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Plant adaptation or acclimation to rising CO 2 ? Insight from first multigenerational RNA‐Seq transcriptome

Alexander Watson‐Lazowski; Yunan Lin; Franco Miglietta; Richard J. Edwards; Mark A. Chapman; Gail Taylor
Global Change Biology · Vol. 22, Issue 11 · pp. 3760-3773 · 2016

Abstract

Atmospheric carbon dioxide ( CO 2 ) directly determines the rate of plant photosynthesis and indirectly effects plant productivity and fitness and may therefore act as a selective pressure driving evolution, but evidence to support this contention is sparse. Using Plantago lanceolata L. seed collected from a naturally high CO 2 spring and adjacent ambient CO 2 control site, we investigated multigenerational response to future, elevated atmospheric CO 2 . Plants were grown in either ambient or elevated CO 2 (700 μmol mol −1 ), enabling for the first time, characterization of the functional and population genomics of plant acclimation and adaptation to elevated CO 2 . This revealed that spring and control plants differed significantly in phenotypic plasticity for traits underpinning fitness including above‐ground biomass, leaf size, epidermal cell size and number and stomatal density and index. Gene expression responses to elevated CO 2 (acclimation) were modest [33–131 genes differentially expressed ( DE )], whilst those between control and spring plants (adaptation) were considerably larger (689–853 DE genes). In contrast, population genomic analysis showed that genetic differentiation between spring and control plants was close to zero, with no fixed differences, suggesting that plants are adapted to their native CO 2 environment at the level of gene expression. An unusual phenotype of increased stomatal index in spring but not control plants in elevated CO 2 correlated with altered expression of stomatal patterning genes between spring and control plants for three loci ( YODA , CDKB 1;1 and SCRM 2 ) and between ambient and elevated CO 2 for four loci ( ER , YODA , MYB 88 and BCA 1 ). We propose that the two positive regulators of stomatal number ( SCRM 2 ) and CDKB 1;1 when upregulated act as key controllers of stomatal adaptation to elevated CO 2 . Combined with significant transcriptome reprogramming of photosynthetic and dark respiration and enhanced growth in spring plants, we have identified the potential basis of plant adaptation to high CO 2 likely to occur over coming decades.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2016-11-01
Publication Year2016
Volume22
Issue11
Pages3760-3773
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.13322
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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