Carbohydrate Metabolism in the Developing Endosperm of Rice Grains
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概要
- 論文の詳細を見る
The metabolism of carbohydrates in developing rice endosperm was characterized by a comparison of levels of activities of 33 major enzymes between the endosperm and green leaves of rice. Activities of ADP glucose pyrophosphorylase, starch synthase and branching enzyme (Q-enzyme), compared on the basis of soluble protein content, were markedly higher in endosperm than in green leaves. The high levels of Q-enzyme may be responsible for the efficient production of starch in the rice endosperm. The measurement of levels of metabolic intermediates and the localization of key enzymes in isolated amyloplasts from rice endosperm support the view that sucrose is metabolized in the cytoplasm via the pathway: sucrose→UDP glucose→hexose-P→FBP→triose-P. Triose-P then enters the amyloplast, where it is converted to G1P via FBP and, finally, G1P is converted to starch by the concerted reactions of ADP glucose pyrophosphorylase, starch synthase and Q-enzyme.
- 日本植物生理学会の論文
著者
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Ohya Toshihide
Laboratory Of Environmental Stress Physiology National Institute Of Agrobiological Resources:(presen
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Nakamura Yasunori
Laboratory of Environmental Stress Physiology, National Institute of Agrobiological Resources
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Yuki Kazuhiro
Laboratory of Environmental Stress Physiology, National Institute of Agrobiological Resources
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Park Shin-Young
Laboratory of Environmental Stress Physiology, National Institute of Agrobiological Resources
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Park Shin-young
Laboratory Of Environmental Stress Physiology National Institute Of Agrobiological Resources
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Yuki Kazuhiro
Laboratory Of Environmental Stress Physiology National Institute Of Agrobiological Resources:(presen
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Nakamura Yasunori
Laboratory Of Environmental Stress Physiology National Institute Of Agrobiological Resources
関連論文
- Carbohydrate Metabolism in the Developing Endosperm of Rice Grains
- Towards a Better Understanding of the Metabolic System for Amylopectin Biosynthesis in Plants : Rice Endosperm as a Model Tissue
- Functional Study of Rice Starch Synthase I (SSI) by Using Double Mutant with Lowered Activities of SSI and Isoamylase1