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Elevated glutathione synthesis in leaves contributes to zinc transport from roots to shoots in Arabidopsis.
Wongkaew, Arunee; Nakamura, Shin-Ichi; Suzui, Nobuo; Yin, Yong-Gen; Ishii, Satomi; Kawachi, Naoki; Kojima, Katsuhiro; Sekimoto, Hitoshi; Yokoyama, Tadashi; Ohkama-Ohtsu, Naoko.
Affiliation
  • Wongkaew A; United Graduate School of Agriculture, Tokyo University of Agriculture and Technology, Tokyo 183-8509, Japan.
  • Nakamura SI; Department of Bioscience, Tokyo University of Agriculture, Tokyo 156-8502, Japan.
  • Suzui N; Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, Gunma 370-1207, Japan.
  • Yin YG; Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, Gunma 370-1207, Japan.
  • Ishii S; Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, Gunma 370-1207, Japan.
  • Kawachi N; Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, Gunma 370-1207, Japan.
  • Kojima K; Institute of Global Innovation Research, Tokyo University of Agriculture and Technology, Tokyo 183-8509, Japan.
  • Sekimoto H; Faculty of Agriculture, Utsunomiya University, Utsunomiya 321-8505, Japan.
  • Yokoyama T; Institute of Agriculture, Tokyo University of Agriculture and Technology, Tokyo 183-8509, Japan.
  • Ohkama-Ohtsu N; Institute of Global Innovation Research, Tokyo University of Agriculture and Technology, Tokyo 183-8509, Japan; Institute of Agriculture, Tokyo University of Agriculture and Technology, Tokyo 183-8509, Japan. Electronic address: nohtsu@cc.tuat.ac.jp.
Plant Sci ; 283: 416-423, 2019 Jun.
Article in En | MEDLINE | ID: mdl-31128713
ABSTRACT
Glutathione (GSH) is a vital compound involved in several plant metabolic pathways. Our previous study indicated that foliar GSH application can increase zinc (Zn) levels in leafy vegetables. The objective of this study was to determine the mode of action of GSH as it relates to Zn transport from roots to shoots. Two types of transgenic Arabidopsis plants with genes for GSH synthesis, including StGCS-GS or AtGSH1 driven by the leaf-specific promoter of chlorophyll a/b-binding protein (pCab3) gene were generated. Both types of transgenic Arabidopsis plants showed significant increases in shoot GSH concentrations compared to the wild type (WT). Monitoring 65Zn movement by positron-emitting tracer imaging system (PETIS) analysis indicated that the 65Zn amount in the shoots of both types of transgenic Arabidopsis plants were higher than that in the WT. GSH concentration in phloem sap was increased significantly in WT with foliar applications of 10 mM GSH (WT-GSH), but not in transgenic Arabidopsis with elevated foliar GSH synthesis. Both types of transgenic Arabidopsis with elevated foliar GSH synthesis and WT-GSH exhibited increased shoot Zn concentrations and Zn translocation ratios. These results suggest that enhancement of endogenous foliar GSH synthesis and exogenous foliar GSH application affect root-to-shoot transport of Zn.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Zinc / Arabidopsis / Plant Shoots / Plant Roots / Plant Leaves / Glutathione Language: En Journal: Plant Sci Year: 2019 Document type: Article Affiliation country: Japan

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Zinc / Arabidopsis / Plant Shoots / Plant Roots / Plant Leaves / Glutathione Language: En Journal: Plant Sci Year: 2019 Document type: Article Affiliation country: Japan