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PMID: 21092124 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Transcriptomic and metabolomic shifts in rice roots in response to Cr (VI) stress.

BMC genomics ·Vol. 11 ·2010-11-20 ·Pages 648

Dubey S, Misra P, Dwivedi S, Chatterjee S, Bag SK, Mantri S, Asif MH, Rai A, Kumar S, Shri M, Tripathi P, Tripathi RD, Trivedi PK, Chakrabarty D, Tuli R

Abstract

Widespread use of chromium (Cr) contaminated fields due to careless and inappropriate management practices of effluent discharge, mostly from industries related to metallurgy, electroplating, production of paints and pigments, tanning, and wood preservation elevates its concentration in surface soil and eventually into rice plants and grains. In spite of many previous studies having been conducted on the effects of chromium stress, the precise molecular mechanisms related to both the effects of chromium phytotoxicity, the defense reactions of plants against chromium exposure as well as translocation and accumulation in rice remain poorly understood. Detailed analysis of genome-wide transcriptome profiling in rice root is reported here, following Cr-plant interaction. Such studies are important for the identification of genes responsible for tolerance, accumulation and defense response in plants with respect to Cr stress. Rice root metabolome analysis was also carried out to relate differential transcriptome data to biological processes affected by Cr (VI) stress in rice. To check whether the Cr-specific motifs were indeed significantly over represented in the promoter regions of Cr-responsive genes, occurrence of these motifs in whole genome sequence was carried out. In the background of whole genome, the lift value for these 14 and 13 motifs was significantly high in the test dataset. Though no functional role has been assigned to any of the motifs, but all of these are present as promoter motifs in the Database of orthologus promoters. These findings clearly suggest that a complex network of regulatory pathways modulates Cr-response of rice. The integrated matrix of both transcriptome and metabolome data after suitable normalization and initial calculations provided us a visual picture of the correlations between components. Predominance of different motifs in the subsets of genes suggests the involvement of motif-specific transcription modulating proteins in Cr stress response of rice.

MeSH Terms
Biomass Chromium/toxicity Cluster Analysis Down-Regulation/drug effects,genetics Gene Expression Profiling Gene Expression Regulation, Plant/drug effects Genes, Plant/genetics Malondialdehyde/metabolism Metabolic Networks and Pathways/drug effects Metabolomics Molecular Sequence Annotation Oryza/drug effects,genetics,metabolism Plant Proteins/genetics,metabolism Plant Roots/anatomy & histology,drug effects,genetics,metabolism Plant Shoots/anatomy & histology,drug effects Proline/metabolism Promoter Regions, Genetic/genetics Seedlings/drug effects,physiology Stress, Physiological/drug effects,genetics Sulfhydryl Compounds/metabolism Up-Regulation/drug effects,genetics
Chemicals
Plant Proteins Sulfhydryl Compounds Chromium Malondialdehyde Proline
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Dubey Sonali
National Botanical Research Institute, Council of Scientific and Industrial Research, Rana Pratap Marg, Lucknow 226 001, India.
Misra Prashant
Dwivedi Sanjay
Chatterjee Sandipan
Bag Sumit K
Mantri Shrikant
Asif Mehar H
Rai Arti
Kumar Smita
Shri Manju
Tripathi Preeti
Tripathi Rudra D
Trivedi Prabodh K
Chakrabarty Debasis
Tuli Rakesh
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Article Info
Journal
BMC genomics
Abbr.
BMC Genomics
ISSN
1471-2164
Published
2010-11-20
Epub
2010-00-20
Pages
648
Language
English
Region
England
NLM ID
100965258
PMCID
PMC3224690
Subset
IM
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