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PMID: 22929616 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Systems-based analysis of Arabidopsis leaf growth reveals adaptation to water deficit.

Molecular systems biology ·Vol. 8 ·2012-00-00 ·Pages 606

Baerenfaller K, Massonnet C, Walsh S, Baginsky S, Bühlmann P, Hennig L, Hirsch-Hoffmann M, Howell KA, Kahlau S, Radziejwoski A, Russenberger D, Rutishauser D, Small I, Stekhoven D, Sulpice R, Svozil J, Wuyts N, Stitt M, Hilson P, Granier C, Gruissem W

Abstract

Leaves have a central role in plant energy capture and carbon conversion and therefore must continuously adapt their development to prevailing environmental conditions. To reveal the dynamic systems behaviour of leaf development, we profiled Arabidopsis leaf number six in depth at four different growth stages, at both the end-of-day and end-of-night, in plants growing in two controlled experimental conditions: short-day conditions with optimal soil water content and constant reduced soil water conditions. We found that the lower soil water potential led to reduced, but prolonged, growth and an adaptation at the molecular level without a drought stress response. Clustering of the protein and transcript data using a decision tree revealed different patterns in abundance changes across the growth stages and between end-of-day and end-of-night that are linked to specific biological functions. Correlations between protein and transcript levels depend on the time-of-day and also on protein localisation and function. Surprisingly, only very few of >1700 quantified proteins showed diurnal abundance fluctuations, despite strong fluctuations at the transcript level.

MeSH Terms
Adaptation, Biological/genetics Arabidopsis/growth & development,metabolism Cluster Analysis Darkness Droughts Gene Expression Profiling/methods Light Photoperiod Plant Leaves/growth & development,metabolism Plant Transpiration/physiology Proteome/metabolism Proteomics/methods Soil Transcriptome/physiology Water/metabolism
Chemicals
Proteome Soil Water
Authors & Affiliations
21 authors, click to expand affiliations / ORCID
Baerenfaller Katja
Department of Biology, ETH Zurich, Zurich, Switzerland. [email protected]
Massonnet Catherine
Walsh Sean
Baginsky Sacha
Bühlmann Peter
Hennig Lars
Hirsch-Hoffmann Matthias
Howell Katharine A
Kahlau Sabine
Radziejwoski Amandine
Russenberger Doris
Rutishauser Dorothea
Small Ian
Stekhoven Daniel
Sulpice Ronan
Svozil Julia
Wuyts Nathalie
Stitt Mark
Hilson Pierre
Granier Christine
Gruissem Wilhelm
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Article Info
Journal
Molecular systems biology
Abbr.
Mol Syst Biol
ISSN
1744-4292
Published
2012-00-00
Pages
606
Language
English
Region
England
NLM ID
101235389
PMCID
PMC3435506
Subset
IM
Analysis Services
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