Literature DB >> 18287487

Systemic signaling of the plant nitrogen status triggers specific transcriptome responses depending on the nitrogen source in Medicago truncatula.

Sandrine Ruffel1, Sandra Freixes, Sandrine Balzergue, Pascal Tillard, Christian Jeudy, Marie Laure Martin-Magniette, Margaretha J van der Merwe, Klementina Kakar, Jerôme Gouzy, Alisdair R Fernie, Michael Udvardi, Christophe Salon, Alain Gojon, Marc Lepetit.   

Abstract

Legumes can acquire nitrogen (N) from NO(3)(-), NH(4)(+), and N(2) (through symbiosis with Rhizobium bacteria); however, the mechanisms by which uptake and assimilation of these N forms are coordinately regulated to match the N demand of the plant are currently unknown. Here, we find by use of the split-root approach in Medicago truncatula plants that NO(3)(-) uptake, NH(4)(+) uptake, and N(2) fixation are under general control by systemic signaling of plant N status. Indeed, irrespective of the nature of the N source, N acquisition by one side of the root system is repressed by high N supply to the other side. Transcriptome analysis facilitated the identification of over 3,000 genes that were regulated by systemic signaling of the plant N status. However, detailed scrutiny of the data revealed that the observation of differential gene expression was highly dependent on the N source. Localized N starvation results, in the unstarved roots of the same plant, in a strong compensatory up-regulation of NO(3)(-) uptake but not of either NH(4)(+) uptake or N(2) fixation. This indicates that the three N acquisition pathways do not always respond similarly to a change in plant N status. When taken together, these data indicate that although systemic signals of N status control root N acquisition, the regulatory gene networks targeted by these signals, as well as the functional response of the N acquisition systems, are predominantly determined by the nature of the N source.

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Year:  2008        PMID: 18287487      PMCID: PMC2287368          DOI: 10.1104/pp.107.115667

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  56 in total

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Journal:  Plant Physiol       Date:  2003-06       Impact factor: 8.340

3.  A cytosolic trans-activation domain essential for ammonium uptake.

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Journal:  Plant Physiol       Date:  2006-01-13       Impact factor: 8.340

5.  Nitrogenase Activity in Trifolium subterraneum L. in Relation to the Uptake of Nitrate Ions.

Authors:  J H Silsbury
Journal:  Plant Physiol       Date:  1987-07       Impact factor: 8.340

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  45 in total

1.  An RNA sequencing transcriptome analysis reveals novel insights into molecular aspects of the nitrate impact on the nodule activity of Medicago truncatula.

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2.  The Medicago truncatula gene expression atlas web server.

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3.  Improving Plant Nitrogen Use Efficiency through Alteration of Amino Acid Transport Processes.

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6.  Identification of Arabidopsis mutants impaired in the systemic regulation of root nitrate uptake by the nitrogen status of the plant.

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Review 7.  Phenotypic plasticity of the maize root system in response to heterogeneous nitrogen availability.

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9.  Responses to Systemic Nitrogen Signaling in Arabidopsis Roots Involve trans-Zeatin in Shoots.

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10.  A system biology approach highlights a hormonal enhancer effect on regulation of genes in a nitrate responsive "biomodule".

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