Gene Details:
- Gene ID: AT3G48090
- Gene Symbol: ATEDS1, EDS1
- Gene Name: enhanced disease susceptibility 1
- Description: alpha/beta-Hydrolases superfamily protein;(source:Araport11)
- TAIR Accession: locus:2097855
- Genome: Araport11_genome_release
- Species: Arabidopsis thaliana
Transcripts:
Plant Ontology Annotations:
- PO:0000037 — shoot axis apex — ápice del epiblasto (epiblastema) (Spanish, exact), シュート頂、茎頂 (Japanese, exact)
- PO:0008019 — leaf lamina base — base de la lámina de la hoja (Spanish, exact), 葉身基部 (Japanese, exact)
- PO:0009005 — root — raíz (Spanish, exact), radices (exact, plural), radix (exact), 根 (Japanese, exact), aerial root (narrow), climbing root (narrow)
- PO:0009009 — plant embryo — embrión (Spanish, exact), 植物胚 (Japanese, exact), germ (related), embryo (broad)
- PO:0009025 — vascular leaf — foliage leaf (exact), hoja vascular (Spanish, exact), leaf, vascular (exact), vascular leaves (exact, plural), 維管束のある葉, または維管束植物の葉 (Japanese, exact), crozier (related), macrophyll (related), megaphyll (related), ascidia (narrow), ascidium (narrow), fiddlehead (narrow), frond (narrow), needle-like leaf (narrow), pitcher (narrow), pitcher blade (narrow), pitcher-blade (narrow), scale-like leaf (narrow), sterile frond (narrow), trophophyll (narrow)
- PO:0009029 — stamen — estambre (Spanish, exact), 雄蕊 (Japanese, exact), Poaceae stamen (narrow), Zea stamen (narrow)
- PO:0009031 — sepal — sépalo (Spanish, exact), がく片 (Japanese, exact)
- PO:0009046 — flower — flor (Spanish, exact), 花 (Japanese, exact), floret (related), Asteraceae floret (narrow), basal flower (narrow), double flower (narrow), hermaphrodite flower (narrow), monoclinous flower (narrow), perfect flower (narrow)
- PO:0009052 — inflorescence flower pedicel — 小花柄 (Japanese, related), pedicelo (Spanish, broad)
- PO:0020030 — cotyledon — cotiledón (Spanish, exact), seed leaf (exact), 子葉 (Japanese, exact)
- PO:0020038 — petiole — pecíolo (Spanish, exact), 葉柄 (Japanese, exact)
- PO:0020100 — hypocotyl — hipocótile (Spanish, exact), 胚軸 (Japanese, exact)
- PO:0020137 — leaf apex — ápice de la hoja (Spanish, exact), 葉先 (Japanese, exact), leaf lamina apex (narrow), phyllid apex (narrow)
- PO:0025022 — collective leaf structure — estructura colectiva de hoja (Spanish, exact), leaf series (exact), 葉が集まった構造 (Japanese, exact), leaf whorl (narrow), rosette (narrow), cycle (broad), verticil (broad)
- PO:0025281 — pollen — polen (Spanish, exact), pollen grain (exact), 花粉 (Japanese, exact)
Gene Ontology:
- GO:0005515 — enables — protein binding
- GO:0010310 — acts upstream of or within — regulation of hydrogen peroxide metabolic process
- GO:0001666 — acts upstream of or within — response to hypoxia
- GO:0009862 — acts upstream of or within — systemic acquired resistance, salicylic acid mediated signaling pathway
- GO:0009626 — acts upstream of or within — plant-type hypersensitive response
- GO:0050829 — acts upstream of or within — defense response to Gram-negative bacterium
- GO:0010618 — acts upstream of or within — aerenchyma formation
- GO:0009626 — involved in — plant-type hypersensitive response
- GO:0009627 — acts upstream of or within — systemic acquired resistance
- GO:0006629 — involved in — lipid metabolic process
- GO:0042803 — enables — protein homodimerization activity
- GO:0016298 — enables — lipase activity
- GO:0005634 — located in — nucleus
- GO:0009507 — located in — chloroplast
- GO:0005737 — located in — cytoplasm
- GO:0000304 — acts upstream of or within — response to singlet oxygen
- GO:0060866 — acts upstream of or within — leaf abscission
Germplasm Phenotype:
- CS67134 — Mutation in EDS1 suppressed the cell death and resistance phenotypes of pen3-1, allowing Erysiphe cichoracearum to conidiate; increased frequency of penetration of Blumeria graminis f. sp hordei in the double mutant relative to the pen3-1 single mutant.
- CS73285 — dwarfed; leaves exhibit visible lesions of dead cells
- CS73286 — dwarfed; leaves exhibit visible lesions of dead cells
- CS73289 — dwarfed
- dmr1-1 eds1-2 — Resistant to downy mildew fungus Hyaloperonospora parasitica. Showed chlorosis and reduced growth.
- dmr2 eds1-2 — Resistant to downy mildew fungus Hyaloperonospora parasitica.
- dmr3 eds1-2 — Broad spectrum of disease resistance to oomycete, bacterial and fungal pathogens. Mutants exhibit dwarfism and are resistant to Pseudomonas syringae pv tomato, and to the powdery mildew pathogen, Golovinomyces orontii and shows enhanced defense gene expression.
- dmr4 eds1-2 — Broad spectrum of disease resistance to oomycete, bacterial and fungal pathogens. Mutants are dwarf, resistant to Psuedomonas syringae pv tomato, and to the powdery mildew pathogen, Golovinomyces orontii with an enhanced defense gene expression.
- dmr5 eds1-2 — Resistant to downy mildew fungus Hyaloperonospora parasitica. There was significant hyphal growth but haustoria were not formed in all adjacent plant cells. Plants show normal plant development.
- dmr6 eds1-2 — resistant to downy mildew fungus Hyaloperonospora parasitica and showed no hyphal growth. Susceptible to Psuedomonas syringae pv tomato, and to the powdery mildew pathogen, Golovinomyces orontii.
- eds1 — Enhanced fungal infection
- eds1-2 — Highly susceptible to downy mildew pathogen Hyaloperonospora parasitica.
- eds1-2 — The mutant exhibits a significant flg22-induced reduction in bacterial growth, indicating that the gene is most probably not required for flg22-induced bacterial resistance.
Function-related keywords:
- shoot axis apex , leaf lamina base , root , plant embryo , vascular leaf , stamen , sepal , flower , inflorescence flower pedicel , cotyledon , petiole , hypocotyl , leaf apex , collective leaf structure , pollen
Literature:
- Downy mildew (Peronospora parasitica) resistance genes in Arabidopsis vary in functional requirements for NDR1, EDS1, NPR1 and salicylic acid accumulation. DOI: 10.1046/j.1365-313x.2000.00771.x ; PMID: 10886772
- Different requirements for EDS1 and NDR1 by disease resistance genes define at least two R gene-mediated signaling pathways in Arabidopsis. DOI: 10.1073/pnas.95.17.10306 ; PMID: 9707643
- Negative regulation of defense responses in plants by a conserved MAPKK kinase. DOI: 10.1073/pnas.98.1.373 ; PMID: 11114160
- Activation of an EDS1-mediated R-gene pathway in the snc1 mutant leads to constitutive, NPR1-independent pathogen resistance. DOI: 10.1094/MPMI.2001.14.10.1131 ; PMID: 11605952
- Knockout of Arabidopsis accelerated-cell-death11 encoding a sphingosine transfer protein causes activation of programmed cell death and defense. DOI: 10.1101/gad.218202 ; PMID: 11850411
- Arabidopsis RPP4 is a member of the RPP5 multigene family of TIR-NB-LRR genes and confers downy mildew resistance through multiple signalling components. DOI: 10.1046/j.0960-7412.2001.01229.x ; PMID: 11846877
- An EDS1 orthologue is required for N-mediated resistance against tobacco mosaic virus. DOI: 10.1046/j.1365-313x.2002.029005569.x ; PMID: 11874570
- The Arabidopsis downy mildew resistance gene, RPP13-Nd, functions independently of NDR1 and EDS1 and does not require the accumulation of salicylic acid. DOI: 10.1094/MPMI.2001.14.3.416 ; PMID: 11277440
- A gain-of-function mutation in an Arabidopsis Toll Interleukin1 receptor-nucleotide binding site-leucine-rich repeat type R gene triggers defense responses and results in enhanced disease resistance. DOI: 10.1105/tpc.005348 ; PMID: 12468733
- Loss of non-host resistance of Arabidopsis NahG to Pseudomonas syringae pv. phaseolicola is due to degradation products of salicylic acid. DOI: 10.1046/j.1365-313x.2003.01665.x ; PMID: 12609045
- Expression profiling of the host response to bacterial infection: the transition from basal to induced defence responses in RPM1-mediated resistance. DOI: 10.1046/j.1365-313x.2003.01653.x ; PMID: 12609040
- An investigation into the involvement of defense signaling pathways in components of the nonhost resistance of Arabidopsis thaliana to rust fungi also reveals a model system for studying rust fungal compatibility. DOI: 10.1094/MPMI.2003.16.5.398 ; PMID: 12744510
- Sensitization of defense responses and activation of programmed cell death by a pathogen-induced receptor-like protein kinase in Arabidopsis. DOI: 10.1023/B:PLAN.0000009265.72567.58 ; PMID: 14756307
- Salicylic acid-dependent expression of host genes in compatible Arabidopsis-virus interactions. DOI: 10.1104/pp.104.056028 ; PMID: 15728340
- The atypical resistance gene, RPW8, recruits components of basal defence for powdery mildew resistance in Arabidopsis. DOI: 10.1111/j.1365-313X.2005.02356.x ; PMID: 15773856
- Regulation of plant disease resistance, stress responses, cell death, and ethylene signaling in Arabidopsis by the EDR1 protein kinase. DOI: 10.1104/pp.105.060400 ; PMID: 15894742
- Role of salicylic acid and fatty acid desaturation pathways in ssi2-mediated signaling. DOI: 10.1104/pp.105.071662 ; PMID: 16306139
- The BON/CPN gene family represses cell death and promotes cell growth in Arabidopsis. DOI: 10.1111/j.1365-313X.2005.02585.x ; PMID: 16367962
- The chimeric Arabidopsis CYCLIC NUCLEOTIDE-GATED ION CHANNEL11/12 activates multiple pathogen resistance responses. DOI: 10.1105/tpc.105.038786 ; PMID: 16461580
- Salicylic acid-independent ENHANCED DISEASE SUSCEPTIBILITY1 signaling in Arabidopsis immunity and cell death is regulated by the monooxygenase FMO1 and the Nudix hydrolase NUDT7. DOI: 10.1105/tpc.105.039982 ; PMID: 16531493
- and jasmonic acid/ethylene-dependent responses via EDS1 and PAD4. DOI: 10.1111/j.1365-313X.2006.02806.x ; PMID: 16813576
- The role of EDS1 (enhanced disease susceptibility) during singlet oxygen-mediated stress responses of Arabidopsis. DOI: 10.1111/j.1365-313X.2006.02793.x ; PMID: 16790029
- Salicylic acid-mediated innate immunity in Arabidopsis is regulated by SIZ1 SUMO E3 ligase. DOI: 10.1111/j.1365-313X.2006.02947.x ; PMID: 17163880
- Plastidial fatty acid levels regulate resistance gene-dependent defense signaling in Arabidopsis. DOI: 10.1073/pnas.0609259104 ; PMID: 17431038
- Pathogen-associated molecular pattern recognition rather than development of tissue necrosis contributes to bacterial induction of systemic acquired resistance in Arabidopsis. DOI: 10.1111/j.1365-313X.2007.03067.x ; PMID: 17419843
- The Arabidopsis BAP1 and BAP2 genes are general inhibitors of programmed cell death. DOI: 10.1104/pp.107.100800 ; PMID: 17631528
- Arabidopsis proteins important for modulating defense responses to Pseudomonas syringae that secrete HopW1-1. DOI: 10.1111/j.1365-313X.2008.03439.x ; PMID: 18266921
- Bacterial non-host resistance: interactions of Arabidopsis with non-adapted Pseudomonas syringae strains. DOI: 10.1111/j.1399-3054.2007.00977.x ; PMID: 18251883
- Identification of regulatory pathways controlling gene expression of stress-responsive mitochondrial proteins in Arabidopsis. DOI: 10.1104/pp.108.121384 ; PMID: 18567827
- Global analysis of Arabidopsis gene expression uncovers a complex array of changes impacting pathogen response and cell cycle during geminivirus infection. DOI: 10.1104/pp.108.121038 ; PMID: 18650403
- WRR4 encodes a TIR-NB-LRR protein that confers broad-spectrum white rust resistance in Arabidopsis thaliana to four physiological races of Albugo candida. DOI: 10.1094/MPMI-21-6-0757 ; PMID: 18624640
- Chloroplast signaling and LESION SIMULATING DISEASE1 regulate crosstalk between light acclimation and immunity in Arabidopsis. DOI: 10.1105/tpc.108.059618 ; PMID: 18790826
- The genetic network controlling the Arabidopsis transcriptional response to Pseudomonas syringae pv. maculicola: roles of major regulators and the phytotoxin coronatine. DOI: 10.1094/MPMI-21-11-1408 ; PMID: 18842091
- Arabidopsis thaliana genes encoding defense signaling and recognition proteins exhibit contrasting evolutionary dynamics. DOI: 10.1534/genetics.108.097279 ; PMID: 19064707
- Nitric oxide modulates ozone-induced cell death, hormone biosynthesis and gene expression in Arabidopsis thaliana. DOI: 10.1111/j.1365-313X.2008.03756.x ; PMID: 19054359
- Ca(2+)/calmodulin regulates salicylic-acid-mediated plant immunity. DOI: 10.1038/nature07612 ; PMID: 19122675
- Resistance to the Pseudomonas syringae effector HopA1 is governed by the TIR-NBS-LRR protein RPS6 and is enhanced by mutations in SRFR1. DOI: 10.1104/pp.109.139238 ; PMID: 19525323
- Overexpression of wound-responsive RNA-binding proteins induces leaf senescence and hypersensitive-like cell death. DOI: 10.1111/j.1469-8137.2008.02557.x ; PMID: 18705666
- Activation tagging of ADR2 conveys a spreading lesion phenotype and resistance to biotrophic pathogens. DOI: 10.1111/j.1469-8137.2009.02902.x ; PMID: 19549129
- Forward and reverse genetics to identify genes involved in the age-related resistance response in Arabidopsis thaliana. DOI: 10.1111/j.1364-3703.2009.00557.x ; PMID: 19694953
- An F-box gene, CPR30, functions as a negative regulator of the defense response in Arabidopsis. DOI: 10.1111/j.1365-313X.2009.03995.x ; PMID: 19682297
- A lesion-mimic syntaxin double mutant in Arabidopsis reveals novel complexity of pathogen defense signaling. DOI: 10.1093/mp/ssn011 ; PMID: 19825557
- Salicylic acid antagonism of EDS1-driven cell death is important for immune and oxidative stress responses in Arabidopsis. DOI: 10.1111/j.1365-313X.2010.04178.x ; PMID: 20163553
- The Arabidopsis LSD1 gene plays an important role in the regulation of low temperature-dependent cell death. DOI: 10.1111/j.1469-8137.2010.03275.x ; PMID: 20456049
- WRR4, a broad-spectrum TIR-NB-LRR gene from Arabidopsis thaliana that confers white rust resistance in transgenic oilseed Brassica crops. DOI: 10.1111/j.1364-3703.2009.00599.x ; PMID: 20447277
- A mutant CHS3 protein with TIR-NB-LRR-LIM domains modulates growth, cell death and freezing tolerance in a temperature-dependent manner in Arabidopsis. DOI: 10.1111/j.1365-313X.2010.04241.x ; PMID: 20444230
- The Pseudomonas syringae effector protein HopZ1a suppresses effector-triggered immunity. DOI: 10.1111/j.1469-8137.2010.03381.x ; PMID: 20636323
- Balanced nuclear and cytoplasmic activities of EDS1 are required for a complete plant innate immune response. DOI: 10.1371/journal.ppat.1000970 ; PMID: 20617163
- A gain-of-function mutation in the Arabidopsis disease resistance gene RPP4 confers sensitivity to low temperature. DOI: 10.1104/pp.110.157610 ; PMID: 20699401
- Enhanced disease susceptibility 1 and salicylic acid act redundantly to regulate resistance gene-mediated signaling. DOI: 10.1371/journal.pgen.1000545 ; PMID: 19578402
- Low oleic acid-derived repression of jasmonic acid-inducible defense responses requires the WRKY50 and WRKY51 proteins. DOI: 10.1104/pp.110.166876 ; PMID: 21030507
- Transcriptional reprogramming regulated by WRKY18 and WRKY40 facilitates powdery mildew infection of Arabidopsis. DOI: 10.1111/j.1365-313X.2010.04387.x ; PMID: 21143673
- Nucleoporin MOS7/Nup88 contributes to plant immunity and nuclear accumulation of defense regulators. DOI: 10.4161/nucl.1.4.12109 ; PMID: 21327081
- Interfamily transfer of tomato Ve1 mediates Verticillium resistance in Arabidopsis. DOI: 10.1104/pp.111.180067 ; PMID: 21617027
- CBP60g and SARD1 play partially redundant critical roles in salicylic acid signaling. DOI: 10.1111/j.1365-313X.2011.04655.x ; PMID: 21615571
- The Arabidopsis glucosyltransferase UGT76B1 conjugates isoleucic acid and modulates plant defense and senescence. DOI: 10.1105/tpc.111.088443 ; PMID: 22080599
- Glycolate oxidase modulates reactive oxygen species-mediated signal transduction during nonhost resistance in Nicotiana benthamiana and Arabidopsis. DOI: 10.1105/tpc.111.093245 ; PMID: 22286136
- In search of function for hypothetical proteins encoded by genes of SA-JA pathways in Oryza sativa by in silico comparison and structural modeling. DOI: 10.6026/97320630008001 ; PMID: 22359427
- EDS1 contributes to nonhost resistance of Arabidopsis thaliana against Erwinia amylovora. DOI: 10.1094/MPMI-05-11-0111 ; PMID: 22316300
- Non-host defense response in a novel Arabidopsis-Xanthomonas citri subsp. citri pathosystem. DOI: 10.1371/journal.pone.0031130 ; PMID: 22299054
- Putative members of the Arabidopsis Nup107-160 nuclear pore sub-complex contribute to pathogen defense. DOI: 10.1111/j.1365-313X.2012.04928.x ; PMID: 22288649
- Dissecting phosphite-induced priming in Arabidopsis infected with Hyaloperonospora arabidopsidis. DOI: 10.1104/pp.112.194647 ; PMID: 22408091
- Nucleoporins Nup160 and Seh1 are required for disease resistance in Arabidopsis. DOI: 10.4161/psb.21426 ; PMID: 22902705
- The ammonium/nitrate ratio is an input signal in the temperature-modulated, SNC1-mediated and EDS1-dependent autoimmunity of nudt6-2 nudt7. DOI: 10.1111/tpj.12032 ; PMID: 23004358
- Metabolic and transcriptomic changes induced in Arabidopsis by the rhizobacterium Pseudomonas fluorescens SS101. DOI: 10.1104/pp.112.207324 ; PMID: 23073694
- Signalling of Arabidopsis thaliana response to Pieris brassicae eggs shares similarities with PAMP-triggered immunity. DOI: 10.1093/jxb/ers362 ; PMID: 23264520
- Chemical genetics reveals negative regulation of abscisic acid signaling by a plant immune response pathway. DOI: 10.1016/j.cub.2011.04.045 ; PMID: 21620700
- A TIR-NBS protein encoded by Arabidopsis Chilling Sensitive 1 (CHS1) limits chloroplast damage and cell death at low temperature. DOI: 10.1111/tpj.12219 ; PMID: 23617639
- Analyses of wrky18 wrky40 plants reveal critical roles of SA/EDS1 signaling and indole-glucosinolate biosynthesis for Golovinomyces orontii resistance and a loss-of resistance towards Pseudomonas syringae pv. tomato AvrRPS4. DOI: 10.1094/MPMI-11-12-0265-R ; PMID: 23617415
- Feeding by whiteflies suppresses downstream jasmonic acid signaling by eliciting salicylic acid signaling. DOI: 10.1007/s10886-013-0283-2 ; PMID: 23604702
- A missense mutation in CHS1, a TIR-NB protein, induces chilling sensitivity in Arabidopsis. DOI: 10.1111/tpj.12232 ; PMID: 23651299
- Genetic requirements for signaling from an autoactive plant NB-LRR intracellular innate immune receptor. DOI: 10.1371/journal.pgen.1003465 ; PMID: 23633962
- Salicylic acid 3-hydroxylase regulates Arabidopsis leaf longevity by mediating salicylic acid catabolism. DOI: 10.1073/pnas.1302702110 ; PMID: 23959884
- Arabidopsis poly(A) polymerase PAPS1 limits founder-cell recruitment to organ primordia and suppresses the salicylic acid-independent immune response downstream of EDS1/PAD4. DOI: 10.1111/tpj.12421 ; PMID: 24372773
- Arabidopsis TNL-WRKY domain receptor RRS1 contributes to temperature-conditioned RPS4 auto-immunity. DOI: 10.3389/fpls.2013.00403 ; PMID: 24146667
- Constitutive salicylic acid accumulation in pi4kIIIβ1β2 Arabidopsis plants stunts rosette but not root growth. DOI: 10.1111/nph.12822 ; PMID: 24758581
- Requirement for pectin methyl esterase and preference for fragmented over native pectins for wall-associated kinase-activated, EDS1/PAD4-dependent stress response in Arabidopsis. DOI: 10.1074/jbc.M114.567545 ; PMID: 24855660
- The Cysteine2/Histidine2-Type Transcription Factor ZINC FINGER OF ARABIDOPSIS THALIANA6 Modulates Biotic and Abiotic Stress Responses by Activating Salicylic Acid-Related Genes and C-REPEAT-BINDING FACTOR Genes in Arabidopsis. DOI: 10.1104/pp.114.242404 ; PMID: 24834923
- The synthetic cationic lipid diC14 activates a sector of the Arabidopsis defence network requiring endogenous signalling components. DOI: 10.1111/mpp.12252 ; PMID: 25727690
- The Combined Action of ENHANCED DISEASE SUSCEPTIBILITY1, PHYTOALEXIN DEFICIENT4, and SENESCENCE-ASSOCIATED101 Promotes Salicylic Acid-Mediated Defenses to Limit Fusarium graminearum Infection in Arabidopsis thaliana. DOI: 10.1094/MPMI-04-15-0079-R ; PMID: 25915452
- LSD1 and HY5 antagonistically regulate red light induced-programmed cell death in Arabidopsis. DOI: 10.3389/fpls.2015.00292 ; PMID: 25999965
- β-cyclocitral upregulates salicylic acid signalling to enhance excess light acclimation in Arabidopsis. DOI: 10.1093/jxb/erv231 ; PMID: 25998906
- Spatial and temporal regulation of biosynthesis of the plant immune signal salicylic acid. DOI: 10.1073/pnas.1511182112 ; PMID: 26139525
- and Humidity-Dependent Autoimmunity in Arabidopsis. DOI: 10.1094/MPMI-07-15-0146-R ; PMID: 26505534
- A genetic framework for H2O2 induced cell death in Arabidopsis thaliana. DOI: 10.1186/s12864-015-1964-8 ; PMID: 26493993
- Characterization of the interaction between Oidium heveae and Arabidopsis thaliana. DOI: 10.1111/mpp.12363 ; PMID: 26724785
- Rutin-Mediated Priming of Plant Resistance to Three Bacterial Pathogens Initiating the Early SA Signal Pathway. DOI: 10.1371/journal.pone.0146910 ; PMID: 26751786
- Mutation of the Glucosinolate Biosynthesis Enzyme Cytochrome P450 83A1 Monooxygenase Increases Camalexin Accumulation and Powdery Mildew Resistance. DOI: 10.3389/fpls.2016.00227 ; PMID: 26973671
- Phylogeny of Plant CAMTAs and Role of AtCAMTAs in Nonhost Resistance to Xanthomonas oryzae pv. oryzae. DOI: 10.3389/fpls.2016.00177 ; PMID: 26973658
- Transgenic Arabidopsis thaliana containing increased levels of ATP and sucrose is more susceptible to Pseudomonas syringae. DOI: 10.1371/journal.pone.0171040 ; PMID: 28152090
- Different Cold-Signaling Pathways Function in the Responses to Rapid and Gradual Decreases in Temperature. DOI: 10.1105/tpc.16.00669 ; PMID: 28351986
- Both Light-Induced SA Accumulation and ETI Mediators Contribute to the Cell Death Regulated by BAK1 and BKK1. DOI: 10.3389/fpls.2017.00622 ; PMID: 28487714
- Leaf shedding as an anti-bacterial defense in Arabidopsis cauline leaves. DOI: 10.1371/journal.pgen.1007132 ; PMID: 29253890
- Modulation of Plant Salicylic Acid-Associated Immune Responses via Glycosylation of Dihydroxybenzoic Acids. DOI: 10.1104/pp.17.01530 ; PMID: 29483147
- Antagonism of Transcription Factor MYC2 by EDS1/PAD4 Complexes Bolsters Salicylic Acid Defense in Arabidopsis Effector-Triggered Immunity. DOI: 10.1016/j.molp.2018.05.007 ; PMID: 29842929
- Chemical Activation of EDS1/PAD4 Signaling Leading to Pathogen Resistance in Arabidopsis. DOI: 10.1093/pcp/pcy106 ; PMID: 29931201
- and SA-independent basal resistance against adapted powdery mildew. DOI: 10.1093/jxb/ery146 ; PMID: 29912376
- MKK6 Functions in Two Parallel MAP Kinase Cascades in Immune Signaling. DOI: 10.1104/pp.18.00592 ; PMID: 30185442
- LUX ARRHYTHMO mediates crosstalk between the circadian clock and defense in Arabidopsis. DOI: 10.1038/s41467-019-10485-6 ; PMID: 31186426
- DELLA and EDS1 Form a Feedback Regulatory Module to Fine-Tune Plant Growth-Defense Tradeoff in Arabidopsis. DOI: 10.1016/j.molp.2019.07.006 ; PMID: 31382023
- Arabidopsis DXO1 possesses deNADding and exonuclease activities and its mutation affects defense-related and photosynthetic gene expression. DOI: 10.1111/jipb.12867 ; PMID: 31449356
- Arabidopsis EDR1 Protein Kinase Regulates the Association of EDS1 and PAD4 to Inhibit Cell Death. DOI: 10.1094/MPMI-12-19-0339-R ; PMID: 31876224
- Pathogen-Associated Molecular Pattern-Triggered Immunity Involves Proteolytic Degradation of Core Nonsense-Mediated mRNA Decay Factors During the Early Defense Response. DOI: 10.1105/tpc.19.00631 ; PMID: 32086363
- De novo indol-3-ylmethyl glucosinolate biosynthesis, and not long-distance transport, contributes to defence of Arabidopsis against powdery mildew. DOI: 10.1111/pce.13766 ; PMID: 32275065
- Putrescine elicits ROS-dependent activation of the salicylic acid pathway in Arabidopsis thaliana. DOI: 10.1111/pce.13874 ; PMID: 32839979
- RIN13-mediated disease resistance depends on the SNC1-EDS1/PAD4 signaling pathway in Arabidopsis. DOI: 10.1093/jxb/eraa433 ; PMID: 32937656
- Distinct Molecular Pattern-Induced Calcium Signatures Lead to Different Downstream Transcriptional Regulations via AtSR1/CAMTA3. DOI: 10.3390/ijms21218163 ; PMID: 33142885
- A mis-regulated cyclic nucleotide-gated channel mediates cytosolic calcium elevation and activates immunity in Arabidopsis. DOI: 10.1111/nph.17218 ; PMID: 33469907
- A new insight into the contribution of putrescine to defense in Arabidopsis thaliana. DOI: 10.1080/15592324.2021.1885187 ; PMID: 33576705
- Opposing functions of the plant TOPLESS gene family during SNC1-mediated autoimmunity. DOI: 10.1371/journal.pgen.1009026 ; PMID: 33621240
- Bacterial effector targeting of a plant iron sensor facilitates iron acquisition and pathogen colonization. DOI: 10.1093/plcell/koab075 ; PMID: 33751120
- EDS1-interacting J protein 1 is an essential negative regulator of plant innate immunity in Arabidopsis. DOI: 10.1093/plcell/koaa007 ; PMID: 33751092
- A novel allele of the Arabidopsis thaliana MACPF protein CAD1 results in deregulated immune signaling. DOI: 10.1093/genetics/iyab022 ; PMID: 33779749
- Arabidopsis CBP60b is a central transcriptional activator of immunity. DOI: 10.1093/plphys/kiab164 ; PMID: 33848345
- The immune components ENHANCED DISEASE SUSCEPTIBILITY 1 and PHYTOALEXIN DEFICIENT 4 are required for cell death caused by overaccumulation of ceramides in Arabidopsis. DOI: 10.1111/tpj.15393 ; PMID: 34180563
- The EDS1-PAD4-ADR1 node mediates Arabidopsis pattern-triggered immunity. DOI: 10.1038/s41586-021-03829-0 ; PMID: 34497423
- The kinase CIPK14 functions as a negative regulator of plant immune responses to Pseudomonas syringae in Arabidopsis. DOI: 10.1016/j.plantsci.2021.111017 ; PMID: 34620426
- Arabidopsis CALMODULIN-BINDING PROTEIN 60b plays dual roles in plant immunity. DOI: 10.1016/j.xplc.2021.100213 ; PMID: 34778745
- The Mechanosensitive Ion Channel MSL10 Modulates Susceptibility to Pseudomonas syringae in Arabidopsis thaliana. DOI: 10.1094/MPMI-08-21-0207-FI ; PMID: 34775835
- MPK3 and MPK6 control salicylic acid signaling by up-regulating NLR receptors and effector-triggered immunity. DOI: 10.1093/jxb/erab544 ; PMID: 35032388
- Cold Exposure Memory Reduces Pathogen Susceptibility in Arabidopsis Based on a Functional Plastid Peroxidase System. DOI: 10.1094/MPMI-11-21-0283-FI ; PMID: 35345887
- The Two Classes of Ceramide Synthases Play Different Roles in Plant Immunity and Cell Death. DOI: 10.3389/fpls.2022.824585 ; PMID: 35463421
- Activation of NLR-Mediated Autoimmunity in Arabidopsis Early in Short Days 4 Mutant. DOI: 10.3389/fpls.2022.881212 ; PMID: 35693184
- Overexpression of the Arabidopsis MACPF Protein AtMACP2 Promotes Pathogen Resistance by Activating SA Signaling. DOI: 10.3390/ijms23158784 ; PMID: 35955922
- AIG2A and AIG2B limit the activation of salicylic acid-regulated defenses by tryptophan-derived secondary metabolism in Arabidopsis. DOI: 10.1093/plcell/koac255 ; PMID: 35972413
- Coordinated regulation of plant defense and autoimmunity by paired trihelix transcription factors ASR3/AITF1 in Arabidopsis. DOI: 10.1111/nph.18562 ; PMID: 36266950
- Hydathode immunity protects the Arabidopsis leaf vasculature against colonization by bacterial pathogens. DOI: 10.1016/j.cub.2023.01.013 ; PMID: 36731466
- Broader functions of TIR domains in Arabidopsis immunity. DOI: 10.1073/pnas.2220921120 ; PMID: 36893276
- Overexpressing Ribosomal Protein L16D Affects Leaf Development but Confers Pathogen Resistance in Arabidopsis. DOI: 10.3390/ijms24119479 ; PMID: 37298429
- Arabidopsis Topless-related 1 mitigates physiological damage and growth penalties of induced immunity. DOI: 10.1111/nph.19054 ; PMID: 37306028
- Interaction between SGT1 and cytosolic/nuclear HSC70 chaperones regulates Arabidopsis immune responses. DOI: 10.1105/tpc.107.051896 ; PMID: 18065690
- Interaction between SGT1 and cytosolic/nuclear HSC70 chaperones regulates Arabidopsis immune responses. DOI: 10.1105/tpc.107.051896 ; PMID: 18065690
- Analysis of protein complexes in Arabidopsis leaves using size exclusion chromatography and label-free protein correlation profiling. DOI: 10.1016/j.jprot.2017.06.004 ; PMID: 28627464
Sequences:
cDNA Sequence
- >AT3G48090.1
CTGCGAAATCCCAACCGAGAGTGACATCTCAAACCAAAAGATGGAGTCTATATTAAAGAGACGAAGACTCCAAAGTCAAGCTACAAAATTTCCAAGCAAAGATTACACAGAGAAAACTTTCCGACCAAATGTGAATGTTTATGAAAGTTTCTGCGAAACTCCAGTCATGTCGGATGTACAAAGCCATACACCAATGTAAAACCGACACGTGGAAAGCTAAGATTCCTAGCTTTTCTTTCTTCATGAGTCTCCAATAGCCAAAGAGTCAACTCCAAAAAAAAAAACCCATTTTTGCATTGAAATGGTCTCATGATGGGGTATTTTGGGTAACTAATTAGTCCTGTCTACATCTTCCCATAAATTAACAGAGTAGGAGCGGATTAAAGAAGCAAGACGATTCAAAAGAAAAAAGAGAGAAGAAAGTCCACTAAAGAAAAGAGAATAGATATAGATCAATGGCGTTTGAAGCTCTTACCGGAATCAATGGTGATCTAATCACCAGATCATGGTCAGCCTCGAAGCAAGCTTACCTAACCGAGCGCTATCACAAGGAAGAAGCAGGAGCAGTCGTAATCTTCGCTTTCCAACCATCTTTCTCAGAGAAAGATTTCTTCGATCCGGACAATAAATCTTCCTTTGGAGAAATCAAGTTGAACCGTGTTCAGTTTCCTTGTATGAGGAAAATCGGTAAAGGTGATGTAGCTACTGTTAACGAAGCTTTCCTCAAGAATCTTGAAGCTATCATTGATCCAAGAACCTCATTTCAAGCTTCTGTGGAAATGGCTGTGAGGAGTAGAAAACAGATAGTGTTCACAGGACATTCCTCAGGAGGTGCAACTGCAATCTTAGCAACAGTTTGGTATTTGGAGAAATACTTCATACGCAATCCAAATGTTTACCTTGAGCCTCGTTGTGTGACATTTGGAGCTCCTTTGGTTGGTGACTCTATCTTCAGTCACGCACTTGGGAGAGAAAAATGGAGCCGGTTCTTTGTGAACTTTGTCTCAAGATTCGATATTGTCCCTCGGATTATGCTTGCTCGAAAGGCGTCTGTAGAGGAAACTTTGCCTCATGTTCTTGCCCAATTGGATCCCAGAAAGTCTTCCGTCCAAGAGAGTGAACAGAGAATAACAGAGTTTTACACAAGGGTGATGCGAGACACATCAACTGTTGCAAACCAAGCTGTTTGTGAATTGACTGGAAGCGCAGAGGCGTTTTTAGAGACCCTTTCTAGTTTCCTTGAGCTAAGTCCTTATAGACCCGCCGGTACTTTTGTTTTCTCTACAGAGAAGAGATTGGTTGCAGTGAACAACTCGGACGCCATTCTTCAAATGCTGTTTTACACTTCTCAAGCCAGCGATGAACAAGAATGGTCTCTAATTCCATTTCGAAGTATCAGAGATCATCATAGCTATGAGGAACTGGTACAGTCGATGGGAAAGAAGTTGTTTAATCATTTGGATGGAGAAAACTCAATAGAGTCTACGCTCAATGACCTTGGAGTGAGCACAAGAGGCAGACAGTACGTTCAAGCTGCATTAGAGGAAGAGAAGAAACGAGTAGAGAATCAGAAGAAGATTATTCAGGTGATCGAGCAAGAGAGGTTTTTAAAGAAACTAGCATGGATAGAAGATGAATACAAGCCAAAGTGTCAAGCCCATAAAAATGGGTATTATGATTCCTTCAAAGTTTCAAATGAAGAGAATGACTTCAAAGCAAACGTCAAGAGAGCTGAGTTAGCCGGTGTTTTTGACGAGGTGCTTGGTTTAATGAAGAAATGTCAACTTCCAGATGAGTTCGAAGGGGACATAGATTGGATCAAGTTAGCAACTCGATACCGCAGATTAGTTGAGCCTCTTGATATTGCAAACTACCATCGACATTTAAAGAACGAAGACACAGGGCCGTACATGAAAAGAGGAAGACCAACCCGCTACATATATGCTCAGAGAGGCTACGAACATTATATACTGAAGCCAAACGGAATGATTGCAGAAGATGTATTTTGGAACAAGGTAAATGGTCTTAACTTAGGGTTACAGCTAGAAGAAATTCAAGAGACTCTAAAGAATTCGGGATCCGAGTGCGGATCATGCTTTTGGGCTGAGGTTGAAGAACTCAAAGGAAAGCCATACGAGGAAGTTGAGGTAAGAGTTAAGACATTAGAAGGGATGCTTGGAGAATGGATCACAGACGGGGAGGTAGATGATAAGGAAATATTTCTGGAGGGTTCAACGTTTAGAAAGTGGTGGATTACGCTTCCCAAAAATCACAAATCGCATTCTCCTCTGCGAGACTATATGATGGATGAAATAACAGATACCTGAACCTTAGGTGGTGGAGTATTTAAGCTATTAGAACACTTGCTTCTCTTAATTTGTGCAATAAGAAATGTTTATCAATCTGGTTTCCACTTCATGATGATCTTAGAATAAGAAACATGTTGTATGATCATTGTGAAGTAATGTAATAGCTCTCTATTCTAATGTCAAATTTGGTTTCCACTTTACAGTGATCTTAGAATATATACGTTACTCTACTAAAGCCTAAA - >AT3G48090.2
CTGCGAAATCCCAACCGAGAGTGACATCTCAAACCAAAAGATGGAGTCTATATTAAAGAGACGAAGACTCCAAAGTCAAGCTACAAAATTTCCAAGCAAAGATTACACAGAGAAAACTTTCCGACCAAATGTGAATGTTTATGAAAGTTTCTGCGAAACTCCAGTCATGTCGGATGTACAAAGCCATACACCAATGTAAAACCGACACGTGGAAAGCTAAGATTCCTAGCTTTTCTTTCTTCATGAGTCTCCAATAGCCAAAGAGTCAACTCCAAAAAAAAAAACCCATTTTTGCATTGAAATGGTCTCATGATGGGGTATTTTGGGTAACTAATTAGTCCTGTCTACATCTTCCCATAAATTAACAGAGTAGGAGCGGATTAAAGAAGCAAGACGATTCAAAAGAAAAAAGAGAGAAGAAAGTCCACTAAAGAAAAGAGAATAGATATAGATCAATGGCGTTTGAAGCTCTTACCGGAATCAATGGTGATCTAATCACCAGATCATGGTCAGCCTCGAAGCAAGCTTACCTAACCGAGCGCTATCACAAGGAAGAAGCAGGAGCAGTCGTAATCTTCGCTTTCCAACCATCTTTCTCAGAGAAAGATTTCTTCGATCCGGACAATAAATCTTCCTTTGGAGAAATCAAGTTGAACCGTGTTCAGTTTCCTTGTATGAGGAAAATCGGTAAAGGTGATGTAGCTACTGTTAACGAAGCTTTCCTCAAGAATCTTGAAGCTATCATTGATCCAAGAACCTCATTTCAAGCTTCTGTGGAAATGGCTGTGAGGAGTAGAAAACAGATAGTGTTCACAGGACATTCCTCAGGAGGTGCAACTGCAATCTTAGCAACAGTTTGGTATTTGGAGAAATACTTCATACGCAATCCAAATGTTTACCTTGAGCCTCGTTGTGTGACATTTGGAGCTCCTTTGGTTGGTGACTCTATCTTCAGTCACGCACTTGGGAGAGAAAAATGGAGCCGGTTCTTTGTGAACTTTGTCTCAAGATTCGATATTGTCCCTCGGATTATGCTTGCTCGAAAGGCGTCTGTAGAGGAAACTTTGCCTCATGTTCTTGCCCAATTGGATCCCAGAAAGTCTTCCGTCCAAGAGAGTGAACAGAGAATAACAGAGTTTTACACAAGGGTGATGCGAGACACATCAACTGTTGCAAACCAAGCTGTTTGTGAATTGACTGGAAGCGCAGAGGCGTTTTTAGAGACCCTTTCTAGTTTCCTTGAGCTAAGTCCTTATAGACCCGCCGGTACTTTTGTTTTCTCTACAGAGAAGAGATTGGTTGCAGTGAACAACTCGGACGCCATTCTTCAAATGCTGTTTTACACTTCTCAAGCCAGCGATGAACAAGAATGGTCTCTAATTCCATTTCGAAGTATCAGAGATCATCATAGCTATGAGGAACTGGTACAGTCGATGGGAAAGAAGTTGTTTAATCATTTGGATGGAGAAAACTCAATAGAGTCTACGCTCAATGACCTTGGAGTGAGCACAAGAGGCAGACAGTACGTTCAAGCTGCATTAGAGGAAGAGAAGAAACGAGTAGAGAATCAGAAGAAGATTATTCAGGTGATCGAGCAAGAGAGGTTTTTAAAGAAACTAGCATGGATAGAAGATGAATACAAGCCAAAGTGTCAAGCCCATAAAAATGGGTATTATGATTCCTTCAAAGTTTCAAATGAAGAGAATGACTTCAAAGCAAACGTCAAGAGAGCTGAGTTAGCCGGTGTTTTTGACGAGGTGCTTGGTTTAATGAAGAAATGTCAACTTCCAGATGAGTTCGAAGGGGACATAGATTGGATCAAGTTAGCAACTCGATACCGCAGATTAGTTGAGCCTCTTGATATTGCAAACTACCATCGACATTTAAAGAACGAAGACACAGGGCCGTACATGAAAAGAGGAAGACCAACCCGCTACATATATGCTCAGAGAGGCTACGAACATTATATACTGAAGCCAAACGGAATGATTGCAGAAGATGTATTTTGGAACAAGGTAAATGGTCTTAACTTAGGGTTACAGCTAGAAGAAATTCAAGAGACTCTAAAGAATTCGGGATCCGAGTGCGGATCATGCTTTTGGGCTGAGGTTGAAGAACTCAAAGGAAAGCCATACGAGGAAGTTGAGGTAAGAGTTAAGACATTAGAAGGGATGCTTGGAGAATGGATCACAGACGGGGAGGTAGATGATAAGGAAATATTTCTGGAGGGTTCAACGTTTAGAAAGTGGTGGATTACGCTTCCCAAAAATCACAAATCGCATTCTCCTCTGCGAGACTATATGATGGATGAAATAACAGATACCTGAACCTTAGGTGGTGGAGTATTTAAGCTATTAGAACACTTGCTTCTCTTAATTTGTGCAATAAGAAATGTTTATCAATCTGGTTTCCACTTCATGATGATCTTAGAATAAGAAACATGTTGTATGATCATTGTGAAGTAATGTAATAGCTCTCTATTCTAATGTCAAATTTGGTTTCCACTTTACAGTGATCTTAGAATATATACGTTACTCTACTAAAGCCTAAA
CDS Sequence
- >AT3G48090.1
ATGGCGTTTGAAGCTCTTACCGGAATCAATGGTGATCTAATCACCAGATCATGGTCAGCCTCGAAGCAAGCTTACCTAACCGAGCGCTATCACAAGGAAGAAGCAGGAGCAGTCGTAATCTTCGCTTTCCAACCATCTTTCTCAGAGAAAGATTTCTTCGATCCGGACAATAAATCTTCCTTTGGAGAAATCAAGTTGAACCGTGTTCAGTTTCCTTGTATGAGGAAAATCGGTAAAGGTGATGTAGCTACTGTTAACGAAGCTTTCCTCAAGAATCTTGAAGCTATCATTGATCCAAGAACCTCATTTCAAGCTTCTGTGGAAATGGCTGTGAGGAGTAGAAAACAGATAGTGTTCACAGGACATTCCTCAGGAGGTGCAACTGCAATCTTAGCAACAGTTTGGTATTTGGAGAAATACTTCATACGCAATCCAAATGTTTACCTTGAGCCTCGTTGTGTGACATTTGGAGCTCCTTTGGTTGGTGACTCTATCTTCAGTCACGCACTTGGGAGAGAAAAATGGAGCCGGTTCTTTGTGAACTTTGTCTCAAGATTCGATATTGTCCCTCGGATTATGCTTGCTCGAAAGGCGTCTGTAGAGGAAACTTTGCCTCATGTTCTTGCCCAATTGGATCCCAGAAAGTCTTCCGTCCAAGAGAGTGAACAGAGAATAACAGAGTTTTACACAAGGGTGATGCGAGACACATCAACTGTTGCAAACCAAGCTGTTTGTGAATTGACTGGAAGCGCAGAGGCGTTTTTAGAGACCCTTTCTAGTTTCCTTGAGCTAAGTCCTTATAGACCCGCCGGTACTTTTGTTTTCTCTACAGAGAAGAGATTGGTTGCAGTGAACAACTCGGACGCCATTCTTCAAATGCTGTTTTACACTTCTCAAGCCAGCGATGAACAAGAATGGTCTCTAATTCCATTTCGAAGTATCAGAGATCATCATAGCTATGAGGAACTGGTACAGTCGATGGGAAAGAAGTTGTTTAATCATTTGGATGGAGAAAACTCAATAGAGTCTACGCTCAATGACCTTGGAGTGAGCACAAGAGGCAGACAGTACGTTCAAGCTGCATTAGAGGAAGAGAAGAAACGAGTAGAGAATCAGAAGAAGATTATTCAGGTGATCGAGCAAGAGAGGTTTTTAAAGAAACTAGCATGGATAGAAGATGAATACAAGCCAAAGTGTCAAGCCCATAAAAATGGGTATTATGATTCCTTCAAAGTTTCAAATGAAGAGAATGACTTCAAAGCAAACGTCAAGAGAGCTGAGTTAGCCGGTGTTTTTGACGAGGTGCTTGGTTTAATGAAGAAATGTCAACTTCCAGATGAGTTCGAAGGGGACATAGATTGGATCAAGTTAGCAACTCGATACCGCAGATTAGTTGAGCCTCTTGATATTGCAAACTACCATCGACATTTAAAGAACGAAGACACAGGGCCGTACATGAAAAGAGGAAGACCAACCCGCTACATATATGCTCAGAGAGGCTACGAACATTATATACTGAAGCCAAACGGAATGATTGCAGAAGATGTATTTTGGAACAAGGTAAATGGTCTTAACTTAGGGTTACAGCTAGAAGAAATTCAAGAGACTCTAAAGAATTCGGGATCCGAGTGCGGATCATGCTTTTGGGCTGAGGTTGAAGAACTCAAAGGAAAGCCATACGAGGAAGTTGAGGTAAGAGTTAAGACATTAGAAGGGATGCTTGGAGAATGGATCACAGACGGGGAGGTAGATGATAAGGAAATATTTCTGGAGGGTTCAACGTTTAGAAAGTGGTGGATTACGCTTCCCAAAAATCACAAATCGCATTCTCCTCTGCGAGACTATATGATGGATGAAATAACAGATACCTGA - >AT3G48090.2
ATGGCGTTTGAAGCTCTTACCGGAATCAATGGTGATCTAATCACCAGATCATGGTCAGCCTCGAAGCAAGCTTACCTAACCGAGCGCTATCACAAGGAAGAAGCAGGAGCAGTCGTAATCTTCGCTTTCCAACCATCTTTCTCAGAGAAAGATTTCTTCGATCCGGACAATAAATCTTCCTTTGGAGAAATCAAGTTGAACCGTGTTCAGTTTCCTTGTATGAGGAAAATCGGTAAAGGTGATGTAGCTACTGTTAACGAAGCTTTCCTCAAGAATCTTGAAGCTATCATTGATCCAAGAACCTCATTTCAAGCTTCTGTGGAAATGGCTGTGAGGAGTAGAAAACAGATAGTGTTCACAGGACATTCCTCAGGAGGTGCAACTGCAATCTTAGCAACAGTTTGGTATTTGGAGAAATACTTCATACGCAATCCAAATGTTTACCTTGAGCCTCGTTGTGTGACATTTGGAGCTCCTTTGGTTGGTGACTCTATCTTCAGTCACGCACTTGGGAGAGAAAAATGGAGCCGGTTCTTTGTGAACTTTGTCTCAAGATTCGATATTGTCCCTCGGATTATGCTTGCTCGAAAGGCGTCTGTAGAGGAAACTTTGCCTCATGTTCTTGCCCAATTGGATCCCAGAAAGTCTTCCGTCCAAGAGAGTGAACAGAGAATAACAGAGTTTTACACAAGGGTGATGCGAGACACATCAACTGTTGCAAACCAAGCTGTTTGTGAATTGACTGGAAGCGCAGAGGCGTTTTTAGAGACCCTTTCTAGTTTCCTTGAGCTAAGTCCTTATAGACCCGCCGGTACTTTTGTTTTCTCTACAGAGAAGAGATTGGTTGCAGTGAACAACTCGGACGCCATTCTTCAAATGCTGTTTTACACTTCTCAAGCCAGCGATGAACAAGAATGGTCTCTAATTCCATTTCGAAGTATCAGAGATCATCATAGCTATGAGGAACTGGTACAGTCGATGGGAAAGAAGTTGTTTAATCATTTGGATGGAGAAAACTCAATAGAGTCTACGCTCAATGACCTTGGAGTGAGCACAAGAGGCAGACAGTACGTTCAAGCTGCATTAGAGGAAGAGAAGAAACGAGTAGAGAATCAGAAGAAGATTATTCAGGTGATCGAGCAAGAGAGGTTTTTAAAGAAACTAGCATGGATAGAAGATGAATACAAGCCAAAGTGTCAAGCCCATAAAAATGGGTATTATGATTCCTTCAAAGTTTCAAATGAAGAGAATGACTTCAAAGCAAACGTCAAGAGAGCTGAGTTAGCCGGTGTTTTTGACGAGGTGCTTGGTTTAATGAAGAAATGTCAACTTCCAGATGAGTTCGAAGGGGACATAGATTGGATCAAGTTAGCAACTCGATACCGCAGATTAGTTGAGCCTCTTGATATTGCAAACTACCATCGACATTTAAAGAACGAAGACACAGGGCCGTACATGAAAAGAGGAAGACCAACCCGCTACATATATGCTCAGAGAGGCTACGAACATTATATACTGAAGCCAAACGGAATGATTGCAGAAGATGTATTTTGGAACAAGGTAAATGGTCTTAACTTAGGGTTACAGCTAGAAGAAATTCAAGAGACTCTAAAGAATTCGGGATCCGAGTGCGGATCATGCTTTTGGGCTGAGGTTGAAGAACTCAAAGGAAAGCCATACGAGGAAGTTGAGGTAAGAGTTAAGACATTAGAAGGGATGCTTGGAGAATGGATCACAGACGGGGAGGTAGATGATAAGGAAATATTTCTGGAGGGTTCAACGTTTAGAAAGTGGTGGATTACGCTTCCCAAAAATCACAAATCGCATTCTCCTCTGCGAGACTATATGATGGATGAAATAACAGATACCTGA
Protein Sequence
- >AT3G48090.1
MAFEALTGINGDLITRSWSASKQAYLTERYHKEEAGAVVIFAFQPSFSEKDFFDPDNKSSFGEIKLNRVQFPCMRKIGKGDVATVNEAFLKNLEAIIDPRTSFQASVEMAVRSRKQIVFTGHSSGGATAILATVWYLEKYFIRNPNVYLEPRCVTFGAPLVGDSIFSHALGREKWSRFFVNFVSRFDIVPRIMLARKASVEETLPHVLAQLDPRKSSVQESEQRITEFYTRVMRDTSTVANQAVCELTGSAEAFLETLSSFLELSPYRPAGTFVFSTEKRLVAVNNSDAILQMLFYTSQASDEQEWSLIPFRSIRDHHSYEELVQSMGKKLFNHLDGENSIESTLNDLGVSTRGRQYVQAALEEEKKRVENQKKIIQVIEQERFLKKLAWIEDEYKPKCQAHKNGYYDSFKVSNEENDFKANVKRAELAGVFDEVLGLMKKCQLPDEFEGDIDWIKLATRYRRLVEPLDIANYHRHLKNEDTGPYMKRGRPTRYIYAQRGYEHYILKPNGMIAEDVFWNKVNGLNLGLQLEEIQETLKNSGSECGSCFWAEVEELKGKPYEEVEVRVKTLEGMLGEWITDGEVDDKEIFLEGSTFRKWWITLPKNHKSHSPLRDYMMDEITDT - >AT3G48090.2
MAFEALTGINGDLITRSWSASKQAYLTERYHKEEAGAVVIFAFQPSFSEKDFFDPDNKSSFGEIKLNRVQFPCMRKIGKGDVATVNEAFLKNLEAIIDPRTSFQASVEMAVRSRKQIVFTGHSSGGATAILATVWYLEKYFIRNPNVYLEPRCVTFGAPLVGDSIFSHALGREKWSRFFVNFVSRFDIVPRIMLARKASVEETLPHVLAQLDPRKSSVQESEQRITEFYTRVMRDTSTVANQAVCELTGSAEAFLETLSSFLELSPYRPAGTFVFSTEKRLVAVNNSDAILQMLFYTSQASDEQEWSLIPFRSIRDHHSYEELVQSMGKKLFNHLDGENSIESTLNDLGVSTRGRQYVQAALEEEKKRVENQKKIIQVIEQERFLKKLAWIEDEYKPKCQAHKNGYYDSFKVSNEENDFKANVKRAELAGVFDEVLGLMKKCQLPDEFEGDIDWIKLATRYRRLVEPLDIANYHRHLKNEDTGPYMKRGRPTRYIYAQRGYEHYILKPNGMIAEDVFWNKVNGLNLGLQLEEIQETLKNSGSECGSCFWAEVEELKGKPYEEVEVRVKTLEGMLGEWITDGEVDDKEIFLEGSTFRKWWITLPKNHKSHSPLRDYMMDEITDT