Abstract
Genetically engineered rice (Oryza sativa L.) with the ability to synthesize glycinebetaine was established by introducing the codA gene for choline oxidase from the soil bacterium Arthrobacter globiformis. Levels of glycinebetaine were as high as 1 and 5 micromol per gram fresh weight of leaves in two types of transgenic plant in which choline oxidase was targeted to the chloroplasts (ChlCOD plants) and to the cytosol (CytCOD plants), respectively. Although treatment with 0.15 M NaCl [corrected] inhibited the growth of both wild-type and transgenic plants, the transgenic plants began to grow again at the normal rate after a significantly less time than the wild-type plants after elimination of the salt stress. Inactivation of photosynthesis, used as a measure of cellular damage, indicated that ChlCOD plants were more tolerant than CytCOD plants to photoinhibition under salt stress and low-temperature stress. These results indicated that the subcellular compartmentalization of the biosynthesis of glycinebetaine was a critical element in the efficient enhancement of tolerance to stress in the engineered plants.
MeSH Terms
Acclimatization
Alcohol Oxidoreductases/genetics,metabolism
Betaine/metabolism
Chloroplasts/enzymology
Cold Temperature
Cytosol/enzymology
Gene Transfer Techniques
Genetic Engineering/methods
Oryza/genetics,metabolism,physiology
Osmolar Concentration
Photosynthetic Reaction Center Complex Proteins/metabolism
Plants, Genetically Modified/physiology
Plasmids
Recombinant Proteins/metabolism
Restriction Mapping
Rhizobium
Transformation, Genetic
Chemicals
Photosynthetic Reaction Center Complex Proteins
Recombinant Proteins
Betaine
Alcohol Oxidoreductases
choline oxidase
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Sakamoto A
National Institute for Basic Biology, Myodaiji, Okazaki, Japan.
Alia
Murata N
Murata A
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