Literature DB >> 27111837

Hd3a, RFT1 and Ehd1 integrate photoperiodic and drought stress signals to delay the floral transition in rice.

Francesca Galbiati1,2, Remo Chiozzotto3, Franca Locatelli3, Alberto Spada2, Annamaria Genga3, Fabio Fornara1.   

Abstract

Plants show a high degree of developmental plasticity in response to external cues, including day length and environmental stress. Water scarcity in particular can interfere with photoperiodic flowering, resulting in the acceleration of the switch to reproductive growth in several species, a process called drought escape. However, other strategies are possible and drought stress can also delay flowering, albeit the underlying mechanisms have never been addressed at the molecular level. We investigated these interactions in rice, a short day species in which drought stress delays flowering. A protocol that allows the synchronization of drought with the floral transition was set up to profile the transcriptome of leaves subjected to stress under distinct photoperiods. We identified clusters of genes that responded to drought differently depending on day length. Exposure to drought stress under floral-inductive photoperiods strongly reduced transcription of EARLY HEADING DATE 1 (Ehd1), HEADING DATE 3a (Hd3a) and RICE FLOWERING LOCUS T 1 (RFT1), primary integrators of day length signals, providing a molecular connection between stress and the photoperiodic pathway. However, phenotypic and transcriptional analyses suggested that OsGIGANTEA (OsGI) does not integrate drought and photoperiodic signals as in Arabidopsis, highlighting molecular differences between long and short day model species.
© 2016 John Wiley & Sons Ltd.

Entities:  

Keywords:  OsGI; RNA-Sequencing; florigen; photoperiodic flowering

Mesh:

Substances:

Year:  2016        PMID: 27111837     DOI: 10.1111/pce.12760

Source DB:  PubMed          Journal:  Plant Cell Environ        ISSN: 0140-7791            Impact factor:   7.228


  20 in total

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3.  Antagonistic Transcription Factor Complexes Modulate the Floral Transition in Rice.

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10.  Abiotic and biotic stresses induce a core transcriptome response in rice.

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