Difference between revisions of "Os02g0677300"

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Please input one-sentence summary here.
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The rice '''''Os02g0677300''''' was reported as '''''OsERF#025''''' in 2006 <ref name="ref1" /> by researchers from Japan.  
  
 
==Annotated Information==
 
==Annotated Information==
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===Gene Symbol===
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*'''''Os02g0677300''''' '''''<=>''''' '''''OsERF#025'''''
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===Function===
 
===Function===
Nine CBF/DREB1homologous genes in rice were obtained by BLAST search in the NCBI database, which share conserved amino acid sequences with DREB1 protein in Arabidopsis. Three CBFgenes organized in tandem, named OsCBF1, OsCBF2and OsCBF3, showed a transient induction in the process of cold acclimation, much stronger in indica rice 93-11 compared with japonica rice Nipponbare.One of the nine homologous CBF/DREB1 genes and the center of resistance to cold way.In the cold response pathway ,it has proven to play important roles in cold acclimation<ref name="ref1"/>.The main function is to bind to the CRT/DRE regulatory element and activate the expression of downstream target genes ,which is very important for inhancing the cold tolerance of rice.The accumulation of gene's transcription factors will inhibit the growth of plants.
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* Genes in the ERF family encode transcriptional regulators with a variety of functions involved in the developmental and physiological processes in plants.
 
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* It has been demonstrated that the AP2/ERF proteins have important functions in the transcriptional regulation of a variety of biological processes related to growth and development, as well as various responses to environmental stimuli.
===Expression===
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* Genes in the AP2 family have been shown to participate in the regulation of developmental processes, e.g. flower development (Elliott et al., 1996), spikelet meristem determinacy (Chuck et al., 1998), leaf epidermal cell identity (Moose and Sisco, 1996), and embryo development (Boutilier et al., 2002).<ref name="ref2" />
Please input expression information here.
 
CBF (C-repeat-binding factor) cold response pathway has proven to play important roles in cold acclimation<ref name=”ref1”/>. CBF/DREB1 (dehydration- responsive element-binding protein) proteins belong to a subfamily of AP2/ERF  (APETALA2/ethylene- responsive factor) transcription factor and contain a highly conserved DNA-binding domain which interacts with CRT/DRE (C-repeat/drought-responsive element) motif and activates downstream genes <ref name=”ref2”/>. The expression of CBF/DREB1genes is regulated by an upstream transcription factor ICE1 (inducer of CBFexpression 1) <ref name=”ref3”/>. After activated by low temperature, the ICE1 protein binds specifically to the MYC (myelocytomatosis oncogene) recognition sequences present in CBF/DREB1promoters and stimulates the transcriptions of CBF/DREB1genes <ref name=”ref4”/>. CBF cold response pathway is conserved not only intemperate plants like Arabidopsis, wheat and Brassica napus, but also in tropical plants like rice and tomato<ref name=”ref5”/>; <ref name=”ref6”/>; <ref name=”ref7”/>; <ref name=”ref8”/>. Several CBF/DREB1homologous genes identified from rice have proven to improve cold tolerance of transgenic Arabidopsis and rice <ref name=”ref9”/>;<ref name=”ref10”/>.Using the microarray analysis, several candidate target genes of CBF/DREB1 protein were identified in rice, such as OsP5CS, OsLIP5, OsLIP9,and OsRAmy3D(Ito et al, 2006). The induction of these target genes improves the cold tolerance of rice plants through mediating various physiological and biochemical processes.
 
  
 
===Evolution===
 
===Evolution===
Please input evolution information here.
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* The ERF family is a large gene family of transcription factors and is part of the AP2/ERF superfamily, which also contains the AP2 and RAV families
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* The AP2/ERF superfamily is defined by the AP2/ERF domain, which consists of about 60 to 70 amino acids and is involved in DNA binding.
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* The AP2 family proteins contain two repeated AP2/ERF domains, the ERF family proteins contain a single AP2/ERF domain, and the RAV family proteins contain a B3 domain, which is a DNA-binding domain conserved in other plant-specific transcription factors, including VP1/ABI3, in addition to the single AP2/ERF domain.
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* The expansion of the ERF family in plants might have been due to chromosomal/segmental duplication and tandem duplication, as well as more ancient transposition and homing.
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* Since rice is a cultivated species, selection either during domestication from its wild ancestor or during agricultural improvement in the subsequent time may also have been important for the evolution of rice ERF family.<ref name="ref3" />
  
 
You can also add sub-section(s) at will.
 
You can also add sub-section(s) at will.
CBF/DREB1 (dehydrationresponsiveelement-binding protein) proteins belong to a subfamily of AP2/ERF(APETALA2/ethyleneresponsivefactor) transcription factor and contain a highly conserved DNA-binding domain which interacts with CRT/DRE (C-repeat/drought-responsive element)motif and activates downstream genes.This genes share  extensive homology, not only in the AP2/ERF region but also in the C-terminal regions and signatures bordering the AP2/ERF domain.we found that all the CBF/DREB1 homologous proteins in rice had a conserved valine in the V14 position, which play important roles in DNA-binding specificity[1].
 
  
 
==Labs working on this gene==
 
==Labs working on this gene==
Please input related labs here.
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* Molecular and Cellular Breeding Research Group, Institute for Biological Resources and Functions, National Institute of Advanced Industrial Science and Technology, Tsukuba, Ibaraki 305–8566, Japan (T.N., K.S., H.S.);
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* Graduate School of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Ibaraki 305–8672, Japan (T.N., T.F.)
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==References==
 
==References==
 
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<references>
1. The rice research institute of Sichuan Agricultural University
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* <ref name="ref1">
Canella D, Gilmour S J, Kuhn L A, Thomashow M F. 2010. DNA binding by the ArabidopsisCBF1 transcription factor requires the PKKP/RAGRxKFxETRHP signature sequence.  Biochim
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Nakano T, Suzuki K, Fujimura T, Shinshi H. Genome-wide analysis of the ERF
Biophys Acta, 1799: 454–462.
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gene family in Arabidopsis and rice. Plant Physiol. 2006 Feb;140(2):411-32.
Carvallo M A, Pino M T, Jekni Z, Zou C, Doherty C J, Shiu S H, Chen T H H, Thomashow M F. 2011. A comparison of the low temperature transcriptomes and CBF regulons of three plant species that differ in freezing tolerance: Solanum commersonii, Solanum tuberosum, and Arabidopsis thaliana.J Exp Bot,62(11): 3807–3819.
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PubMed PMID: 16407444; PubMed Central PMCID: PMC1361313.
Chinnusamy V, Ohta M, Kanrar S, Lee B H, Hong X, Agarwal M, Zhu J K. 2003. ICE1: A regulator of cold-induced transcriptome and freezing tolerance in Arabidopsis. Genes Dev, 17: 1043–1054.  
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</ref>
Dubouzet J G, Sakuma Y, Ito Y, Kasuga M, Dubouzet E G, Miura S, Seki M, Shinozaki K, Yamaguchi-Shinozaki K. 2003. OsDREBgenes in rice, Oryza sativa L., encode transcription activators that function in drought-, high-salt- and cold-responsive gene expression. Plant J, 33: 751–763.  
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* <ref name="ref2">
Fowler S, Thomashow M F. 2002. Arabidopsistranscriptome profiling indicates that multiple regulatory pathways are activated during cold acclimation in addition to the CBF cold response pathway. Plant Cell Online, 14: 1675–1690.
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Chuck G, Muszynski M, Kellogg E, Hake S, Schmidt RJ. The control of spikelet
Hannah M A, Wiese D, Freund S, Fiehn O, Heyer a G, Hincha D K. 2006. Natural genetic variation of freezing tolerance in Arabidopsis. Plant Physiol, 142: 98–112.  
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meristem identity by the branched silkless1 gene in maize. Science. 2002 Nov
Ito Y, Katsura K, Maruyama K, Taji T, Kobayashi M, Seki M, Shinozaki K, Yamaguchi-Shinozaki K. 2006. Functional analysis of rice DREB1/CBF-type transcription factors involved in cold-responsive gene expression in transgenic rice. Plant Cell Physiol, 47: 141–153.
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8;298(5596):1238-41. PubMed PMID: 12424380.
 
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</ref>
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* <ref name="ref3">
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Riechmann JL, Meyerowitz EM. The AP2/EREBP family of plant transcription
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factors. Biol Chem. 1998 Jun;379(6):633-46. Review. PubMed PMID: 9687012.
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</ref>
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</references>
 
==Structured Information==
 
==Structured Information==
{{JaponicaGene|
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    [[Category:Genes]][[Category:Oryza Sativa Japonica Group]][[Category:Japonica Chromosome 2]]
GeneName = Os02g0677300|
 
Description = Similar to CRT/DRE binding factor 1|
 
Version = NM_001054262.1 GI:115447894 GeneID:4330306|
 
Length = 1272 bp|
 
Definition = Oryza sativa Japonica Group Os02g0677300, complete gene.|
 
Source = Oryza sativa Japonica Group
 
 
 
  ORGANISM  Oryza sativa Japonica Group
 
            Eukaryota; Viridiplantae; Streptophyta; Embryophyta; Tracheophyta;
 
            Spermatophyta; Magnoliophyta; Liliopsida; Poales; Poaceae; BEP
 
            clade; Ehrhartoideae; Oryzeae; Oryza.
 
|
 
Chromosome = [[:category:Japonica Chromosome 2|Chromosome 2]]|
 
AP = Chromosome 2:28539796..28541067|
 
CDS = 28539841..28540515|
 
GCID = <gbrowseImage1>
 
name=NC_008395:28539796..28541067
 
source=RiceChromosome02
 
preset=GeneLocation
 
</gbrowseImage1>|
 
GSID = <gbrowseImage2>
 
name=NC_008395:28539796..28541067
 
source=RiceChromosome02
 
preset=GeneLocation
 
</gbrowseImage2>|
 
CDNA = <cdnaseq>atggacgtttctgctgcgctcagcagcgactactcgtcggggacgccgtcgccggtggcggccgacgccgacgacggctcctccgcctacatgacggtgtcgtcggcgccgcccaagcggcgagcggggcggaccaagttcaaggagacgcggcaccccgtgttcaagggcgtgcgccggaggaaccccgggaggtgggtgtgcgaggtgcgcgagccgcacggcaagcagcggatatggctcgggacgttcgagacagcagagatggcggcgcgcgcgcacgacgtcgccgcgctcgcgctccgcggccgcgccgcctgcctcaacttcgccgactcgccgaggcgcctccgcgtcccgcccatcggcgcaagccacgacgacatacggagggcggcggctgaggcggccgaggcattccggccgccaccagatgagagcaatgcggccaccgaggtggcagccgccgcatcgggcgccactaattcgaacgccgaacagttcgcctcccacccgtactacgaggtcatggacgatgggctggacttggggatgcagggctatctcgacatggcgcaagggatgctcattgacccgcctccaatggccggtgatcctgccgtaggtagcggcgaagacgacaacgatggcgaggtccagctatggagctactga</cdnaseq>|
 
AA = <aaseq>MDVSAALSSDYSSGTPSPVAADADDGSSAYMTVSSAPPKRRAGR                    TKFKETRHPVFKGVRRRNPGRWVCEVREPHGKQRIWLGTFETAEMAARAHDVAALALR                    GRAACLNFADSPRRLRVPPIGASHDDIRRAAAEAAEAFRPPPDESNAATEVAAAASGA                    TNSNAEQFASHPYYEVMDDGLDLGMQGYLDMAQGMLIDPPPMAGDPAVGSGEDDNDGE                    VQLWSY</aaseq>|
 
DNA = <dnaseqindica>46..720#agaattcaaaccggatcaacctcgctcgcttactcgtgtttaggcatggacgtttctgctgcgctcagcagcgactactcgtcggggacgccgtcgccggtggcggccgacgccgacgacggctcctccgcctacatgacggtgtcgtcggcgccgcccaagcggcgagcggggcggaccaagttcaaggagacgcggcaccccgtgttcaagggcgtgcgccggaggaaccccgggaggtgggtgtgcgaggtgcgcgagccgcacggcaagcagcggatatggctcgggacgttcgagacagcagagatggcggcgcgcgcgcacgacgtcgccgcgctcgcgctccgcggccgcgccgcctgcctcaacttcgccgactcgccgaggcgcctccgcgtcccgcccatcggcgcaagccacgacgacatacggagggcggcggctgaggcggccgaggcattccggccgccaccagatgagagcaatgcggccaccgaggtggcagccgccgcatcgggcgccactaattcgaacgccgaacagttcgcctcccacccgtactacgaggtcatggacgatgggctggacttggggatgcagggctatctcgacatggcgcaagggatgctcattgacccgcctccaatggccggtgatcctgccgtaggtagcggcgaagacgacaacgatggcgaggtccagctatggagctactgatcctgcgcgtttgaactcaacttggtttggcgcgaagagatcgcatgtacagcttaagggagtcgagtacaagtacctcaggtgtactccactcgttgcccctttcccttccctttcgtttttcttgagcttatctgcagggtaatgttatgtattgctgctcttctgatgaaatgtgatcggaagaagcggaaggccagatcgagcttatgggttctgaagacggtgaaggcttgtcgagtgttgtgagcatatattcagaaagtcaggcactgtgaaagtatgaatcagatcagccttgttacgaatgagagtgatcgaccttgttcagtgtttataattgaaccacttgtgtgtaataagcagcaaagccatgttgcttgcttgatctgactcttgggaatggtatatttctcaaagaatgcaggattgactactcagaatttgacattttgcagtgaaatgataggattgttaaattaacattggaggagaggcatgtgtatatatgttaagaaacattagtaatgatgagcctatgatacttcgatc</dnaseqindica>|
 
Link = [http://www.ncbi.nlm.nih.gov/nuccore/NM_001054262.1 RefSeq:Os02g0677300]|
 
}}
 
[[Category:Genes]]
 
[[Category:Japonica mRNA]]
 
[[Category:Oryza Sativa Japonica Group]]
 
[[Category:Japonica Genes]]
 
[[Category:Japonica Chromosome 2]]
 
[[Category:Chromosome 2]]
 
1.PAN, X.-W.; LI, Y.-c.; LI, X.-x.; LIU, W.-q.; MING, J.; LU, T.-t.; TAN, J.; SHENG, X.-n., Differential Regulatory Mechanisms of CBF Regulon Between Nipponbare (Japonica) and 93-11 (Indica) During Cold Acclimation. Rice Science 2013, 20 (3), 165-172.
 

Latest revision as of 07:37, 23 March 2017

The rice Os02g0677300 was reported as OsERF#025 in 2006 [1] by researchers from Japan.

Annotated Information

Gene Symbol

  • Os02g0677300 <=> OsERF#025

Function

  • Genes in the ERF family encode transcriptional regulators with a variety of functions involved in the developmental and physiological processes in plants.
  • It has been demonstrated that the AP2/ERF proteins have important functions in the transcriptional regulation of a variety of biological processes related to growth and development, as well as various responses to environmental stimuli.
  • Genes in the AP2 family have been shown to participate in the regulation of developmental processes, e.g. flower development (Elliott et al., 1996), spikelet meristem determinacy (Chuck et al., 1998), leaf epidermal cell identity (Moose and Sisco, 1996), and embryo development (Boutilier et al., 2002).[2]

Evolution

  • The ERF family is a large gene family of transcription factors and is part of the AP2/ERF superfamily, which also contains the AP2 and RAV families
  • The AP2/ERF superfamily is defined by the AP2/ERF domain, which consists of about 60 to 70 amino acids and is involved in DNA binding.
  • The AP2 family proteins contain two repeated AP2/ERF domains, the ERF family proteins contain a single AP2/ERF domain, and the RAV family proteins contain a B3 domain, which is a DNA-binding domain conserved in other plant-specific transcription factors, including VP1/ABI3, in addition to the single AP2/ERF domain.
  • The expansion of the ERF family in plants might have been due to chromosomal/segmental duplication and tandem duplication, as well as more ancient transposition and homing.
  • Since rice is a cultivated species, selection either during domestication from its wild ancestor or during agricultural improvement in the subsequent time may also have been important for the evolution of rice ERF family.[3]

You can also add sub-section(s) at will.

Labs working on this gene

  • Molecular and Cellular Breeding Research Group, Institute for Biological Resources and Functions, National Institute of Advanced Industrial Science and Technology, Tsukuba, Ibaraki 305–8566, Japan (T.N., K.S., H.S.);
  • Graduate School of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Ibaraki 305–8672, Japan (T.N., T.F.)


References

  1. Nakano T, Suzuki K, Fujimura T, Shinshi H. Genome-wide analysis of the ERF gene family in Arabidopsis and rice. Plant Physiol. 2006 Feb;140(2):411-32. PubMed PMID: 16407444; PubMed Central PMCID: PMC1361313.
  2. Chuck G, Muszynski M, Kellogg E, Hake S, Schmidt RJ. The control of spikelet meristem identity by the branched silkless1 gene in maize. Science. 2002 Nov 8;298(5596):1238-41. PubMed PMID: 12424380.
  3. Riechmann JL, Meyerowitz EM. The AP2/EREBP family of plant transcription factors. Biol Chem. 1998 Jun;379(6):633-46. Review. PubMed PMID: 9687012.

Structured Information