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Title:
Comprehensive analysis of rice DREB2-type genes that encode transcription factors involved in the expression of abiotic stress-responsive genes | Molecular Genetics and Genomics
Description:
DREB2s (dehydration-responsive element-binding protein 2s) are transcription factors that interact with a cis-acting DRE (dehydration-responsive element)/CRT (C-repeat) sequence and activate the expression of downstream genes involved in water- and heat-shock stress responses and tolerance in Arabidopsis thaliana. In this study, we performed a comprehensive analysis of all five DREB2-type genes in rice (OsDREB2 s: OsDREB2A, OsDREB2B, OsDREB2C, OsDREB2E and OsABI4) to determine which of them contribute to plant stress responses. We analysed the expression patterns of these genes under abiotic stress conditions, and we examined the subcellular localisation and transcriptional activation activity of their translational products in protoplasts. Only OsDREB2A and OsDREB2B showed abiotic stress-inducible gene expression. In addition, OsDREB2B showed nuclear specific localisation and the highest transactivation activity. OsDREB2B has functional and non-functional forms of its transcript similar to its orthologues in the grass family, and the functional form of its transcript was markedly increased during stress conditions. We analysed the splicing mechanism of OsDREB2B with transgenic rice that express the non-functional transcript and we found that the non-functional form is not a precursor of the functional form; thus, stress-inducible alternative splicing of pre-mRNA is an important mechanism for the regulation of OsDREB2B. Transgenic Arabidopsis plants overexpressing OsDREB2B showed enhanced expression of DREB2A target genes and improved drought and heat-shock stress tolerance. These results suggest that OsDREB2B is a key gene that encodes a stress-inducible DREB2-type transcription factor that functions in stress-responsive gene expression in rice.
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article, google, scholar, cas, pubmed, plant, gene, expression, yamaguchishinozaki, transcription, shinozaki, rice, genes, arabidopsis, drought, stress, tolerance, involved, abiotic, analysis, maruyama, osdrebb, factor, sakuma, functional, mol, biol, factors, ito, cell, transcriptional, stressinducible, regulation, cold, fujita, privacy, cookies, content, stressresponsive, cisacting, transcript, splicing, dreba, access, dreb, seki, japan, function, information, publish,
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heat-stress-responsive gene expression high-salinity-responsive gene expression month download article/chapter stress-inducible alternative splicing erebp/ap2-type protein abiotic stress-responsive genes stress-responsive gene expression article molecular genetics heat-shock stress tolerance rice dreb2-type genes agrobacterium-mediated plant transformation cold-inducible gene expression heat-shock stress responses abre-dependent aba-signaling aba-regulated gene expression cold-responsive gene expression ccgac cis-acting element drought-responsive gene expression arabidopsis transcription factor transcription factors involved dreb2-type genes kazuko yamaguchi-shinozaki enhanced drought tolerance dna-binding specificity dna-binding activity cis-acting dre abiotic stress conditions enhances freezing tolerance encode transcription activators phosphorylation negatively regulates full article pdf privacy choices/manage cookies water-stress-responsive cis-acting element hypoosmolarity-responsive expression dre/dreb regulon plant stress responses downstream genes involved dreb2a target genes dehydration-responsive element freezing tolerance genes plant molecular physiology soybean ferritin gene bzip proteins functions erf/ap2 domain maize polyubiquitin genes transcription factors cis-acting elements c-repeat/dre related subjects
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headline:Comprehensive analysis of rice DREB2-type genes that encode transcription factors involved in the expression of abiotic stress-responsive genes
description:DREB2s (dehydration-responsive element-binding protein 2s) are transcription factors that interact with a cis-acting DRE (dehydration-responsive element)/CRT (C-repeat) sequence and activate the expression of downstream genes involved in water- and heat-shock stress responses and tolerance in Arabidopsis thaliana. In this study, we performed a comprehensive analysis of all five DREB2-type genes in rice (OsDREB2
s: OsDREB2A, OsDREB2B, OsDREB2C, OsDREB2E and OsABI4) to determine which of them contribute to plant stress responses. We analysed the expression patterns of these genes under abiotic stress conditions, and we examined the subcellular localisation and transcriptional activation activity of their translational products in protoplasts. Only OsDREB2A and OsDREB2B showed abiotic stress-inducible gene expression. In addition, OsDREB2B showed nuclear specific localisation and the highest transactivation activity. OsDREB2B has functional and non-functional forms of its transcript similar to its orthologues in the grass family, and the functional form of its transcript was markedly increased during stress conditions. We analysed the splicing mechanism of OsDREB2B with transgenic rice that express the non-functional transcript and we found that the non-functional form is not a precursor of the functional form; thus, stress-inducible alternative splicing of pre-mRNA is an important mechanism for the regulation of OsDREB2B. Transgenic Arabidopsis plants overexpressing OsDREB2B showed enhanced expression of DREB2A target genes and improved drought and heat-shock stress tolerance. These results suggest that OsDREB2B is a key gene that encodes a stress-inducible DREB2-type transcription factor that functions in stress-responsive gene expression in rice.
datePublished:2010-01-05T00:00:00Z
dateModified:2010-01-05T00:00:00Z
pageStart:185
pageEnd:196
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keywords:
Transcription factor
OsDREB2B
Abiotic stress tolerance
Alternative splicing
Rice
Plant Genetics and Genomics
Human Genetics
Microbial Genetics and Genomics
Animal Genetics and Genomics
Biochemistry
general
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headline:Comprehensive analysis of rice DREB2-type genes that encode transcription factors involved in the expression of abiotic stress-responsive genes
description:DREB2s (dehydration-responsive element-binding protein 2s) are transcription factors that interact with a cis-acting DRE (dehydration-responsive element)/CRT (C-repeat) sequence and activate the expression of downstream genes involved in water- and heat-shock stress responses and tolerance in Arabidopsis thaliana. In this study, we performed a comprehensive analysis of all five DREB2-type genes in rice (OsDREB2
s: OsDREB2A, OsDREB2B, OsDREB2C, OsDREB2E and OsABI4) to determine which of them contribute to plant stress responses. We analysed the expression patterns of these genes under abiotic stress conditions, and we examined the subcellular localisation and transcriptional activation activity of their translational products in protoplasts. Only OsDREB2A and OsDREB2B showed abiotic stress-inducible gene expression. In addition, OsDREB2B showed nuclear specific localisation and the highest transactivation activity. OsDREB2B has functional and non-functional forms of its transcript similar to its orthologues in the grass family, and the functional form of its transcript was markedly increased during stress conditions. We analysed the splicing mechanism of OsDREB2B with transgenic rice that express the non-functional transcript and we found that the non-functional form is not a precursor of the functional form; thus, stress-inducible alternative splicing of pre-mRNA is an important mechanism for the regulation of OsDREB2B. Transgenic Arabidopsis plants overexpressing OsDREB2B showed enhanced expression of DREB2A target genes and improved drought and heat-shock stress tolerance. These results suggest that OsDREB2B is a key gene that encodes a stress-inducible DREB2-type transcription factor that functions in stress-responsive gene expression in rice.
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Transcription factor
OsDREB2B
Abiotic stress tolerance
Alternative splicing
Rice
Plant Genetics and Genomics
Human Genetics
Microbial Genetics and Genomics
Animal Genetics and Genomics
Biochemistry
general
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