Predicting stomatal responses to the environment from the optimization of photosynthetic gain and hydraulic cost

被引:289
作者
Sperry, John S. [1 ]
Venturas, Martin D. [1 ]
Anderegg, William R. L. [1 ]
Mencuccini, Maurizio [2 ,3 ]
Mackay, D. Scott [4 ]
Wang, Yujie [1 ]
Love, David M. [1 ]
机构
[1] Univ Utah, Dept Biol, 257 S 1400E, Salt Lake City, UT 84112 USA
[2] Univ Edinburgh, Sch GeoSci, West Mains Rd, Edinburgh EH93, Midlothian, Scotland
[3] CREAF, ICREA, Barcelona 08193, Spain
[4] SUNY Buffalo, Dept Geog, Buffalo, NY 14260 USA
关键词
Ball-Berry-Leuning model; Cowan-Farquhar optimization; hydraulic limitations; photosynthetic optimization; plant drought responses; plant gas exchange; stomatal modelling; stomatal regulation; xylem cavitation; MAXIMUM CARBON GAIN; TEMPERATURE RESPONSE; WATER-STRESS; CONDUCTANCE; DROUGHT; MODEL; XYLEM; CAPACITY; SOIL; COORDINATION;
D O I
10.1111/pce.12852
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Stomatal regulation presumably evolved to optimize CO2 for H2O exchange in response to changing conditions. If the optimization criterion can be readily measured or calculated, then stomatal responses can be efficiently modelled without recourse to empiricalmodels or underlying mechanism. Previous efforts have been challenged by the lack of a transparent index for the cost of losing water. Yet it is accepted that stomata control water loss to avoid excessive loss of hydraulic conductance from cavitation and soil drying. Proximity to hydraulic failure and desiccation can represent the cost of water loss. If at any given instant, the stomatal aperture adjusts to maximize the instantaneous difference between photosynthetic gain and hydraulic cost, then a model can predict the trajectory of stomatal responses to changes in environment across time. Results of this optimization model are consistent with the widely used Ball-Berry-Leuning empirical model ( r(2) > 0.99) across a wide range of vapour pressure deficits and ambient CO2 concentrations for wet soil. The advantage of the optimization approach is the absence of empirical coefficients, applicability to dry as well as wet soil and prediction of plant hydraulic status along with gas exchange.
引用
收藏
页码:816 / 830
页数:15
相关论文
共 59 条
[1]   Meta-analysis reveals that hydraulic traits explain cross-species patterns of drought-induced tree mortality across the globe [J].
Anderegg, William R. L. ;
Klein, Tamir ;
Bartlett, Megan ;
Sack, Lawren ;
Pellegrini, Adam F. A. ;
Choat, Brendan ;
Jansen, Steven .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (18) :5024-5029
[2]  
Anderegg WRL, 2015, NAT GEOSCI, V8, P367, DOI [10.1038/ngeo2400, 10.1038/NGEO2400]
[3]   Improved temperature response functions for models of Rubisco-limited photosynthesis [J].
Bernacchi, CJ ;
Singsaas, EL ;
Pimentel, C ;
Portis, AR ;
Long, SP .
PLANT CELL AND ENVIRONMENT, 2001, 24 (02) :253-259
[4]   Modeling stomatal conductance in the earth system: linking leaf water-use efficiency and water transport along the soil-plant-atmosphere continuum [J].
Bonan, G. B. ;
Williams, M. ;
Fisher, R. A. ;
Oleson, K. W. .
GEOSCIENTIFIC MODEL DEVELOPMENT, 2014, 7 (05) :2193-2222
[5]   Leaf maximum photosynthetic rate and venation are linked by hydraulics1[W][OA] [J].
Brodribb, Tim J. ;
Feild, Taylor S. ;
Jordan, Gregory J. .
PLANT PHYSIOLOGY, 2007, 144 (04) :1890-1898
[6]   Leaf hydraulic evolution led a surge in leaf photosynthetic capacity during early angiosperm diversification [J].
Brodribb, Tim J. ;
Feild, Taylor S. .
ECOLOGY LETTERS, 2010, 13 (02) :175-183
[7]   Xylem hydraulic physiology: The functional backbone of terrestrial plant productivity [J].
Brodribb, Timothy J. .
PLANT SCIENCE, 2009, 177 (04) :245-251
[8]   Leaf hydraulic capacity in ferns, conifers and angiosperms: impacts on photosynthetic maxima [J].
Brodribb, TJ ;
Holbrook, NM ;
Zwieniecki, MA ;
Palma, B .
NEW PHYTOLOGIST, 2005, 165 (03) :839-846
[9]   Hydraulic and photosynthetic co-ordination in seasonally dry tropical forest trees [J].
Brodribb, TJ ;
Holbrook, NM ;
Gutiérrez, MV .
PLANT CELL AND ENVIRONMENT, 2002, 25 (11) :1435-1444
[10]   Optimal plant water economy [J].
Buckley, Thomas N. ;
Sack, Lawren ;
Farquhar, Graham D. .
PLANT CELL AND ENVIRONMENT, 2017, 40 (06) :881-896