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TAIR:AT1G66340

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Contents

Species (Taxon ID) Arabidopsis thaliana (thale cress) (taxon:3702)
Gene Name(s) AT1G66340 ( synonyms: AT1G66340, ETR1, EIN1, ETR, ETHYLENE RESPONSE 1, ETHYLENE INSENSITIVE 1, ETHYLENE RESPONSE, T27F4.9, T27F4_9, HISTIDINE KINASE ETR1 )
Protein Name(s) AT1G66340,
External Links
TAIR locus:2201552

Annotations

Qualifier GO ID GO term name Reference(s) Evidence Code with/from Aspect Notes Status
GO:0000156

two-component response regulator activity

TAIR:Communication:501714663

ISS: Inferred from Sequence or Structural Similarity

INTERPRO:IPR001789

F

From TAIR

GO:0004673

protein histidine kinase activity

TAIR:Communication:1675000

ISS: Inferred from Sequence or Structural Similarity

F

From TAIR

GO:0004673

protein histidine kinase activity

TAIR:Publication:501714948
PMID:15703053[1]

TAS: Traceable Author Statement

F

From TAIR

GO:0005783

endoplasmic reticulum

TAIR:Publication:1547355
PMID:11916973[2]

IDA: Inferred from Direct Assay

C

From TAIR

GO:0005789

endoplasmic reticulum membrane

TAIR:Publication:1547355
PMID:11916973[2]

IDA: Inferred from Direct Assay

C

From TAIR

GO:0006952

defense response

TAIR:Publication:501717824
PMID:16255250[3]

TAS: Traceable Author Statement

P

From TAIR

GO:0009408

response to heat

TAIR:Publication:501716362
PMID:15923322[4]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009625

response to insect

TAIR:Publication:501716369
PMID:15923339[5]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009651

response to salt stress

TAIR:Publication:501712035
PMID:15044023[6]

IEP: Inferred from Expression Pattern

P

From TAIR

GO:0009690

cytokinin metabolic process

TAIR:Publication:501715010
PMID:15773852[7]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009727

detection of ethylene stimulus

TAIR:Publication:1795
PMID:9974395[8]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009733

response to auxin stimulus

TAIR:Publication:501715010
PMID:15773852[7]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009737

response to abscisic acid stimulus

TAIR:Publication:501715010
PMID:15773852[7]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009739

response to gibberellin stimulus

TAIR:Publication:501715010
PMID:15773852[7]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0009871

jasmonic acid and ethylene-dependent systemic resistance, ethylene mediated signaling pathway

TAIR:Publication:3267
PMID:9191038[9]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:1547355
PMID:11916973[2]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:2283
PMID:9695954[10]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:4130
PMID:8525372[11]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:4403
PMID:7759498[12]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:501681350
PMID:11950991[13]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:501681789
PMID:12177468[14]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:501682873
PMID:12481081[15]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:501683063
PMID:12509505[16]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:501710625
PMID:12953109[17]

TAS: Traceable Author Statement

P

From TAIR

GO:0010105

negative regulation of ethylene mediated signaling pathway

TAIR:Publication:5066
PMID:8211181[18]

TAS: Traceable Author Statement

P

From TAIR

GO:0010119

regulation of stomatal movement

TAIR:Publication:501719967
PMID:16961732[19]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0010182

sugar mediated signaling pathway

TAIR:Publication:501705939
PMID:12663220[20]

TAS: Traceable Author Statement

P

From TAIR

GO:0042742

defense response to bacterium

TAIR:Publication:501729298
PMID:19095898[21]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0050665

hydrogen peroxide biosynthetic process

TAIR:Publication:501719967
PMID:16961732[19]

IMP: Inferred from Mutant Phenotype

P

From TAIR

GO:0051740

ethylene binding

TAIR:Publication:501714948
PMID:15703053[1]

IDA: Inferred from Direct Assay

F

From TAIR

GO:0052544

callose deposition in cell wall during defense response

TAIR:Publication:501729298
PMID:19095898[21]

IMP: Inferred from Mutant Phenotype

P

From TAIR


Notes

References

See Help:References for how to manage references in GONUTS.
  1. 1.0 1.1 O'Malley RC et al. (2005) Ethylene-binding activity, gene expression levels, and receptor system output for ethylene receptor family members from Arabidopsis and tomato. Plant J 41: 651-9 PubMed GONUTS page
  2. 2.0 2.1 2.2 Chen YF et al. (2002) Localization of the ethylene receptor ETR1 to the endoplasmic reticulum of Arabidopsis. J Biol Chem 277: 19861-6 PubMed GONUTS page
  3. Pajerowska KM et al. (2005) Potato homologs of Arabidopsis thaliana genes functional in defense signaling--identification, genetic mapping, and molecular cloning. Mol Plant Microbe Interact 18: 1107-19 PubMed GONUTS page
  4. Larkindale J et al. (2005) Heat stress phenotypes of Arabidopsis mutants implicate multiple signaling pathways in the acquisition of thermotolerance. Plant Physiol 138: 882-97 PubMed GONUTS page
  5. Mewis I et al. (2005) Major signaling pathways modulate Arabidopsis glucosinolate accumulation and response to both phloem-feeding and chewing insects. Plant Physiol 138: 1149-62 PubMed GONUTS page
  6. Zhao XC & Schaller GE (2004) Effect of salt and osmotic stress upon expression of the ethylene receptor ETR1 in Arabidopsis thaliana. FEBS Lett 562: 189-92 PubMed GONUTS page
  7. 7.0 7.1 7.2 7.3 Chiwocha SD et al. (2005) The etr1-2 mutation in Arabidopsis thaliana affects the abscisic acid, auxin, cytokinin and gibberellin metabolic pathways during maintenance of seed dormancy, moist-chilling and germination. Plant J 42: 35-48 PubMed GONUTS page
  8. Rodríguez FI et al. (1999) A copper cofactor for the ethylene receptor ETR1 from Arabidopsis. Science 283: 996-8 PubMed GONUTS page
  9. Loomis WF et al. (1997) Histidine kinases in signal transduction pathways of eukaryotes. J Cell Sci 110 ( Pt 10): 1141-5 PubMed GONUTS page
  10. Hua J & Meyerowitz EM (1998) Ethylene responses are negatively regulated by a receptor gene family in Arabidopsis thaliana. Cell 94: 261-71 PubMed GONUTS page
  11. Schaller GE & Bleecker AB (1995) Ethylene-binding sites generated in yeast expressing the Arabidopsis ETR1 gene. Science 270: 1809-11 PubMed GONUTS page
  12. Schaller GE et al. (1995) The ethylene response mediator ETR1 from Arabidopsis forms a disulfide-linked dimer. J Biol Chem 270: 12526-30 PubMed GONUTS page
  13. Gamble RL et al. (2002) Mutational analysis of the ethylene receptor ETR1. Role of the histidine kinase domain in dominant ethylene insensitivity. Plant Physiol 128: 1428-38 PubMed GONUTS page
  14. Cancel JD & Larsen PB (2002) Loss-of-function mutations in the ethylene receptor ETR1 cause enhanced sensitivity and exaggerated response to ethylene in Arabidopsis. Plant Physiol 129: 1557-67 PubMed GONUTS page
  15. Zhao XC et al. (2002) Effect of ethylene pathway mutations upon expression of the ethylene receptor ETR1 from Arabidopsis. Plant Physiol 130: 1983-91 PubMed GONUTS page
  16. Wang W et al. (2003) Canonical histidine kinase activity of the transmitter domain of the ETR1 ethylene receptor from Arabidopsis is not required for signal transmission. Proc Natl Acad Sci U S A 100: 352-7 PubMed GONUTS page
  17. Hall AE & Bleecker AB (2003) Analysis of combinatorial loss-of-function mutants in the Arabidopsis ethylene receptors reveals that the ers1 etr1 double mutant has severe developmental defects that are EIN2 dependent. Plant Cell 15: 2032-41 PubMed GONUTS page
  18. Chang C et al. (1993) Arabidopsis ethylene-response gene ETR1: similarity of product to two-component regulators. Science 262: 539-44 PubMed GONUTS page
  19. 19.0 19.1 Desikan R et al. (2006) Ethylene-induced stomatal closure in Arabidopsis occurs via AtrbohF-mediated hydrogen peroxide synthesis. Plant J 47: 907-16 PubMed GONUTS page
  20. León P & Sheen J (2003) Sugar and hormone connections. Trends Plant Sci 8: 110-6 PubMed GONUTS page
  21. 21.0 21.1 Clay NK et al. (2009) Glucosinolate metabolites required for an Arabidopsis innate immune response. Science 323: 95-101 PubMed GONUTS page
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