Abstract
A poplar hybrid, Populus tremula x Populus alba, was transformed with the bacterial genes for either glutathione reductase (GR) (gor) or glutathione synthetase (GS) (gshII). When the gor gene was targeted to the chloroplasts, leaf GR activities were up to 1000 times greater than in all other lines. In contrast, targeting to the cytosol resulted in 2 to 10 times the GR activity. GR mRNA, protein, and activity levels suggest that bacterial GR is more stable in the chloroplast. When the gshII gene was expressed in the cytosol, GS activities were up to 100 times greater than in other lines. Overexpression of GR or GS in the cytosol had no effect on glutathione levels, but chloroplastic-GR expression caused a doubling of leaf glutathione and an increase in reduction state. The high-chloroplastic-GR expressors showed increased resistance to photoinhibition. The herbicide methyl viologen inhibited CO2 assimilation in all lines, but the increased leaf levels of glutathione and ascorbate in the high-chloroplastic-GR expressors persisted despite this treatment. These results suggest that overexpression of GR in the chloroplast increases the antioxidant capacity of the leaves and that this improves the capacity to withstand oxidative stress.
MeSH Terms
Antioxidants/metabolism
Ascorbic Acid/analysis
Carbon Dioxide/metabolism
Chlorophyll/analysis
Cloning, Molecular
Dose-Response Relationship, Radiation
Glutathione/analysis
Glutathione Reductase/genetics,metabolism
Glutathione Synthase/genetics,metabolism
Light
Photoperiod
Photosynthesis/radiation effects
Plants, Genetically Modified
Trees/enzymology,radiation effects
Chemicals
Antioxidants
Chlorophyll
Carbon Dioxide
Glutathione Reductase
Glutathione Synthase
Glutathione
Ascorbic Acid
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Foyer C H
Department of Environmental Biology, Institute of Grassland and Environmental Research, Aberystwyth, Dyfed, United Kingdom.
Souriau N
Perret S
Lelandais M
Kunert K J
Pruvost C
Jouanin L
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