» Articles » PMID: 36633860

The Impact of Growth at Elevated [CO2] on Stomatal Anatomy and Behavior Differs Between Wheat Species and Cultivars

Overview
Journal J Exp Bot
Specialty Biology
Date 2023 Jan 12
PMID 36633860
Authors
Affiliations
Soon will be listed here.
Abstract

The ability of plants to respond to changes in the environment is crucial to their survival and reproductive success. The impact of increasing the atmospheric CO2 concentration (a[CO2]), mediated by behavioral and developmental responses of stomata, on crop performance remains a concern under all climate change scenarios, with potential impacts on future food security. To identify possible beneficial traits that could be exploited for future breeding, phenotypic variation in morphological traits including stomatal size and density, as well as physiological responses and, critically, the effect of growth [CO2] on these traits, was assessed in six wheat relative accessions (including Aegilops tauschii, Triticum turgidum ssp. Dicoccoides, and T. turgidum ssp. dicoccon) and five elite bread wheat T. aestivum cultivars. Exploiting a range of different species and ploidy, we identified key differences in photosynthetic capacity between elite hexaploid wheat and wheat relatives. We also report differences in the speed of stomatal responses which were found to be faster in wheat relatives than in elite cultivars, a trait that could be useful for enhanced photosynthetic carbon gain and water use efficiency. Furthermore, these traits do not all appear to be influenced by elevated [CO2], and determining the underlying genetics will be critical for future breeding programmes.

Citing Articles

Stomatal patterning is differently regulated in adaxial and abaxial epidermis in Arabidopsis.

Jalakas P, Tulva I, Berzina N, Horak H J Exp Bot. 2024; 75(20):6476-6488.

PMID: 39158985 PMC: 11523041. DOI: 10.1093/jxb/erae354.


Exploring natural genetic diversity in a bread wheat multi-founder population: dual imaging of photosynthesis and stomatal kinetics.

Faralli M, Mellers G, Wall S, Vialet-Chabrand S, Forget G, Galle A J Exp Bot. 2024; 75(21):6733-6747.

PMID: 38795361 PMC: 11565207. DOI: 10.1093/jxb/erae233.


Plants and global warming: challenges and strategies for a warming world.

Seth P, Sebastian J Plant Cell Rep. 2024; 43(1):27.

PMID: 38163826 DOI: 10.1007/s00299-023-03083-w.

References
1.
Yin X, Gu J, Dingkuhn M, Struik P . A model-guided holistic review of exploiting natural variation of photosynthesis traits in crop improvement. J Exp Bot. 2022; 73(10):3173-3188. PMC: 9126731. DOI: 10.1093/jxb/erac109. View

2.
Vialet-Chabrand S, Lawson T . Dynamic leaf energy balance: deriving stomatal conductance from thermal imaging in a dynamic environment. J Exp Bot. 2019; 70(10):2839-2855. PMC: 6506762. DOI: 10.1093/jxb/erz068. View

3.
Ainsworth E, Long S . 30 years of free-air carbon dioxide enrichment (FACE): What have we learned about future crop productivity and its potential for adaptation?. Glob Chang Biol. 2020; 27(1):27-49. DOI: 10.1111/gcb.15375. View

4.
Raven J . Selection pressures on stomatal evolution. New Phytol. 2021; 153(3):371-386. DOI: 10.1046/j.0028-646X.2001.00334.x. View

5.
Murray R, Emblow M, Hetherington A, Foster G . Plant virus infections control stomatal development. Sci Rep. 2016; 6:34507. PMC: 5043284. DOI: 10.1038/srep34507. View