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Contrasting stomatal sensitivity to temperature and soil drought in mature alpine conifers.
Peters, Richard L; Speich, Matthias; Pappas, Christoforos; Kahmen, Ansgar; von Arx, Georg; Graf Pannatier, Elisabeth; Steppe, Kathy; Treydte, Kerstin; Stritih, Ana; Fonti, Patrick.
Afiliação
  • Peters RL; Forest Dynamics, Landscape Dynamics and Forest Soils and Biogeochemistry, Swiss Federal Research Institute for Forest, Snow and Landscape Research WSL, Birmensdorf, CH-8903, Switzerland.
  • Speich M; Department of Environmental Sciences-Botany, Basel University, Basel, CH-4056, Switzerland.
  • Pappas C; Forest Dynamics, Landscape Dynamics and Forest Soils and Biogeochemistry, Swiss Federal Research Institute for Forest, Snow and Landscape Research WSL, Birmensdorf, CH-8903, Switzerland.
  • Kahmen A; Department of Environmental Systems Science, ETH Zurich, Zurich, CH-8092, Switzerland.
  • von Arx G; Département de géographie and Centre d'études nordiques, Université de Montréal, Montréal, Quebec, Canada.
  • Graf Pannatier E; Faculty of Environmental Sciences, Czech University of Life Sciences Prague, Prague, Czech Republic.
  • Steppe K; Department of Environmental Sciences-Botany, Basel University, Basel, CH-4056, Switzerland.
  • Treydte K; Forest Dynamics, Landscape Dynamics and Forest Soils and Biogeochemistry, Swiss Federal Research Institute for Forest, Snow and Landscape Research WSL, Birmensdorf, CH-8903, Switzerland.
  • Stritih A; Forest Dynamics, Landscape Dynamics and Forest Soils and Biogeochemistry, Swiss Federal Research Institute for Forest, Snow and Landscape Research WSL, Birmensdorf, CH-8903, Switzerland.
  • Fonti P; Laboratory of Plant Ecology, Department of Plants and Crops, Faculty of Bioscience Engineering, Ghent University, Ghent, B-9000, Belgium.
Plant Cell Environ ; 42(5): 1674-1689, 2019 05.
Article em En | MEDLINE | ID: mdl-30536787
ABSTRACT
Conifers growing at high elevations need to optimize their stomatal conductance (gs ) for maximizing photosynthetic yield while minimizing water loss under less favourable thermal conditions. Yet the ability of high-elevation conifers to adjust their gs sensitivity to environmental drivers remains largely unexplored. We used 4 years of sap flow measurements to elucidate intraspecific and interspecific variability of gs in Larix decidua Mill. and Picea abies (L.) Karst along an elevational gradient and contrasting soil moisture conditions. Site- and species-specific gs response to main environmental drivers were examined, including vapour pressure deficit, air temperature, solar irradiance, and soil water potential. Our results indicate that maximum gs of L. decidua is >2 times higher, shows a more plastic response to temperature, and down-regulates gs stronger during atmospheric drought compared to P. abies. These differences allow L. decidua to exert more efficient water use, adjust to site-specific thermal conditions, and reduce water loss during drought episodes. The stronger plasticity of gs sensitivity to temperature and higher conductance of L. decidua compared to P. abies provide new insights into species-specific water use strategies, which affect species' performance and should be considered when predicting terrestrial water dynamics under future climatic change.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Transpiração Vegetal / Estômatos de Plantas / Traqueófitas Idioma: En Ano de publicação: 2019 Tipo de documento: Article País de afiliação: Suíça

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Transpiração Vegetal / Estômatos de Plantas / Traqueófitas Idioma: En Ano de publicação: 2019 Tipo de documento: Article País de afiliação: Suíça