Genome-wide analysis of the AP2/ERF family in Eucalyptus grandis: an intriguing over-representation of stress-responsive DREB1/CBF genes

PLoS One. 2015 Apr 7;10(4):e0121041. doi: 10.1371/journal.pone.0121041. eCollection 2015.

Abstract

Background: The AP2/ERF family includes a large number of developmentally and physiologically important transcription factors sharing an AP2 DNA-binding domain. Among them DREB1/CBF and DREB2 factors are known as master regulators respectively of cold and heat/osmotic stress responses.

Experimental approaches: The manual annotation of AP2/ERF family from Eucalyptus grandis, Malus, Populus and Vitis genomes allowed a complete phylogenetic study for comparing the structure of this family in woody species and the model Arabidopsis thaliana. Expression profiles of the whole groups of EgrDREB1 and EgrDREB2 were investigated through RNAseq database survey and RT-qPCR analyses.

Results: The structure and the size of the AP2/ERF family show a global conservation for the plant species under comparison. In addition to an expansion of the ERF subfamily, the tree genomes mainly differ with respect to the group representation within the subfamilies. With regard to the E. grandis DREB subfamily, an obvious feature is the presence of 17 DREB1/CBF genes, the maximum reported to date for dicotyledons. In contrast, only six DREB2 have been identified, which is similar to the other plants species under study, except for Malus. All the DREB1/CBF and DREB2 genes from E. grandis are expressed in at least one condition and all are heat-responsive. Regulation by cold and drought depends on the genes but is not specific of one group; DREB1/CBF group is more cold-inducible than DREB2 which is mainly drought responsive.

Conclusion: These features suggest that the dramatic expansion of the DREB1/CBF group might be related to the adaptation of this evergreen tree to climate changes when it expanded in Australia.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cold-Shock Response / physiology*
  • Eucalyptus* / genetics
  • Eucalyptus* / metabolism
  • Genes, Plant / physiology*
  • Genome-Wide Association Study
  • Osmotic Pressure / physiology*
  • Plant Proteins* / biosynthesis
  • Plant Proteins* / genetics
  • Transcription Factors* / genetics
  • Transcription Factors* / metabolism

Substances

  • Plant Proteins
  • Transcription Factors

Grants and funding

This work was funded by Fibre Excellence (31, St Gaudens, France) associated with the Midi Pyrénées Regional Council (France) and also supported by the French Ministry for Scientific Research (University Toulouse III (UPS), CNRS and Labex Tulip (ANR-10-LABX-41); the Vietnamese Government provided the PBC grant. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.