account for these responses may thus overestimate the impacts of climate change on future boreal vegetation–atmosphere interactions.