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PMID: 20100339 Published · epublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Transcriptional regulatory network triggered by oxidative signals configures the early response mechanisms of japonica rice to chilling stress.

BMC plant biology ·Vol. 10 ·2010-01-25 ·Pages 16

Yun KY, Park MR, Mohanty B, Herath V, Xu F, Mauleon R, Wijaya E, Bajic VB, Bruskiewich R, de Los Reyes BG

Abstract

The transcriptional regulatory network involved in low temperature response leading to acclimation has been established in Arabidopsis. In japonica rice, which can only withstand transient exposure to milder cold stress (10 degrees C), an oxidative-mediated network has been proposed to play a key role in configuring early responses and short-term defenses. The components, hierarchical organization and physiological consequences of this network were further dissected by a systems-level approach. Regulatory clusters responding directly to oxidative signals were prominent during the initial 6 to 12 hours at 10 degrees C. Early events mirrored a typical oxidative response based on striking similarities of the transcriptome to disease, elicitor and wounding induced processes. Targets of oxidative-mediated mechanisms are likely regulated by several classes of bZIP factors acting on as1/ocs/TGA-like element enriched clusters, ERF factors acting on GCC-box/JAre-like element enriched clusters and R2R3-MYB factors acting on MYB2-like element enriched clusters.Temporal induction of several H2O2-induced bZIP, ERF and MYB genes coincided with the transient H2O2 spikes within the initial 6 to 12 hours. Oxidative-independent responses involve DREB/CBF, RAP2 and RAV1 factors acting on DRE/CRT/rav1-like enriched clusters and bZIP factors acting on ABRE-like enriched clusters. Oxidative-mediated clusters were activated earlier than ABA-mediated clusters. Genome-wide, physiological and whole-plant level analyses established a holistic view of chilling stress response mechanism of japonica rice. Early response regulatory network triggered by oxidative signals is critical for prolonged survival under sub-optimal temperature. Integration of stress and developmental responses leads to modulated growth and vigor maintenance contributing to a delay of plastic injuries.

MeSH Terms
Cold Temperature Gene Expression Profiling Gene Expression Regulation, Plant Gene Regulatory Networks Hydrogen Peroxide/metabolism Oligonucleotide Array Sequence Analysis Oryza/genetics,growth & development,metabolism Oxidation-Reduction Oxidative Stress Plant Proteins/genetics,metabolism Promoter Regions, Genetic RNA, Plant/genetics Signal Transduction Transcription Factors/genetics,metabolism
Chemicals
Plant Proteins RNA, Plant Transcription Factors Hydrogen Peroxide
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Yun Kil-Young
School of Biology and Ecology, University of Maine, Orono, ME 04469, USA.
Park Myoung Ryoul
Mohanty Bijayalaxmi
Herath Venura
Xu Fuyu
Mauleon Ramil
Wijaya Edward
Bajic Vladimir B
Bruskiewich Richard
de Los Reyes Benildo G
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Article Info
Journal
BMC plant biology
Abbr.
BMC Plant Biol
ISSN
1471-2229
Published
2010-01-25
Epub
2010-00-25
Pages
16
Language
English
Region
England
NLM ID
100967807
PMCID
PMC2826336
Subset
IM
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