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PMID: 19073647 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

(52)Fe translocation in barley as monitored by a positron-emitting tracer imaging system (PETIS): evidence for the direct translocation of Fe from roots to young leaves via phloem.

Plant & cell physiology ·Vol. 50 ·No. 1 ·2009-01-00 ·Pages 48-57

Tsukamoto T, Nakanishi H, Uchida H, Watanabe S, Matsuhashi S, Mori S, Nishizawa NK

Abstract

The real-time translocation of iron (Fe) in barley (Hordeum vulgare L. cv. Ehimehadaka no. 1) was visualized using the positron-emitting tracer (52)Fe and a positron-emitting tracer imaging system (PETIS). PETIS allowed us to monitor Fe translocation in barley non-destructively under various conditions. In all cases, (52)Fe first accumulated at the basal part of the shoot, suggesting that this region may play an important role in Fe distribution in graminaceous plants. Fe-deficient barley showed greater translocation of (52)Fe from roots to shoots than did Fe-sufficient barley, demonstrating that Fe deficiency causes enhanced (52)Fe uptake and translocation to shoots. In the dark, translocation of (52)Fe to the youngest leaf was equivalent to or higher than that under the light condition, while the translocation of (52)Fe to the older leaves was decreased, in both Fe-deficient and Fe-sufficient barley. This suggests the possibility that the mechanism and/or pathway of Fe translocation to the youngest leaf may be different from that to the older leaves. When phloem transport in the leaf was blocked by steam treatment, (52)Fe translocation from the roots to older leaves was not affected, while (52)Fe translocation to the youngest leaf was reduced, indicating that Fe is translocated to the youngest leaf via phloem in addition to xylem. We propose a novel model in which root-absorbed Fe is translocated from the basal part of the shoots and/or roots to the youngest leaf via phloem in graminaceous plants.

MeSH Terms
Hordeum/metabolism Hot Temperature Iron/metabolism Iron Radioisotopes/metabolism Phloem/metabolism Plant Leaves/metabolism Plant Roots/metabolism Positron-Emission Tomography
Chemicals
Iron Radioisotopes Iron
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Tsukamoto Takashi
Graduate School of Agricultural and Life Sciences, The University of Tokyo, Bunkyo-ku, Tokyo, Japan.
Nakanishi Hiromi
Uchida Hiroshi
Watanabe Satoshi
Matsuhashi Shinpei
Mori Satoshi
Nishizawa Naoko K
References (30)
30 references, click to expand
  1. A novel iron-regulated metal transporter from plants identified by functional expression in yeast.
    Proc Natl Acad Sci U S A. 1996 May 28;93(11):5624-8 PMID: 8643627
  2. Real time visualization of 13N-translocation in rice under different environmental conditions using positron emitting Ttacer imaging system.
    Plant Physiol. 2001 Apr;125(4):1743-53 PMID: 11299355
  3. A ferric-chelate reductase for iron uptake from soils.
    Nature. 1999 Feb 25;397(6721):694-7 PMID: 10067892
  4. Real-time [11C]methionine translocation in barley in relation to mugineic acid phytosiderophore biosynthesis.
    Planta. 2001 Sep;213(5):708-15 PMID: 11678274
  5. Arabidopsis IRT2 gene encodes a root-periphery iron transporter.
    Plant J. 2001 Apr;26(2):181-9 PMID: 11389759
  6. Effects of iron deficiency on the composition of the leaf apoplastic fluid and xylem sap in sugar beet. Implications for iron and carbon transport.
    Plant Physiol. 2000 Oct;124(2):873-84 PMID: 11027735
  7. Quick and reversible inhibition of soybean root nodule growth by nitrate involves a decrease in sucrose supply to nodules.
    J Exp Bot. 2003 May;54(386):1379-88 PMID: 12709484
  8. Cadmium and iron transport by members of a plant metal transporter family in Arabidopsis with homology to Nramp genes.
    Proc Natl Acad Sci U S A. 2000 Apr 25;97(9):4991-6 PMID: 10781110
  9. Cloning and characterization of deoxymugineic acid synthase genes from graminaceous plants.
    J Biol Chem. 2006 Oct 27;281(43):32395-402 PMID: 16926158
  10. Evidence for a specific uptake system for iron phytosiderophores in roots of grasses.
    Plant Physiol. 1986 Jan;80(1):175-80 PMID: 16664577
  11. Characterization of FRO1, a pea ferric-chelate reductase involved in root iron acquisition.
    Plant Physiol. 2002 May;129(1):85-94 PMID: 12011340
  12. Three rice nicotianamine synthase genes, OsNAS1, OsNAS2, and OsNAS3 are expressed in cells involved in long-distance transport of iron and differentially regulated by iron.
    Plant J. 2003 Nov;36(3):366-81 PMID: 14617093
  13. OsYSL2 is a rice metal-nicotianamine transporter that is regulated by iron and expressed in the phloem.
    Plant J. 2004 Aug;39(3):415-24 PMID: 15255870
  14. Iron Translocation II. Citrate/Iron Ratios in Plant Stem Exudates.
    Plant Physiol. 1966 Mar;41(3):515-8 PMID: 16656282
  15. Deoxymugineic acid increases Zn translocation in Zn-deficient rice plants.
    Plant Mol Biol. 2008 Apr;66(6):609-17 PMID: 18224446
  16. A specific transporter for iron(III)-phytosiderophore in barley roots.
    Plant J. 2006 May;46(4):563-72 PMID: 16640594
  17. Rapid N transport to pods and seeds in N-deficient soybean plants.
    J Exp Bot. 2001 Feb;52(355):277-83 PMID: 11283172
  18. Evidence for Translocation of Iron in Plants.
    Plant Physiol. 1965 Jan;40(1):35-8 PMID: 16656065
  19. Mutational reconstructed ferric chelate reductase confers enhanced tolerance in rice to iron deficiency in calcareous soil.
    Proc Natl Acad Sci U S A. 2007 May 1;104(18):7373-8 PMID: 17449639
  20. Rice OsYSL15 is an iron-regulated iron(III)-deoxymugineic acid transporter expressed in the roots and is essential for iron uptake in early growth of the seedlings.
    J Biol Chem. 2009 Feb 6;284(6):3470-9 PMID: 19049971
  21. Partitioning of carbon and nitrogen and the nutrition of root and shoot apex in a nodulated legume.
    Plant Physiol. 1981 Jan;67(1):30-6 PMID: 16661628
  22. Light activates H2 15O flow in rice: Detailed monitoring using a positron-emitting tracer imaging system (PETIS).
    Physiol Plant. 2001 Nov;113(3):359-367 PMID: 12060281
  23. Rice plant development: from zygote to spikelet.
    Plant Cell Physiol. 2005 Jan;46(1):23-47 PMID: 15659435
  24. Identification and localisation of the rice nicotianamine aminotransferase gene OsNAAT1 expression suggests the site of phytosiderophore synthesis in rice.
    Plant Mol Biol. 2008 Jan;66(1-2):193-203 PMID: 18034312
  25. Biosynthesis and secretion of mugineic acid family phytosiderophores in zinc-deficient barley.
    Plant J. 2006 Oct;48(1):85-97 PMID: 16972867
  26. Rice plants take up iron as an Fe3+-phytosiderophore and as Fe2+.
    Plant J. 2006 Feb;45(3):335-46 PMID: 16412081
  27. Maize yellow stripe1 encodes a membrane protein directly involved in Fe(III) uptake.
    Nature. 2001 Jan 18;409(6818):346-9 PMID: 11201743
  28. A new visualization technique for the study of the accumulation of photoassimilates in wheat grains using [(11)C]CO(2).
    Appl Radiat Isot. 2006 Apr;64(4):435-40 PMID: 16356732
  29. NIP6;1 is a boric acid channel for preferential transport of boron to growing shoot tissues in Arabidopsis.
    Plant Cell. 2008 Oct;20(10):2860-75 PMID: 18952773
  30. AtNRAMP3, a multispecific vacuolar metal transporter involved in plant responses to iron deficiency.
    Plant J. 2003 Jun;34(5):685-95 PMID: 12787249
Article Info
Journal
Plant & cell physiology
Abbr.
Plant Cell Physiol
ISSN
1471-9053
Published
2009-01-00
Epub
2008-00-10
Pages
48-57
Language
English
Region
Japan
NLM ID
9430925
PMCID
PMC2638711
Subset
IM
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