Difference between revisions of "Os01g0884300"

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The rice '''''Os01g0884300''''' was reported as '''''SNAC2''''' in 2008 <ref name="ref1" /> by researchers from China.  
  
 
==Annotated Information==
 
==Annotated Information==
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[[File:317-Os01g0884300.png|right|thumb|427px|'''Figure 1.''' ''Expression pattern of SNAC2 in japonica rice IRAT109.<ref name="ref1" />.'']]
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===Gene Symbol===
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*'''''Os01g0884300''''' '''''<=>''''' '''''OsNAC6, ONAC048, NAC48, SNAC2, SNAC2/OsNAC6, OsNAC6/ONAC048, OsSNAC2'''''
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===Function===
 
===Function===
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* NAC (NAM, ATAF, and CUC) is a plant specific transcription factor family with diverse roles in development and stress regulation.
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* '''''SNAC2''''' is a novel stress responsive NAC transcription factor that possesses potential utility in improving stress tolerance of rice.
  
  The OsNAC6 gene is a member of the NAC transcription factor gene family in rice. Expression of OsNAC6 is induced by abiotic stresses, including cold, drought and high salinity. OsNAC6 gene expression is also induced by wounding and blast disease. A transactivation assay using a yeast system demonstrated that OsNAC6 functions as a transcriptional activator, and transient localization studies with OsNAC6–sGFP fusion protein revealed its nuclear localization. Transgenic rice plants over-expressing OsNAC6 constitutively exhibited growth retardation and low reproductive yields. These transgenic rice plants showed an improved tolerance to dehydration and high-salt stresses, and also exhibited increased tolerance to blast disease. By utilizing stressinducible promoters, such as the OsNAC6 promoter, it is hoped that stress-inducible over-expression of OsNAC6 in rice can improve stress tolerance by suppressing the negative effects of OsNAC6 on growth under normal growth conditions. The results of microarray analysis revealed that many genes that are inducible by abiotic and biotic stresses were upregulated in rice plants over-expressing OsNAC6. A transient transactivation assay showed that OsNAC6 activates the expression of at least two genes, including a gene encoding peroxidase. Collectively, these results indicate that OsNAC6 functions as a transcriptional activator in response to abiotic and biotic stresses in plants. We conclude that OsNAC6 may serve as a useful biotechnological tool for the improvement of stress tolerance in various kinds of plants.
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===Phenotypic analysis===
  OsNAC6 functions as a transcriptional activator and is localized in the nucleus An OsNAC6–sGFP fusion protein driven by the CaMV 35S promoter was transiently expressed in onion epidermal cells and analyzed by fluorescent microscopy. A SV40 NLS–sGFP fusion protein (SV40NLS–sGFP) and sGFP alone (35S–sGFP), driven by the 35S promoter, were used as a positive control (nuclear localization) and negative control, respectively. Nuclear localization was confirmed for OsNAC6 as both OsNAC6–sGFP and the positive control (SV40NLS–sGFP) were localized in the nucleus, whereas 35S–sGFP was localized in both cytoplasm and nucleus (Figure 2a). We also examined the transcriptional activity of OsNAC6 using a yeast system. A GAL4 DNA binding domain–OsNAC6 fusion protein was expressed in yeast cells, which were assayed for their ability to activate transcription from the GAL4 binding sequence. OsNAC6 promoted yeast growth in the absence of histidine and showed b-galactosidase activity, while the vector control pGBKT7 did not (Figure 2b). These data confirm that OsNAC6 functions as a transcriptional activator.
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* The '''''SNAC2''''' gene was over-expressed in japonica rice Zhonghua 11 to test the effect on improving stress tolerance. More than 50% of the transgenic plants remained vigorous when all WT plants died after severe cold stress (4–8°C for 5 days).
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* The transgenic plants had higher cell membrane stability than wild type during the cold stress. The transgenic rice had significantly higher germination and growth rate than WT under high salinity conditions.
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* Over-expression of '''''SNAC2''''' can also improve the tolerance to PEG treatment. In addition, the '''''SNAC2'''''-overexpressing plants showed significantly increased sensitivity to ABA. DNA chip profiling analysis of transgenic plants revealed many up-regulated genes related to stress response and adapta- tion such as peroxidase, ornithine aminotransferase, heavy metal-associated protein, sodium/hydrogen exchanger, heat shock protein, GDSL-like lipase, and phenylalanine ammonia lyase.
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* Interestingly, none of the up-regulated genes in the '''''SNAC2'''''-overexpressing plants matched the genes up-regulated in the transgenic plants over-expressing other stress responsive NAC genes reported previously.
  
 
===Expression===
 
===Expression===
Please input expression information here.
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* '''''SNAC2''''' gene was induced by drought, salinity, cold, wounding, and abscisic acid (ABA) treatment.
  Expression of OsNAC6 is induced by both abiotic and biotic stresses
 
  The OsNAC6 gene (AB028185; AK068392; Os01 g0884300; ONAC048) encodes a protein of 303 amino acids containing the NAC domain in its N-terminal region (Figure 1a). The NAC domain contains predicted nuclear localization signals (NLS) at amino acids 71–83 and 107–123. RNA gel-blot and quantitative polymerase chain reaction (PCR) analyses showed that OsNAC6 was induced by dehydration, high salt (250 mM NaCl), cold (4�C), 100 lM ABA, 100 lM methyl
 
jasmonate (MeJA) (Figure 1b and Supplementary Figure S1) and wounding (Figure 1c). Induction of OsNAC6 was observed in leaves infected with the blast fungus Magnaporthe grisea Kyu89-246 (Figure 1d). We also examined the effects of stress-related chemicals on the expression of OsNAC6 in rice culture cells. Quantitative PCR analysis showed that OsNAC6 was moderately induced by hydrogen peroxide (H2O2) and weakly by the elictor N-acetylchitooligosaccharide (Figure 1e).
 
  In order to assess the effect of the promoter region on the expression of OsNAC6 under abiotic and biotic stresses in leaves and roots, we generated the transgenic rice plants containing 1.5 kb OsNAC6 promoter–GUS chimeric genes. Quantitative analysis of the OsNAC6 promoter–GUS transgenic rice plants showed that OsNAC6 was induced by dehydration, high salinity, cold, ABA, MeJA, hydrogen peroxide, wounding and blast disease (Figure 1f,g).
 
Sequences of various cis-acting elements involved in the response to abiotic stresses were identified in the 1.5 kb promoter region of OsNAC6 (Figure 1h). We found three ABA-responsive elements (ABREs; ACGTGG/TC) (Hattori et al., 2002), three recognition sites for MYB (MYBRSs; C/TAACNA/G) (Abe et al., 2003) and six recognition sites for MYC (MYCRSs; CANNTG) (Abe et al., 2003). The OsNAC6 promoter also includes some cis-acting elements involved in the reponse to biotic stresses, such as four W-boxes (TTGAC) (Eulgem et al., 2000) and four GCC boxes (GCCGCC) (Brown et al., 2003), which are known as
 
recognition sites for WRKY and ERF transcription factors, respectively. Additionally, the OsNAC6 promoter has three
 
  
===Evolution===
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===Subcellular localization===
Please input evolution information here.
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* '''''SNAC2''''' was proven to have transactivation and DNA-binding activities in yeast and the SNAC2-GFP fusion protein was localized in the rice nuclei.
[[File:gggg]]
 
  
 
==Labs working on this gene==
 
==Labs working on this gene==
 
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* National Center of Plant Gene Research (Wuhan), National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China
  Biological Resources Division, Japan International Research Center for Agricultural Sciences (JIRCAS), Tsukuba, Ibaraki 305-8686, Japan,
 
  RIKEN Plant Science Center, Yokohama, Kanagawa 230-0045, Japan,
 
  Plant Disease Resistance Research Unit, Division of Plant Sciences, National Institute of Agrobiological Sciences (NIAS), Tsukuba, Ibaraki 305-8602, Japan,
 
  Core Research for Evolutional Science and Technology (CREST), Japan Science and Technology, Kawaguchi, Saitama 332-0012, Japan, and
 
  Laboratory of Plant Molecular Physiology, Graduate School of Agricultural and Life Sciences, The University of Tokyo, Bunkyo-ku, Tokyo 113-8657, Japan
 
  
 
==References==
 
==References==
  Abe, H., Urao, T., Ito, T., Seki, M., Shinozaki, K. and Yamaguchi-Shinozaki, K. (2003) Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling. Plant Cell, 15, 63–78.
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<references>
  Aguan, K., Sugawara, K., Suzuki, N. and Kusano, T. (1991) Isolation of genes for low-temperature-induced proteins in rice by a simple subtractive method. Plant Cell Physiol. 32, 1285–1289.
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* <ref name="ref1">
  Aida, M., Ishida, T., Fukaki, H., Fujisawa, H. and Tasaka, M. (1997) Genes involved in organ separation in Arabidopsis: an analysis of the cup-shaped cotyledon mutant. Plant Cell, 9, 841–857.
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Hu H, You J, Fang Y, Zhu X, Qi Z, Xiong L. Characterization of transcription
Becker, D. (1990) Binary vectors which allow the exchange of plant
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factor gene SNAC2 conferring cold and salt tolerance in rice. Plant Mol Biol.
selectable markers and reporter genes. Nucleic Acids Res. 18,
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2008 May;67(1-2):169-81. doi: 10.1007/s11103-008-9309-5. Erratum in: Plant Mol
203.
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Biol. 2010 Mar;72(4-5):567-8. PubMed PMID: 18273684.
  Bray, E.A. (2004) Genes commonly regulated by water-deficit stress in Arabidopsis thaliana. J. Exp. Bot. 55, 2331–2341.
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</ref>
  Brown, R.L., Kazan, K., McGrath, K.C., Maclean, D.J. and Manners, J.M. (2003) A role for the GCC-box in jasmonate-mediated activation of the PDF1.2 gene of Arabidopsis. Plant Physiol. 132, 1020–1032.
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</references>
  Chiu, W.-L., Niwa, Y., Zeng, W., Hirano, T., Kobayashi, H. and Sheen, J. (1996) Engineered GFP as a vital reporter in plants. Curr. Biol. 6, 325–330.
 
  Christensen, A.H., Sharrock, R.A. and Quail, P.H. (1992) Maize polyubiquitin genes: structure, thermal perturbation of expression and transcript splicing, and promoter activity following transfer to protoplasts by electroporation. Plant Mol. Biol. 18, 675–689.
 
  Collinge, M. and Boller, T. (2001) Differential induction of two potato genes, Stprx2 and StNAC, in response to infection by Phytophthora infestans and to wounding. Plant Mol. Biol. 46, 521–529.
 
  Delessert, C., Kazan, K., Wilson, I.W., Van Der Straeten, D., Manners, J., Dennis, E.S. and Dolferus, R. (2005) The transcription
 
factor ATAF2 represses the expression of pathogenesis-related genes in Arabidopsis. Plant J. 43, 745–757.
 
  Dubouzet, J.G., Sakuma, Y., Ito, Y., Kasuga, M., Dubouzet, E.G., Miura, S., Seki, M., Shinozaki, K. and Yamaguchi-Shinozaki, K. (2003) OsDREB genes in rice, Oryza sativa L., encode transcription activators that function in drought-, high-salt- and cold-responsive gene expression. Plant J. 33, 751–763.
 
  Eulgem, T., Rushton, P.J., Robatzek, S. and Somssich, I.E. (2000) The WRKY superfamily of plant transcription factors. Trends Plant
 
Sci. 5, 199–206.
 
  Fowler, S. and Thomashow, M.F. (2002) Arabidopsis transcriptome profiling indicates that multiple regulatory pathways are activated during cold acclimation in addition to the CBF cold response pathway. Plant Cell, 14, 1675–1690.
 
  
 
==Structured Information==
 
==Structured Information==
{{JaponicaGene|
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    [[Category:Genes]][[Category:Oryza Sativa Japonica Group]][[Category:Japonica Chromosome 1]]
GeneName = Os01g0884300|
 
Description = No apical meristem (NAM) protein domain containing protein|
 
Version = NM_001051551.1 GI:115441472 GeneID:4325006|
 
Length = 2486 bp|
 
Definition = Oryza sativa Japonica Group Os01g0884300, 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 1|Chromosome 1]]|
 
AP = Chromosome 1:40154843..40157328|
 
CDS = 40155348..40155818,40156680..40156954,40157054..40157219|
 
GCID = <gbrowseImage1>
 
name=NC_008394:40154843..40157328
 
source=RiceChromosome01
 
preset=GeneLocation
 
</gbrowseImage1>|
 
GSID = <gbrowseImage2>
 
name=NC_008394:40154843..40157328
 
source=RiceChromosome01
 
preset=GeneLocation
 
</gbrowseImage2>|
 
CDNA = <cdnaseq>atgagcggcggtcaggacctgcagctgccgccggggttccggttccacccgacggacgaggagctggtgatgcactacctctgccgccgctgcgccggcctccccatcgccgtccccatcatcgccgagatcgacctctacaagttcgatccatggcagcttccccggatggcgctgtacggagagaaggagtggtacttcttctccccgcgagaccgcaagtacccgaacgggtcgcggccgaaccgcgccgccgggtcggggtactggaaggcgaccggcgccgacaagccggtgggctcgccgaagccggtggcgatcaagaaggccctcgtcttctacgccggcaaggcgcccaagggcgagaagaccaactggatcatgcacgagtaccgcctcgccgacgtcgaccgctccgcccgcaagaagaacagcctcaggttggatgattgggtgctgtgccggatttacaacaagaagggcgggctggagaagccgccggccgcggcggtggcggcggcggggatggtgagcagcggcggcggcgtccagaggaagccgatggtgggggtgaacgcggcggtgagctccccgccggagcagaagccggtggtggcggggccggcgttcccggacctggcggcgtactacgaccggccgtcggactcgatgccgcggctgcacgccgactcgagctgctcggagcaggtgctgtcgccggagttcgcgtgcgaggtgcagagccagcccaagatcagcgagtgggagcgcaccttcgccaccgtcgggcccatcaaccccgccgcctccatcctcgaccccgccggctccggcggcctcggcggcctcggcggcggcggcagcgaccccctcctccaggacatcctcatgtactggggcaagccattctag</cdnaseq>|
 
AA = <aaseq>MSGGQDLQLPPGFRFHPTDEELVMHYLCRRCAGLPIAVPIIAEI                    DLYKFDPWQLPRMALYGEKEWYFFSPRDRKYPNGSRPNRAAGSGYWKATGADKPVGSP                    KPVAIKKALVFYAGKAPKGEKTNWIMHEYRLADVDRSARKKNSLRLDDWVLCRIYNKK                    GGLEKPPAAAVAAAGMVSSGGGVQRKPMVGVNAAVSSPPEQKPVVAGPAFPDLAAYYD                    RPSDSMPRLHADSSCSEQVLSPEFACEVQSQPKISEWERTFATVGPINPAASILDPAG                    SGGLGGLGGGGSDPLLQDILMYWGKPF</aaseq>|
 
DNA = <dnaseqindica>1511..1981#375..649#110..275#caagccctcctctcctcttcccaacactagtaggataaagccacagagagagcagtagtagtagcgagctcgccggagaacggacgatcaccggagaagggggagagagatgagcggcggtcaggacctgcagctgccgccggggttccggttccacccgacggacgaggagctggtgatgcactacctctgccgccgctgcgccggcctccccatcgccgtccccatcatcgccgagatcgacctctacaagttcgatccatggcagcttccccgtacgataatcctcctcctccatcctcccaatcatcaccaccatcaacgccgtcgtgaattgattgattgatttggtttgatttgttggtgttgtgtagggatggcgctgtacggagagaaggagtggtacttcttctccccgcgagaccgcaagtacccgaacgggtcgcggccgaaccgcgccgccgggtcggggtactggaaggcgaccggcgccgacaagccggtgggctcgccgaagccggtggcgatcaagaaggccctcgtcttctacgccggcaaggcgcccaagggcgagaagaccaactggatcatgcacgagtaccgcctcgccgacgtcgaccgctccgcccgcaagaagaacagcctcagggtaagcaaaaaccacacccaagattccatcactaaattcattactaaatctgtgttcatcgtgattattgattaatttagtcacctaattattcgcccaaaaccgcagctcgattcgaacagctggtggtacttctagatggatactactatttagatatttgatatatttattttgcaacttgtttaatcagctcatttcgctttcgaaatgaattgggaggataagcttagcgtggcccacggctttgggccgcagaaattaattggagacgttggctcatctcatctctagggccgcacctacgtggtgcaacttgcgcagccacgatcgaatcgttcgagcgtgaaacccattgccgtcaccacctcgcctcatccctttcagggaccaatcggtttttagccctacgcgcccctgcgatcgcgacgcccacgatagctaaatcccgaaagcaaataagcagtaatcggacagcgactcgaccgggattagttaaacaatggcttgattaattagatgctggaatttggagccttctgataagtttagggcctgtttggcacagctccagctccagcttcaccccttctggagctggagctcagccaaacagtttcggctccaccaaaacggggagtggagctgggtggagctctctcacaaaatgaactagagttgtggagttgggtttaggcagctccacaactccactccagactcaactcctggagttaaatttaggagttggagctgtaccaaacaggcccttagttttgcacttggtactttaatttttttttgagtgagtgtaaatttgtttctaaactttgtttatgaatttgttttgtattggtgcagttggatgattgggtgctgtgccggatttacaacaagaagggcgggctggagaagccgccggccgcggcggtggcggcggcggggatggtgagcagcggcggcggcgtccagaggaagccgatggtgggggtgaacgcggcggtgagctccccgccggagcagaagccggtggtggcggggccggcgttcccggacctggcggcgtactacgaccggccgtcggactcgatgccgcggctgcacgccgactcgagctgctcggagcaggtgctgtcgccggagttcgcgtgcgaggtgcagagccagcccaagatcagcgagtgggagcgcaccttcgccaccgtcgggcccatcaaccccgccgcctccatcctcgaccccgccggctccggcggcctcggcggcctcggcggcggcggcagcgaccccctcctccaggacatcctcatgtactggggcaagccattctagacgaccaaaaaaaaaaaaaaacaaccgcattggcagcaatggtgtcactgaacaccgtgcaggctagctagcttcatggccggtgaactttgactcaggcgagccgccggagttgactcaaagataattaaaagaagtgttttaagtggattggattggattagacagaggagatgaggactcgagaaaggcggcgatgagaccgtggttggggggaccctggcctggactgaacgacgacgaggcagcagcagaaagatggtgcaattgcatcgggtggcatgtcagtgtgtgtgtatagtggcatgtacatagtacatggtgattgattcggtatacagggggctagctttcctgtttctgtttcttcattggttaattattactcccattataaggtcttcttcagggttgctagcttaattaattaattaattagcccagtggttgaagtgtaagtcaaaattcatcaagtcagagactggaataatacaatacagtactg</dnaseqindica>|
 
Link = [http://www.ncbi.nlm.nih.gov/nuccore/NM_001051551.1 RefSeq:Os01g0884300]|
 
}}
 
[[Category:Genes]]
 
[[Category:Japonica mRNA]]
 
[[Category:Oryza Sativa Japonica Group]]
 
[[Category:Japonica Genes]]
 
[[Category:Japonica Chromosome 1]]
 
[[Category:Chromosome 1]]
 

Latest revision as of 05:22, 8 March 2017

The rice Os01g0884300 was reported as SNAC2 in 2008 [1] by researchers from China.

Annotated Information

Figure 1. Expression pattern of SNAC2 in japonica rice IRAT109.[1].

Gene Symbol

  • Os01g0884300 <=> OsNAC6, ONAC048, NAC48, SNAC2, SNAC2/OsNAC6, OsNAC6/ONAC048, OsSNAC2

Function

  • NAC (NAM, ATAF, and CUC) is a plant specific transcription factor family with diverse roles in development and stress regulation.
  • SNAC2 is a novel stress responsive NAC transcription factor that possesses potential utility in improving stress tolerance of rice.

Phenotypic analysis

  • The SNAC2 gene was over-expressed in japonica rice Zhonghua 11 to test the effect on improving stress tolerance. More than 50% of the transgenic plants remained vigorous when all WT plants died after severe cold stress (4–8°C for 5 days).
  • The transgenic plants had higher cell membrane stability than wild type during the cold stress. The transgenic rice had significantly higher germination and growth rate than WT under high salinity conditions.
  • Over-expression of SNAC2 can also improve the tolerance to PEG treatment. In addition, the SNAC2-overexpressing plants showed significantly increased sensitivity to ABA. DNA chip profiling analysis of transgenic plants revealed many up-regulated genes related to stress response and adapta- tion such as peroxidase, ornithine aminotransferase, heavy metal-associated protein, sodium/hydrogen exchanger, heat shock protein, GDSL-like lipase, and phenylalanine ammonia lyase.
  • Interestingly, none of the up-regulated genes in the SNAC2-overexpressing plants matched the genes up-regulated in the transgenic plants over-expressing other stress responsive NAC genes reported previously.

Expression

  • SNAC2 gene was induced by drought, salinity, cold, wounding, and abscisic acid (ABA) treatment.

Subcellular localization

  • SNAC2 was proven to have transactivation and DNA-binding activities in yeast and the SNAC2-GFP fusion protein was localized in the rice nuclei.

Labs working on this gene

  • National Center of Plant Gene Research (Wuhan), National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China

References

  1. 1.0 1.1 Hu H, You J, Fang Y, Zhu X, Qi Z, Xiong L. Characterization of transcription factor gene SNAC2 conferring cold and salt tolerance in rice. Plant Mol Biol. 2008 May;67(1-2):169-81. doi: 10.1007/s11103-008-9309-5. Erratum in: Plant Mol Biol. 2010 Mar;72(4-5):567-8. PubMed PMID: 18273684.

Structured Information