Difference between revisions of "Os09g0457900"

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The rice '''''Os04g0459000''''' was reported as '''''OsEATB''''' in 2011 <ref name="ref1" /> by researchers from China.  <ref name="ref1" />
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The rice '''''Os09g0457900''''' was reported as '''''OsEATB''''' in 2011 <ref name="ref1" /> by researchers from China.  <ref name="ref1" />
  
 
==Annotated Information==
 
==Annotated Information==
[[File:76HF6.jpg|right|thumb|727px|'''Figure 6.''' ''Effect of transgenic OsEATB on rice yield traits.<ref name="ref1" />.'']]
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[[File:76HF6.jpg|right|thumb|527px|'''Figure 6.''' ''Effect of transgenic OsEATB on rice yield traits.<ref name="ref1" />.'']]
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===Gene Symbol===
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*'''''Os09g0457900''''' '''''<=>''''' '''''OsERF#102, OsERF102, AP2/EREBP#123, AP2/EREBP123, OsEATB, EATB'''''
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===Function===
 
===Function===
 
* Plant height is a decisive factor in plant architecture. Rice (Oryza sativa) plants have the potential for rapid internodal elongation, which determines plant height. A large body of physiological research has shown that ethylene and gibberellin are involved in this process.
 
* Plant height is a decisive factor in plant architecture. Rice (Oryza sativa) plants have the potential for rapid internodal elongation, which determines plant height. A large body of physiological research has shown that ethylene and gibberellin are involved in this process.
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* State Key Laboratory of Genetic Engineering, Institute of Genetics, School of Life Sciences, Fudan University,Shanghai 200433, China.
 
* State Key Laboratory of Genetic Engineering, Institute of Genetics, School of Life Sciences, Fudan University,Shanghai 200433, China.
 
* Key Laboratory of Analytical Chemistry for Biology and Medicine, Department of Chemistry, Wuhan University, Wuhan 430072, China.
 
* Key Laboratory of Analytical Chemistry for Biology and Medicine, Department of Chemistry, Wuhan University, Wuhan 430072, China.
 
  
 
==References==
 
==References==
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Restricts Internode Elongation by Down-Regulating
 
Restricts Internode Elongation by Down-Regulating
 
a Gibberellin Biosynthetic Gene. Plant Physiol 157:216-228.</ref>
 
a Gibberellin Biosynthetic Gene. Plant Physiol 157:216-228.</ref>
<ref name="ref2">Huang N, Courtois B,Wang GL (1996) Association of quantitative trait loci
 
for plant height with major dwarfing genes in rice. Heredity 77: 130–137</ref>
 
<ref name="ref3">Yang XC, Hwa CM (2008) Genetic modification of plant architecture and
 
variety improvement in rice. Heredity 101: 396–404</ref>
 
<ref name="ref4">Raskin I, Kende H (1984) Role of gibberellin in the growth response of
 
submerged deep water rice. Plant Physiol 76: 947–950</ref>
 
<ref name="ref5">Ross JJ, Murfet IC, Reid JB (1997) Gibberellin mutants. Physiol Plant 100:
 
550–560</ref>
 
<ref name="ref6">Magome H, Yamaguchi S, Hanada A, Kamiya Y, Oda K (2004) dwarf and
 
delayed-flowering 1, a novel Arabidopsismutant deficient in gibberellin
 
biosynthesis because of overexpression of a putative AP2 transcription
 
factor. Plant J 37: 720–729</ref>
 
<ref name="ref7">Yamaguchi S, Sun T, Kawaide H, Kamiya Y (1998) The GA2 locus of
 
Arabidopsis thaliana encodes ent-kaurene synthase of gibberellin biosynthesis.
 
Plant Physiol 116: 1271–1278</ref>
 
<ref name="ref8">Yang GX, Jan A, Shen SH, Yazaki J, Ishikawa M, Shimatani Z, Kishimoto
 
N, Kikuchi S, Matsumoto H, Komatsu S (2004) Microarray analysis
 
of brassinosteroids- and gibberellin-regulated gene expression in rice
 
seedlings. Mol Genet Genomics 271: 468–478</ref>
 
<ref name="ref9" > Achard P, Genschik P (2009) Releasing the brakes of plant growth: how
 
GAs shutdown DELLA proteins. J Exp Bot 60: 1085–1092</ref>
 
<ref name="ref10">Fukao T, Bailey-Serres J (2008) Submergence tolerance conferred by Sub1A
 
is mediated by SLR1 and SLRL1 restriction of gibberellin responses in
 
rice. Proc Natl Acad Sci USA 105: 16814–16819 </ref>
 
<ref name="ref11"> Li YH (1979) Morphology and Anatomy of Grass Family Crops. Shanghai
 
Science and Technology Press, Shanghai, China, pp 138–142</ref>
 
<ref name="ref12">Furutani I, Sukegawa S, Kyozuka J (2006) Genome-wide analysis of spatial
 
and temporal gene expression in rice panicle development. Plant J 46:
 
503–511</ref>
 
<ref name="ref13">Zhu Y, Cai XL, Wang ZY, Hong MM (2003) An interaction between a MYC
 
protein and an EREBP protein is involved in transcriptional regulation
 
of the rice Wx gene. J Biol Chem 278: 47803–47811</ref>
 
<ref name="ref14">Cheong YH, Moon BC, Kim JK, Kim CY, Kim MC, Kim IH, Park CY, Kim
 
JC, Park BO, Koo SC, et al (2003) BWMK1, a rice mitogen-activated
 
protein kinase, locates in the nucleus andmediates pathogenesis-related
 
gene expression by activation of a transcription factor. Plant Physiol 132:
 
1961–1972</ref>
 
<ref name="ref15"> Hattori Y, Nagai K, Furukawa S, Song XJ, Kawano R, Sakakibara H,Wu J,
 
Matsumoto T, Yoshimura A, Kitano H, et al (2009) The ethylene  response factors SNORKEL1 and SNORKEL2 allow rice to adapt to deep
 
water. Nature 460: 1026–1030</ref>
 
<ref name="ref16">Thara VK, Tang X, Gu YQ, Martin GB, Zhou JM (1999) Pseudomonas
 
syringae pv tomato induces the expression of tomato EREBP-like genes
 
pti4 and pti5 independent of ethylene, salicylate and jasmonate. Plant J
 
20: 475–483</ref>
 
<ref name="ref17">Cao Y, Song F, Goodman RM, Zheng Z (2006) Molecular characterization
 
of four rice genes encoding ethylene-responsive transcriptional factors
 
and their expressions in response to biotic and abiotic stress. J Plant
 
Physiol 163: 1167–1178</ref>
 
<ref name="ref18">Kende H, van der Knaap E, Cho HT (1998) Deepwater rice: a model plant
 
to study stem elongation. Plant Physiol 118: 1105–1110</ref>
 
<ref name="ref19">Xu K, Xu X, Fukao T, Canlas P, Maghirang-Rodriguez R, Heuer S, Ismail
 
AM, Bailey-Serres J, Ronald PC, Mackill DJ (2006) Sub1A is an
 
ethylene-response-factor-like gene that confers submergence tolerance
 
to rice. Nature 442: 705–708</ref>
 
<ref name="ref20"> Zha XJ, Luo XJ, Qian XY, He GM, Yang MF, Li Y, Yang JS (2009) Overexpression
 
of the rice LRK1 gene improves quantitative yield components.
 
Plant Biotechnol J 7: 611–620</ref>
 
<ref name="ref21">Li XY, Qian Q, Fu ZM, Wang YH, Xiong GS, Zeng DL, Wang XQ, Liu XF,
 
Teng S, Hiroshi F, et al (2003) Control of tillering in rice. Nature 422:
 
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Yoshida S, Ashikari M, Kitano H, Matsuoka M (2003) A rice brassinosteroid-
 
deficient mutant, ebisu dwarf (d2), is caused by a loss of
 
function of a new member of cytochrome P450. Plant Cell 15: 2900–2910</ref>
 
<ref name="ref24">Booker J, Auldridge M, Wills S, McCarty D, Klee H, Leyser O (2004)
 
MAX3/CCD7 is a carotenoid cleavage dioxygenase required for the
 
synthesis of a novel plant signaling molecule. Curr Biol 14: 1232–1238</ref>
 
<ref name="ref25">Spielmeyer W, Ellis MH, Chandler PM (2002) Semidwarf (sd-1), “green
 
revolution” rice, contains a defective gibberellin 20-oxidase gene. Proc
 
Natl Acad Sci USA 99: 9043–9048</ref>
 
<ref name="ref26">Jung KH, Seo YS, Walia H, Cao P, Fukao T, Canlas PE, Amonpant F,
 
Bailey-Serres J, Ronald PC (2010) The submergence tolerance regulator
 
Sub1A mediates stress-responsive expression of AP2/ERF transcription
 
factors. Plant Physiol 152: 1674–1692</ref>
 
<ref name="ref27">Zhang S, Cai Z, Wang X (2009) The primary signaling outputs of
 
brassinosteroids are regulated by abscisic acid signaling. Proc Natl
 
Acad Sci USA 106: 4543–4548</ref>
 
<ref name="ref28">Xu YL, Li L,Wu K, Peeters AJ, Gage DA, Zeevaart JA (1995) The GA5 locus
 
of Arabidopsis thaliana encodes a multifunctional gibberellin 20-oxidase:
 
molecular cloning and functional expression. Proc Natl Acad Sci USA
 
92: 6640–6644</ref>
 
<ref name="ref29">Chang C, Shockey JA (1999) The ethylene-response pathway: signal
 
perception to gene regulation. Curr Opin Plant Biol 2: 352–358</ref>
 
<ref name="ref30">Sakamoto T, Miura K, Itoh H, Tatsumi T, Ueguchi-Tanaka M, Ishiyama K,
 
Kobayashi M, Agrawal GK, Takeda S, Abe K, et al (2004) An overview
 
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</references>
 
</references>
 +
 +
==Structured Information==
  
 
[[Category:Genes]]
 
[[Category:Genes]]

Latest revision as of 15:30, 7 March 2017

The rice Os09g0457900 was reported as OsEATB in 2011 [1] by researchers from China. [1]

Annotated Information

Figure 6. Effect of transgenic OsEATB on rice yield traits.[1].

Gene Symbol

  • Os09g0457900 <=> OsERF#102, OsERF102, AP2/EREBP#123, AP2/EREBP123, OsEATB, EATB

Function

  • Plant height is a decisive factor in plant architecture. Rice (Oryza sativa) plants have the potential for rapid internodal elongation, which determines plant height. A large body of physiological research has shown that ethylene and gibberellin are involved in this process.
  • The APETALA2 (AP2)/Ethylene-Responsive Element Binding Factor (ERF) family of transcriptional factors is only present in the plant kingdom.
  • OsEATB reduces rice plant height and panicle length at maturity, promoting the branching potential of both tillers and spikelets.
  • OsEATB Is a Novel Rice AP2/ERF
  • OsEATB Negatively Regulates Ethylene-Induced Enhancement of GA Responsiveness by Reducing GA Biosynthesis
  • OsEATB Regulates Rice Yield Components through the Promotion of Tillering and Panicle Branching

Phenotypic analysis

  • Overexpression of OsEATB Decreases the Endogenous GA Level in Rice

Expression

  • OsEATB Expression Is Negatively Regulated by Ethylene, ABA, and Abiotic Stress in Rice
  • Ectopic expression of OsEATB showed that the cross talk between ethylene and gibberellin, which is mediated by OsEATB, might underlie differences in rice internode elongation.
  • Analyses of gene expression demonstrated that OsEATB restricts ethylene-induced enhancement of gibberellin responsiveness during the internode elongation process by down-regulating the gibberellin biosynthetic gene, ent-kaurene synthase A.

Labs working on this gene

  • State Key Laboratory of Genetic Engineering, Institute of Genetics, School of Life Sciences, Fudan University,Shanghai 200433, China.
  • Key Laboratory of Analytical Chemistry for Biology and Medicine, Department of Chemistry, Wuhan University, Wuhan 430072, China.

References

  1. 1.0 1.1 1.2 Weiwei Qi, Fan Sun, Qianjie Wang, Mingluan Chen, Yunqing Huang, Yu-Qi Feng, Xiaojin Luo, and Jinshui Yang(2011) Rice Ethylene-Response AP2/ERF Factor OsEATB Restricts Internode Elongation by Down-Regulating a Gibberellin Biosynthetic Gene. Plant Physiol 157:216-228.

Structured Information