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PMID: 27605929 Published · epublish English Journal Article

Does Size Matter? Atmospheric CO2 May Be a Stronger Driver of Stomatal Closing Rate Than Stomatal Size in Taxa That Diversified under Low CO2.

Frontiers in plant science ·Vol. 7 ·2016-00-00 ·Pages 1253

Elliott-Kingston C, Haworth M, Yearsley JM, Batke SP, Lawson T, McElwain JC

Abstract

One strategy for plants to optimize stomatal function is to open and close their stomata quickly in response to environmental signals. It is generally assumed that small stomata can alter aperture faster than large stomata. We tested the hypothesis that species with small stomata close faster than species with larger stomata in response to darkness by comparing rate of stomatal closure across an evolutionary range of species including ferns, cycads, conifers, and angiosperms under controlled ambient conditions (380 ppm CO2; 20.9% O2). The two species with fastest half-closure time and the two species with slowest half-closure time had large stomata while the remaining three species had small stomata, implying that closing rate was not correlated with stomatal size in these species. Neither was response time correlated with stomatal density, phylogeny, functional group, or life strategy. Our results suggest that past atmospheric CO2 concentration during time of taxa diversification may influence stomatal response time. We show that species which last diversified under low or declining atmospheric CO2 concentration close stomata faster than species that last diversified in a high CO2 world. Low atmospheric [CO2] during taxa diversification may have placed a selection pressure on plants to accelerate stomatal closing to maintain adequate internal CO2 and optimize water use efficiency.

Keywords
atmospheric CO2 concentration half-closure time in response to darkness stomata stomatal size time of taxa diversification
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Elliott-Kingston Caroline
School of Agriculture and Food Science, University College Dublin Dublin, Ireland.
Haworth Matthew
Italian National Research Council, Institute of Tree and Timber IVALSA Rome, Italy.
Yearsley Jon M
Earth Institute, Science Centre East, School of Biology and Environmental Science, University College Dublin Dublin, Ireland.
Batke Sven P
Earth Institute, Science Centre East, School of Biology and Environmental Science, University College Dublin Dublin, Ireland.
Lawson Tracy
School of Biological Science, University of Essex Colchester, UK.
McElwain Jennifer C
Earth Institute, Science Centre East, School of Biology and Environmental Science, University College Dublin Dublin, Ireland.
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Article Info
Journal
Frontiers in plant science
Abbr.
Front Plant Sci
ISSN
1664-462X
Published
2016-00-00
Epub
2016-00-24
Pages
1253
Language
English
Region
Switzerland
NLM ID
101568200
PMCID
PMC4996050
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