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PMID: 27644069 Published · ppublish English Journal Article Review

Optimal plant water economy.

Plant, cell & environment ·Vol. 40 ·No. 6 ·2017-06-00 ·Pages 881-896

Buckley TN, Sack L, Farquhar GD

Abstract

It was shown over 40 years ago that plants maximize carbon gain for a given rate of water loss if stomatal conductance, gs , varies in response to external and internal conditions such that the marginal carbon revenue of water, ∂A/∂E, remains constant over time. This theory has long held promise for understanding the physiological ecology of water use and for informing models of plant-atmosphere interactions. Full realization of this potential hinges on three questions: (i) Are analytical approximations adequate for applying the theory at diurnal time scales? (ii) At what time scale is it realistic and appropriate to apply the theory? (iii) How should gs vary to maximize growth over long time scales? We review the current state of understanding for each of these questions and describe future research frontiers. In particular, we show that analytical solutions represent the theory quite poorly, especially when boundary layer or mesophyll resistances are significant; that diurnal variations in hydraulic conductance may help or hinder maintenance of ∂A/∂E, and the matter requires further study; and that optimal diurnal responses are distinct from optimal long-term variations in gs , which emerge from optimal shifts in carbon partitioning at the whole-plant scale.

Keywords
CO2 drought optimisation stomata transpiration
MeSH Terms
Atmosphere Carbon/metabolism Circadian Rhythm Droughts Models, Biological Plant Development Plant Physiological Phenomena Soil/chemistry Water/metabolism
Chemicals
Soil Water Carbon
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Buckley Thomas N
Plant Breeding Institute, Faculty of Agriculture and Environment, The University of Sydney, Narrabri, New South Wales, 2390, Australia.
Sack Lawren
Department of Ecology and Evolutionary Biology, University of California, Los Angeles, California, 90095, United States.
Farquhar Graham D
Research School of Biology, Australian National University, Canberra, 0200, Australia.
Article Info
Journal
Plant, cell & environment
Abbr.
Plant Cell Environ
ISSN
1365-3040
Published
2017-06-00
Epub
2016-00-17
Pages
881-896
Language
English
Region
United States
NLM ID
9309004
Subset
IM
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