Differential and coordinated expression of Cbf and Cor/Lea genes during long-term cold acclimation in two wheat cultivars showing distinct levels of freezing tolerance
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概要
- 論文の詳細を見る
The cold acclimation process in plants is primarily regulated through the signal transduction pathways that lead to the induction and enhancement of expression of different sets of Cor/Lea genes. Winter wheat ‘Mironovskaya 808’ (M808) exhibited a much higher level of freezing tolerance than spring wheat ‘Chinese Spring’ (CS), and the difference became clearer after the long-term cold acclimation. To understand the molecular basis of this cultivar difference, we isolated two CBF/DREB1 homologs, Wcbf2, which are the candidate gene for a transcription factor of the Cor/Lea genes. Expression of the Wcbf2 gene was induced rapidly by low temperature (LT) and drought but not by abscisic acid (ABA). The gene expression was temporal and at least twice up-regulated by LT. The first up-regulation occurred within 1–4 h, which might correspond to the rapid response to LT, while the second up-regulation occurred during 2–3 weeks of cold acclimation. After the second up-regulation, the amount of Wcbf2 transcript greatly decreased in CS, while it increased again in M808 after 4 weeks until 9 weeks (end of the test period). The maintenance of this high level of the Wcbf2 transcript might represent the long-term effect of cold acclimation. The activation of Cor/Lea genes followed the accumulation of Wcbf2 transcript suggested direct involvement of the Wcbf2 gene in the induction and enhancement of the Cor/Lea gene expression. The cultivar difference in freezing tolerance developed during different stages of cold acclimation can be at least partly explained by the differential and coordinated regulation of the predicted Cor/Lea gene signal transduction pathway that is mediated by the CBF/DREB1 transcription factors in common wheat.
- 日本遺伝学会の論文
著者
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Kobayashi Fuminori
Laboratory Of Plant Genetics Department Of Biological And Environmental Science Faculty Of Agricultu
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Takumi Shigeo
Laboratory Of Plant Genetics Department Of Biological And Environmental Science Faculty Of Agricultu
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ISHIBASHI Machiko
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agricul
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Nakamura Chiharu
Laboratory Of Plant Genetics Department Of Biological And Environmental Science Faculty Of Agricultu
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Kume Shinobu
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agricul
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Ohno Ryoko
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agricul
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Ishibashi Machiko
Laboratory Of Plant Genetics Department Of Biological And Environmental Science Faculty Of Agricultu
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Nakamura Chiharu
Laboratory Of Plant Genetics Department Of Agroenvironmental Science Graduate School Of Agricultural
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Nakamura Chiharu
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agriculture, and Graduate School of Science and Technology, Kobe University
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Ohno Ryoko
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agriculture, and Graduate School of Science and Technology, Kobe University
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NAKAMURA Chiharu
Laboratory of Genetics, Faculty of Agriculture, Kobe University
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Takumi Shigeo
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agriculture, and Graduate School of Science and Technology, Kobe University
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Kume Shinobu
Laboratory of Plant Genetics, Department of Biological and Environmental Science, Faculty of Agriculture, and Graduate School of Science and Technology, Kobe University
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