|
Basic Information
|
|
CGSNL Gene Symbol
|
CDPK13
|
|
Gene Symbol Synonym
|
OsCDPK13, OsCPK13, CPK13, OsCDPK7, CDPK7, OsCPK13-1, OsCPK13-2
|
|
CGSNL Gene Name
|
CALCIUM-DEPENDENT PROTEIN KINASE 13
|
|
Gene Name Synonym
|
calcium dependent protein kinase
|
|
Protein Name
|
CALCIUM-DEPENDENT PROTEIN KINASE 13
|
|
Allele
|
Oscpk13, oscpk13, oscpk13-1, oscpk13-2
|
|
Chromosome No.
|
4
|
|
Explanation
|
AL662957, AL662987, AB042550. OsCDPK7 in Li et al. 2017, Zhang et al. 2021. GO:0072593: reactive oxygen species metabolic process. GO:0140426: pathogen-associated molecular pattern receptor signaling pathway.
|
|
Trait Class
|
Vegetative organ - Root
Tolerance and resistance - Disease resistance
Tolerance and resistance - Stress tolerance
Biochemical character
|
|
Expression
|
|
|
Sequence/Locus
|
|
cDNA Accession No.
|
AK061881
AK066495
|
|
MSU ID
|
LOC_Os04g49510.1
LOC_Os04g49510.2
LOC_Os04g49510.3
LOC_Os04g49510.4
|
|
RAP ID
|
Os04g0584600
|
|
Links
|
Oryzabase Chromosome View
(
IRGSP 1.0
/
Build5
)
RAP-DB
(
IRGSP 1.0
/
Build5
)
Related IDs List (
IRGSP 1.0
/
Build5
)
|
INSD Accession List (Test version)
|
Link to INSD Accession List
|
|
Map
|
|
Locate(cM)
|
|
|
Link map
|
Classical linkage map
|
|
References
|
|
Wang Z., Yu S., Xu W., Peng H., Zhou X., Liese A., Chen L., Zhong G., Zhong C., Deng X., Han L., Liu N., Lee J., Romeis T., Tang D., Wang W.
Proc. Natl. Acad. Sci. U.S.A. 2025 122(45) e2506856122
Loss of calcium-dependent protein kinases OsCPK5 and OsCPK13 leads to NLR-dependent resistance in rice.
|
|
Su S., Jiang Y., Zhu X., Yu S., Wang F., Xue L., Cui H.
Plant Physiol. 2024
calcium-dependent protein kinase 5 and 13 enhance salt tolerance in rice by directly activating OsMPK3/6 kinases.
|
|
Gao Q., Yin X., Wang F., Hu S., Liu W., Chen L., Dai X., Liang M.
Int J Mol Sci 2023 24(8)
<i>OsJRL40</i>, a Jacalin-Related Lectin Gene, Promotes Salt Stress Tolerance in Rice.
|
|
Zhang H., Zheng D., Yin L., Song F., Jiang M.
Front Plant Sci 2021 12 652453
Functional Analysis of <i>OsMED16</i> and <i>OsMED25</i> in Response to Biotic and Abiotic Stresses in Rice.
|
|
Li L., Wang F., Yan P., Jing W., Zhang C., Kudla J., Zhang W.
New Phytol. 2017 214(3) 1172-1187
A phosphoinositide-specific phospholipase C pathway elicits stress-induced Ca(2+) signals and confers salt tolerance to rice.
|
|
Yamauchi T., Yoshioka M., Fukazawa A., Mori H., Nishizawa N.K., Tsutsumi N., Yoshioka H., Nakazono M.
Plant Cell 2017 29(4) 775-790
An NADPH oxidase RBOH Functions in Rice Roots during Lysigenous Aerenchyma Formation under Oxygen-Deficient Conditions.
|
|
Pachecoy M.I.a b, Ramirez I.A.a c, Marin A.b, Pontaroli A.C.a d
Euphytica 2014 197 423-434
Assessment of cold tolerance at early developmental stages and allelic variation at candidate genes in South American rice germplasm
|
|
Geng S., Li A., Tang L., Yin L., Wu L., Lei C., Guo X., Zhang X., Jiang G., Zhai W., Wei Y., Zheng Y., Lan X., Mao L.
J. Exp. Bot. 2013 64(11) 3125-36
TaCPK2-A, a calcium-dependent protein kinase gene that is required for wheat powdery mildew resistance enhances bacterial blight resistance in transgenic rice.
|
|
Asano T., Hakata M., Nakamura H., Aoki N., Komatsu S., Ichikawa H., Hirochika H., Ohsugi R.
Plant Mol. Biol. 2011 75(1) 179-191
Functional characterisation of OsCPK21, a calcium-dependent protein kinase that confers salt tolerance in rice.
|
|
Tian Y., Zhang H., Pan X., Chen X., Zhang Z., Lu X., Huang R.
Transgenic Res. 2011 20(4) 857-66
Overexpression of ethylene response factor TERF2 confers cold tolerance in rice seedlings.
|
|
Ye S,Wang L,Xie W,Wan B,Li X,Lin Y
Plant Mol. Biol. 2009 70 311-25
Expression profile of calcium-dependent protein kinase (CDPKs) genes during the whole lifespan and under phytohormone treatment conditions in rice (Oryza sativa L. ssp. indica).
|
|
Ray S,Agarwal P,Arora R,Kapoor S,Tyagi AK
Mol. Genet. Genomics 2007 278 493-505
Expression analysis of calcium-dependent protein kinase gene family during reproductive development and abiotic stress conditions in rice (Oryza sativa L. ssp. indica).
|
|
Asano T, Tanaka N, Yang G, Hayashi N, Komatsu S.
Plant Cell Physiol. 2005 46(2) 356-66
Genome-wide identification of the rice calcium-dependent protein kinase and its closely related kinase gene families: comprehensive analysis of the CDPKs gene family in rice.
|
|
Abbasi F, Onodera H, Toki S, Tanaka H, Komatsu S.
Plant Mol. Biol. 2004 55(4) 541-552
OsCDPK13, a calcium-dependent protein kinase gene from rice, is induced by cold and gibberellin in rice leaf sheath.
|
|
Saijo,Y., Hata,S., Kyozuka,J., Shimamoto,K. and Izui,K.
Plant J. 2000 23(3) 319-327
Over-expression of a single Ca2+-dependent protein kinase confers both cold and salt/drought tolerance on rice plants.
|
|
DB Reference
|
|
Gramene ID
|
-
|
|
Ontologies
|
|
Gene Ontology
|
response to cold( GO:0009409 )
response to abiotic stimulus( GO:0009628 )
response to gibberellin stimulus( GO:0009739 )
aerenchyma formation( GO:0010618 )
calcium-dependent protein kinase activity( GO:0010857 )
protein serine/threonine kinase activity( GO:0004674 )
calcium ion binding( GO:0005509 )
ATP binding( GO:0005524 )
response to auxin stimulus( GO:0009733 )
response to cytokinin stimulus( GO:0009735 )
abscisic acid mediated signaling( GO:0009738 )
calcium-mediated signaling( GO:0019722 )
response to salt stress( GO:0009651 )
pattern recognition receptor signaling pathway( GO:0002221 )
membrane( GO:0016020 )
nucleus( GO:0005634 )
respiratory burst during defense response( GO:0002679 )
positive regulation of stress-activated MAPK cascade( GO:0032874 )
positive regulation of programmed cell death( GO:0043068 )
protein amino acid phosphorylation( GO:0006468 )
defense response to fungus( GO:0050832 )
|
|
Trait Ontology
|
cytokinin sensitivity( TO:0000167 )
abiotic stress trait( TO:0000168 )
salt tolerance( TO:0006001 )
blast disease( TO:0000074 )
cold tolerance( TO:0000303 )
gibberellic acid sensitivity( TO:0000166 )
auxin sensitivity( TO:0000163 )
hydrogen peroxide content( TO:0000605 )
|
|
Plant Ontology
|
root cortex( PO:0000258 )
|
|
Related Strains
|
|
-
|
|
Phenotype images
|
|
-
|
|
Last updated
|
|
Jul 24, 2026
|