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Association genetics, geography and ecophysiology link stomatal patterning in P opulus trichocarpa with carbon gain and disease resistance trade‐offs

Athena D. McKown; Robert D. Guy; Linda Quamme; Jaroslav Klápště; Jonathan La Mantia; C. P. Constabel; Yousry A. El‐Kassaby; Richard C. Hamelin; Michael Zifkin; M. S. Azam
Molecular Ecology · Vol. 23, Issue 23 · pp. 5771-5790 · 2014

Abstract

Stomata are essential for diffusive entry of gases to support photosynthesis, but may also expose internal leaf tissues to pathogens. To uncover trade‐offs in range‐wide adaptation relating to stomata, we investigated the underlying genetics of stomatal traits and linked variability in these traits with geoclimate, ecophysiology, condensed foliar tannins and pathogen susceptibility in black cottonwood ( P opulus trichocarpa ). Upper (adaxial) and lower (abaxial) leaf stomatal traits were measured from 454 accessions collected throughout much of the species range. We calculated broad‐sense heritability ( H 2 ) of stomatal traits and, using SNP data from a 34 K P opulus SNP array, performed a genome‐wide association studies ( GWAS ) to uncover genes underlying stomatal trait variation. H 2 values for stomatal traits were moderate (average H 2 = 0.33). GWAS identified genes associated primarily with adaxial stomata, including polarity genes ( PHABULOSA ), stomatal development genes ( BRASSINOSTEROID ‐ INSENSITIVE 2 ) and disease/wound‐response genes ( GLUTAMATE ‐ CYSTEINE LIGASE ). Stomatal traits correlated with latitude, gas exchange, condensed tannins and leaf rust ( M elampsora ) infection. Latitudinal trends of greater adaxial stomata numbers and guard cell pore size corresponded with higher stomatal conductance ( g s ) and photosynthesis ( A max ), faster shoot elongation, lower foliar tannins and greater M elampsora susceptibility. This suggests an evolutionary trade‐off related to differing selection pressures across the species range. In northern environments, more adaxial stomata and larger pore sizes reflect selection for rapid carbon gain and growth. By contrast, southern genotypes have fewer adaxial stomata, smaller pore sizes and higher levels of condensed tannins, possibly linked to greater pressure from natural leaf pathogens, which are less significant in northern ecosystems.

Bibliographic Information

JournalMolecular Ecology
PublisherWiley
Publication Date2014-12-01
Publication Year2014
Volume23
Issue23
Pages5771-5790
Document TypeJournal Article
Print ISSN0962-1083
eISSN1365-294X
DOI10.1111/mec.12969
SubjectEcology & Organismal Biology

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/1365294X
Publisher PageOpen Publisher Page
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