Difference between revisions of "Os02g0728001"
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<ref name="ref6">Fukazawa J, Sakai T, Ishida S, Yamaguchi I, Kamiya Y, Takahashi Y (2000) Repression of shoot growth, a bZIP transcriptional activator, regulates cell elongation by controlling the level of gibberellins.Plant Cell 12 901–915</ref> | <ref name="ref6">Fukazawa J, Sakai T, Ishida S, Yamaguchi I, Kamiya Y, Takahashi Y (2000) Repression of shoot growth, a bZIP transcriptional activator, regulates cell elongation by controlling the level of gibberellins.Plant Cell 12 901–915</ref> | ||
</references> | </references> | ||
| + | YinY,ZhuQ,DaiS,LambC,BeachyRN (1997b) RF2a, a bZIP tran- | ||
| + | scriptional activator of the phloem-specific rice tungro bacilli- | ||
| + | form virus promoter, functions in vascular development. EMBO J 16: | ||
| + | 5247–5259 | ||
| + | YinY,ChenL,BeachyR (1997a) Promoter elements required for phloem- | ||
| + | specific gene expression from the RTBV promoter in rice. Plant J 12: | ||
| + | 1179–1188 | ||
| + | Yang D, Wu L, Hwang YS, Chen L, Huang N (2001) Expression of the REB | ||
| + | transcriptional activator in rice grains improves the yield of recombi- | ||
| + | nant proteins whose genes are controlled by a Reb-responsive promoter. | ||
| + | Proc Natl Acad Sci USA 98: 11438–11443 | ||
| + | Wigge PA, KimMC, Jaeger KE, BuschW, SchmidM, Lohmann JU,Weigel | ||
| + | D (2005) Integration of spatial and temporal information during floral | ||
| + | induction in Arabidopsis.Science 309: 1056–1059 | ||
| + | Walsh J, Freeling M (1999) The liguleless2 gene of maize functions during | ||
| + | the transition from the vegetative to the reproductive shoot apex. Plant J | ||
| + | 19: 489–495 | ||
| + | Vicente-Carbajosa J, Onate L, Lara P, Diaz I, Carbonero P (1998) Barley | ||
| + | BLZ1: a bZIP transcriptional activator that interacts with endosperm- | ||
| + | specific gene promoters. Plant J 13: 629–640 | ||
| + | Thurow C, Schiermeyer A, Krawczyk S, Butterbrodt T, Nickolov K, Gatz | ||
| + | C (2005) Tobacco bZIP transcription factor TGA2.2 and related factor | ||
| + | TGA2.1 have distinct roles in plant defense responses and plant devel- | ||
| + | opment. Plant J 44: 100–113 | ||
| + | Thomas D, Jacquemin I, Surdin-Kerjan Y (1992) MET4, a leucine zipper | ||
| + | protein, and centromere-binding factor 1 are both required for tran- | ||
| + | scriptional activation of sulfur metabolism in Saccharomyces cerevisiae. | ||
| + | MolCellBiol 12: 1719–1727 | ||
| + | Niggeweg R, Thurow C, Kegler C, Gatz C (2000) Tobacco transcription | ||
| + | factor TGA2.2 is themain component of as-1-binding factor ASF-1 and is | ||
| + | involved in salicylic acid- and auxin-inducible expression of as-1- | ||
| + | containing target promoters. J Biol Chem 275: 19897–19905 | ||
| + | Niu X, Renshaw-Gegg L, Miller L, Guiltinan MJ (1999) Bipartite deter- | ||
| + | minants of DNA-binding specificity of plant basic leucine zipper pro- | ||
| + | teins. Plant Mol Biol 41: 1–13 | ||
| + | Okanami M, Meshi T, Tamai H, Iwabuchi M (1996) HALF-1, a bZIP-type | ||
| + | protein, interacting with the wheat transcription factor HBP-1a contains | ||
| + | a novel transcriptional activation domain. Genes Cells 1: 87–99 | ||
| + | Onodera Y, Suzuki A, Wu CY, Washida H, Takaiwa F (2001) A rice | ||
| + | functional transcriptional activator, RISBZ1, responsible for endosperm- | ||
| + | specific expression of storage protein genes through GCN4 motif. J Biol | ||
| + | CheRiechmann JL, Heard J, Martin G, Reuber L, Jiang C, Keddie J, Adam L, | ||
| + | Pineda O, Ratcliffe OJ, Samaha RR, et al (2000) Arabidopsis transcrip- | ||
| + | tion factors: genome-wide comparative analysis among eukaryotes. | ||
| + | Science 290: 2105–2110m 276: 14139–14152 | ||
==Structured Information== | ==Structured Information== | ||
Revision as of 11:48, 9 June 2014
The Basic Leucine Zipper Domain (bZIP domain) is found in many DNA binding eukaryotic proteins. One part of the domain contains a region that mediates sequence specific DNA binding properties and the leucine zipper that is required to hold together (dimerize) two DNA binding regions. The DNA binding region comprises a number of basic amino acids such as arginine and lysine. Proteins containing this domain are transcription factors.[1][2] Please input one-sentence summary here. The bZIP proteins characteristically harbor a bZIP domain composed of two structural features: a DNA-binding basic region and the Leu zipper dimerization region.
Contents
Annotated Information
Function
In many plants, bZIP transcription factors have been reported to function in the regulation of seed maturation and germination[1]. Available functional information suggests their role not only in the integration of spatial and temporal information during floral induction, but also in flower development [2].Genetic and molecular studies have revealed their regulatory role in photomorphogenesis and light signaling [3].They also participate in defense against pathogens[4]. Many bZIP transcription factors function in abscisic acid (ABA) and/or stress signaling [5],and a few of them have been shown to be hormone responsive [6]
Expression
Evolution
Labs working on this gene
References
- ↑ Izawa T, Foster R, Nakajima M, Shimamoto K, Chua NH (1994) The rice bZIP transcriptional activator RITA-1 is highly expressed during seed development. Plant Cell 6 1277–1287
- ↑ Chuang CF, Running MP, Williams RW, Meyerowitz EM (1999) The PERIANTHIA gene encodes a bZIP protein involved in the determination of floral organ number in Arabidopsis thaliana. Genes Dev13 334–344
- ↑ Holm M, Ma LG, Qu LJ, Deng XW (2002) Two interacting bZIP proteins are direct targets of COP1-mediated control of light-dependent gene expression in Arabidopsis. Genes Dev 16 1247–1259
- ↑ Zhang Y, Tessaro MJ, Lassner M, Li X (2003) Knockout analysis of Arabidopsis transcription factors TGA2, TGA5, and TGA6 reveals their redundant and essential roles in systemic acquired resistance.
- ↑ de Vetten NC, Ferl RJ (1995) Characterization of a maize G-box binding factor that is induced by hypoxia. Plant J 7 589–601
- ↑ Fukazawa J, Sakai T, Ishida S, Yamaguchi I, Kamiya Y, Takahashi Y (2000) Repression of shoot growth, a bZIP transcriptional activator, regulates cell elongation by controlling the level of gibberellins.Plant Cell 12 901–915
YinY,ZhuQ,DaiS,LambC,BeachyRN (1997b) RF2a, a bZIP tran- scriptional activator of the phloem-specific rice tungro bacilli- form virus promoter, functions in vascular development. EMBO J 16: 5247–5259 YinY,ChenL,BeachyR (1997a) Promoter elements required for phloem- specific gene expression from the RTBV promoter in rice. Plant J 12: 1179–1188 Yang D, Wu L, Hwang YS, Chen L, Huang N (2001) Expression of the REB transcriptional activator in rice grains improves the yield of recombi- nant proteins whose genes are controlled by a Reb-responsive promoter. Proc Natl Acad Sci USA 98: 11438–11443 Wigge PA, KimMC, Jaeger KE, BuschW, SchmidM, Lohmann JU,Weigel D (2005) Integration of spatial and temporal information during floral induction in Arabidopsis.Science 309: 1056–1059 Walsh J, Freeling M (1999) The liguleless2 gene of maize functions during the transition from the vegetative to the reproductive shoot apex. Plant J 19: 489–495 Vicente-Carbajosa J, Onate L, Lara P, Diaz I, Carbonero P (1998) Barley BLZ1: a bZIP transcriptional activator that interacts with endosperm- specific gene promoters. Plant J 13: 629–640 Thurow C, Schiermeyer A, Krawczyk S, Butterbrodt T, Nickolov K, Gatz C (2005) Tobacco bZIP transcription factor TGA2.2 and related factor TGA2.1 have distinct roles in plant defense responses and plant devel- opment. Plant J 44: 100–113 Thomas D, Jacquemin I, Surdin-Kerjan Y (1992) MET4, a leucine zipper protein, and centromere-binding factor 1 are both required for tran- scriptional activation of sulfur metabolism in Saccharomyces cerevisiae. MolCellBiol 12: 1719–1727 Niggeweg R, Thurow C, Kegler C, Gatz C (2000) Tobacco transcription factor TGA2.2 is themain component of as-1-binding factor ASF-1 and is involved in salicylic acid- and auxin-inducible expression of as-1- containing target promoters. J Biol Chem 275: 19897–19905 Niu X, Renshaw-Gegg L, Miller L, Guiltinan MJ (1999) Bipartite deter- minants of DNA-binding specificity of plant basic leucine zipper pro- teins. Plant Mol Biol 41: 1–13 Okanami M, Meshi T, Tamai H, Iwabuchi M (1996) HALF-1, a bZIP-type protein, interacting with the wheat transcription factor HBP-1a contains a novel transcriptional activation domain. Genes Cells 1: 87–99 Onodera Y, Suzuki A, Wu CY, Washida H, Takaiwa F (2001) A rice functional transcriptional activator, RISBZ1, responsible for endosperm- specific expression of storage protein genes through GCN4 motif. J Biol CheRiechmann JL, Heard J, Martin G, Reuber L, Jiang C, Keddie J, Adam L, Pineda O, Ratcliffe OJ, Samaha RR, et al (2000) Arabidopsis transcrip- tion factors: genome-wide comparative analysis among eukaryotes. Science 290: 2105–2110m 276: 14139–14152
Structured Information
{{JaponicaGene| GeneName = bZIP转录因子| Description = bZIP transcription factor| Length = 510bp| CDS Coordinates (5'-3') =30295609-30296118| Predicted protein length =170 Predicted molecular weight = 19777| Predicted pl = 8.2539 | Source = RiceChromosome02|