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PMID: 19825624 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The metabolic response of Arabidopsis roots to oxidative stress is distinct from that of heterotrophic cells in culture and highlights a complex relationship between the levels of transcripts, metabolites, and flux.

Molecular plant ·Vol. 2 ·No. 3 ·2009-05-00 ·Pages 390-406

Lehmann M, Schwarzländer M, Obata T, Sirikantaramas S, Burow M, Olsen CE, Tohge T, Fricker MD, Møller BL, Fernie AR, Sweetlove LJ, Laxa M

Abstract

Metabolic adjustments are a significant, but poorly understood, part of the response of plants to oxidative stress. In a previous study (Baxter et al., 2007), the metabolic response of Arabidopsis cells in culture to induction of oxidative stress by menadione was characterized. An emergency survival strategy was uncovered in which anabolic primary metabolism was largely down-regulated in favour of catabolic and antioxidant metabolism. The response in whole plant tissues may be different and we have therefore investigated the response of Arabidopsis roots to menadione treatment, analyzing the transcriptome, metabolome and key metabolic fluxes with focus on primary as well as secondary metabolism. Using a redox-sensitive GFP, it was also shown that menadione causes redox perturbation, not just in the mitochondrion, but also in the cytosol and plastids of roots. In the first 30 min of treatment, the response was similar to the cell culture: there was a decrease in metabolites of the TCA cycle and amino acid biosynthesis and the transcriptomic response was dominated by up-regulation of DNA regulatory proteins. After 2 and 6 h of treatment, the response of the roots was different to the cell culture. Metabolite levels did not remain depressed, but instead recovered and, in the case of pyruvate, some amino acids and aliphatic glucosinolates showed a steady increase above control levels. However, no major changes in fluxes of central carbon metabolism were observed and metabolic transcripts changed largely independently of the corresponding metabolites. Together, the results suggest that root tissues can recover metabolic activity after oxidative inhibition and highlight potentially important roles for glycolysis and the oxidative pentose phosphate pathway.

MeSH Terms
Arabidopsis/genetics,metabolism Arabidopsis Proteins/genetics,metabolism Carbon/metabolism Cells, Cultured Gene Expression Profiling/methods Gene Expression Regulation, Plant/drug effects,physiology Genes, Plant/physiology Glycolysis Oxidation-Reduction Oxidative Stress/drug effects,genetics Plant Roots/metabolism Plant Shoots/metabolism Plastids/drug effects,genetics,metabolism RNA, Plant/genetics,metabolism Up-Regulation/drug effects,physiology Vitamin K 3/pharmacology
Chemicals
Arabidopsis Proteins RNA, Plant Vitamin K 3 Carbon
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Lehmann Martin
Max-Planck Institute for Molecular Plant Physiology, Am Mühlenberg 14476, Potsdam-Golm, Germany.
Schwarzländer Markus
Obata Toshihiro
Sirikantaramas Supaart
Burow Meike
Olsen Carl Erik
Tohge Takayuki
Fricker Mark D
Møller Birger Lindberg
Fernie Alisdair R
Sweetlove Lee J
Laxa Miriam
Article Info
Journal
Molecular plant
Abbr.
Mol Plant
ISSN
1674-2052
Published
2009-05-00
Epub
2008-00-26
Pages
390-406
Language
English
Region
England
NLM ID
101465514
Subset
IM
Grants
Biotechnology and Biological Sciences Research Council · BB/E024742/1 · United Kingdom
Biotechnology and Biological Sciences Research Council · JF16984 · United Kingdom
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