PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
August 22, 2016Proceedings of the National Academy of Sciences172 citationsOpen Access

Regulatory network analysis reveals novel regulators of seed desiccation tolerance in Arabidopsis thaliana

SGSandra Isabel González-MoralesTexas Tech UniversityRMRicardo A. Chávez MontesCenter for Research and Advanced Studies of the National Polytechnic InstituteCHCorina Hayano‐KanashiroUniversidad de Sonora

Key Points

  • Identify and validate the transcriptional regulatory networks and novel transcription factors controlling the acquisition of seed desiccation tolerance in Arabidopsis thaliana.
  • Integrated genomics, bioinformatics, and metabolomics to map desiccation tolerance gene regulatory subnetworks.
  • Assessed candidate transcription factors in Arabidopsis thaliana using knockout mutant lines and transgenic overexpression in desiccation-intolerant mutant backgrounds.
  • Identified two desiccation tolerance subnetworks governing reserve storage and cellular protection downstream of master regulators LEC1, LEC2, FUS3, and ABI3.
  • Validated PLATZ1, PLATZ2, and AGL67 as essential regulatory nodes required for seed desiccation tolerance.
  • Demonstrated that constitutive overexpression of PLATZ1 confers partial desiccation tolerance to vegetative tissues in wild-type plants.

Abstract

Desiccation tolerance (DT) is a remarkable process that allows seeds in the dry state to remain viable for long periods of time that in some instances exceed 1,000 y. It has been postulated that seed DT evolved by rewiring the regulatory and signaling networks that controlled vegetative DT, which itself emerged as a crucial adaptive trait of early land plants. Understanding the networks that regulate seed desiccation tolerance in model plant systems would provide the tools to understand an evolutionary process that played a crucial role in the diversification of flowering plants. In this work, we used an integrated approach that included genomics, bioinformatics, metabolomics, and molecular genetics to identify and validate molecular networks that control the acquisition of DT in Arabidopsis seeds. Two DT-specific transcriptional subnetworks were identified related to storage of reserve compounds and cellular protection mechanisms that act downstream of the embryo development master regulators LEAFY COTYLEDON 1 and 2, FUSCA 3, and ABSCICIC ACID INSENSITIVE 3. Among the transcription factors identified as major nodes in the DT regulatory subnetworks, PLATZ1, PLATZ2, and AGL67 were confirmed by knockout mutants and overexpression in a desiccation-intolerant mutant background to play an important role in seed DT. Additionally, we found that constitutive expression of PLATZ1 in WT plants confers partial DT in vegetative tissues.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

González-Morales et al. (2016) studied this question.

synapsesocial.com/papers/69d7c587f39344339dd1822ahttps://doi.org/10.1073/pnas.1610985113
Ask AI
Helpful
Bookmark
Share
View Full Paper