EKS-MUM-00490
Eukaryotic Protein Kinase & Protein Phosphatase Database
TagContent
EKPD IDEKS-MUM-00490
Classification
Group/FamilyScoreE-ValueStartEndDomain Length
CMGC/MAPK451.72.4E-13524308285
StatusReviewed
Ensembl ProteinENSMUSP00000061958
UniProt AccessionP47811; B2KF37; B2KF38; O08666; Q3U6R5; Q3UZS3; Q8C289; Q9JLV8; Q9QZ80;
Protein NameMitogen-activated protein kinase 14
Protein Synonyms/Alias MAP kinase 14; MAPK 14; CRK1; Mitogen-activated protein kinase p38 alpha; MAP kinase p38 alpha;
Gene NameMapk14
Gene Synonyms/Alias Mapk14; Crk1, Csbp1, Csbp2;
Ensembl Information
Ensembl Gene IDEnsembl Protein IDEnsembl Transcript ID
ENSMUSG00000053436ENSMUSP00000110400ENSMUST00000114752
ENSMUSG00000053436ENSMUSP00000110402ENSMUST00000114754
ENSMUSG00000053436ENSMUSP00000116914ENSMUST00000124886
ENSMUSG00000053436ENSMUSP00000004990ENSMUST00000004990
ENSMUSG00000053436ENSMUSP00000061958ENSMUST00000062694
ENSMUSG00000053436ENSMUSP00000110406ENSMUST00000114758
OrganismMus musculus
Functional DescriptionSerine/threonine kinase which acts as an essentialcomponent of the MAP kinase signal transduction pathway. MAPK14 is one of the four p38 MAPKs which play an important role in the cascades of cellular responses evoked by extracellular stimuli such as proinflammatory cytokines or physical stress leading to direct activation of transcription factors. Accordingly, p38 MAPKs phosphorylate a broad range of proteins and it has been estimated that they may have approximately 200 to 300 substrates each. Some of the targets are downstream kinases which are activated through phosphorylation and further phosphorylate additional targets. RPS6KA5/MSK1 and RPS6KA4/MSK2 can directly phosphorylate and activate transcription factors such as CREB1, ATF1, the NF-kappa-B isoform RELA/NFKB3, STAT1 and STAT3, but can also phosphorylate histone H3 and the nucleosomal protein HMGN1. RPS6KA5/MSK1 and RPS6KA4/MSK2 play important roles in the rapid induction of immediate-early genes in response to stress or mitogenic stimuli, either by inducing chromatin remodeling or by recruiting the transcription machinery. On the other hand, two other kinase targets, MAPKAPK2/MK2 and MAPKAPK3/MK3, participate in the control of gene expression mostly at the post-transcriptional level, by phosphorylating ZFP36 (tristetraprolin) and ELAVL1, and by regulating EEF2K, which is important for the elongation of mRNA during translation. MKNK1/MNK1 and MKNK2/MNK2, two other kinases activated by p38 MAPKs, regulate protein synthesis by phosphorylating the initiation factor EIF4E2. MAPK14 interacts also with casein kinase II, leading to its activation through autophosphorylation and further phosphorylation of TP53/p53. In the cytoplasm, the p38 MAPK pathway is an important regulator of protein turnover. For example, CFLAR is an inhibitor of TNF- induced apoptosis whose proteasome-mediated degradation is regulated by p38 MAPK phosphorylation. In a similar way, MAPK14 phosphorylates the ubiquitin ligase SIAH2, regulating its activity towards EGLN3. MAPK14 may also inhibit the lysosomal degradation pathway of autophagy by interfering with the intracellular trafficking of the transmembrane protein ATG9. Another function of MAPK14 is to regulate the endocytosis of membrane receptors by different mechanisms that impinge on the small GTPase RAB5A. In addition, clathrin-mediated EGFR internalization induced by inflammatory cytokines and UV irradiation depends on MAPK14- mediated phosphorylation of EGFR itself as well as of RAB5A effectors. Ectodomain shedding of transmembrane proteins is regulated by p38 MAPKs as well. In response to inflammatory stimuli, p38 MAPKs phosphorylate the membrane-associated metalloprotease ADAM17. Such phosphorylation is required for ADAM17-mediated ectodomain shedding of TGF-alpha family ligands, which results in the activation of EGFR signaling and cell proliferation. Another p38 MAPK substrate is FGFR1. FGFR1 can be translocated from the extracellular space into the cytosol and nucleus of target cells, and regulates processes such as rRNA synthesis and cell growth. FGFR1 translocation requires p38 MAPK activation. In the nucleus, many transcription factors are phosphorylated and activated by p38 MAPKs in response to different stimuli. Classical examples include ATF1, ATF2, ATF6, ELK1, PTPRH, DDIT3, TP53/p53 and MEF2C and MEF2A. The p38 MAPKs are emerging as important modulators of gene expression by regulating chromatin modifiers and remodelers. The promoters of several genes involved in the inflammatory response, such as IL6, IL8 and IL12B, display a p38 MAPK-dependent enrichment of histone H3 phosphorylation on 'Ser-10' (H3S10ph) in LPS-stimulated myeloid cells. This phosphorylation enhances the accessibility of the cryptic NF- kappa-B-binding sites marking promoters for increased NF-kappa-B recruitment. Phosphorylates CDC25B and CDC25C which is required for binding to 14-3-3 proteins and leads to initiation of a G2 delay after ultraviolet radiation. Phosphorylates TIAR following DNA damage, releasing TIAR from GADD45A mRNA and preventing mRNA degradation. The p38 MAPKs may also have kinase-independent roles, which are thought to be due to the binding to targets in the absence of phosphorylation. Protein O-Glc-N-acylation catalyzed by the OGT is regulated by MAPK14, and, although OGT does not seem to be phosphorylated by MAPK14, their interaction increases upon MAPK14 activation induced by glucose deprivation. This interaction may regulate OGT activity by recruiting it to specific targets such as neurofilament H, stimulating its O-Glc-N-acylation. Required in mid-fetal development for the growth of embryo-derived blood vessels in the labyrinth layer of the placenta. Also plays an essential role in developmental and stress-induced erythropoiesis, through regulation of EPO gene expression. Phosphorylates S100A9 at 'Thr-113' (By similarity).
Protein Length360
Protein Sequence
(FASTA)
MSQERPTFYR QELNKTIWEV PERYQNLSPV GSGAYGSVCA AFDTKTGHRV AVKKLSRPFQ 60
SIIHAKRTYR ELRLLKHMKH ENVIGLLDVF TPARSLEEFN DVYLVTHLMG ADLNNIVKCQ 120
KLTDDHVQFL IYQILRGLKY IHSADIIHRD LKPSNLAVNE DCELKILDFG LARHTDDEMT 180
GYVATRWYRA PEIMLNWMHY NQTVDIWSVG CIMAELLTGR TLFPGTDHID QLKLILRLVG 240
TPGAELLKKI SSESARNYIQ SLAQMPKMNF ANVFIGANPL AVDLLEKMLV LDSDKRITAA 300
QALAHAYFAQ YHDPDDEPVA DPYDQSFESR DLLIDEWKSL TYDEVISFVP PPLDQEEMES 360
Nucleotide Sequence
(FASTA)
ATGTCGCAGG AGAGGCCCAC GTTCTACCGG CAGGAGCTGA ACAAGACCAT CTGGGAGGTG 60
CCCGAACGAT ACCAGAACCT GTCCCCGGTG GGCTCGGGCG CCTATGGCTC GGTGTGTGCT 120
GCTTTTGATA CAAAGACGGG GCATCGTGTG GCAGTTAAGA AGCTGTCGAG ACCGTTTCAG 180
TCCATCATTC ACGCCAAAAG GACCTACCGA GAGTTGCGTC TGCTGAAGCA CATGAAACAC 240
GAAAATGTGA TTGGTCTGTT GGATGTGTTC ACACCCGCAA GGTCACTGGA GGAATTCAAT 300
GACGTGTACC TGGTGACCCA TCTCATGGGG GCGGACCTGA ACAACATCGT GAAGTGCCAG 360
AAGCTGACCG ACGACCACGT TCAGTTTCTC ATCTACCAGA TCCTCCGAGG GCTGAAGTAT 420
ATACATTCGG CTGACATAAT TCACAGGGAC CTAAAGCCCA GCAACCTAGC TGTGAACGAA 480
GACTGTGAGC TCAAGATTCT GGATTTTGGG CTGGCTCGGC ACACTGATGA TGAGATGACA 540
GGCTACGTGG CTACCAGGTG GTACCGAGCC CCAGAGATCA TGCTGAATTG GATGCACTAT 600
AACCAGACAG TGGATATTTG GTCCGTGGGC TGCATCATGG CTGAGCTGTT GACCGGAAGA 660
ACGTTGTTTC CTGGTACAGA CCATATTGAT CAGTTGAAGC TCATTTTAAG ACTCGTTGGA 720
ACCCCAGGGG CTGAGCTTCT GAAGAAAATC TCCTCAGAGT CTGCAAGAAA CTACATTCAG 780
TCTCTGGCCC AGATGCCGAA GATGAACTTC GCAAATGTAT TTATTGGTGC CAATCCCCTG 840
GCTGTCGACC TACTGGAGAA GATGCTCGTT TTGGACTCAG ATAAGAGGAT CACAGCAGCC 900
CAAGCTCTTG CGCATGCCTA CTTTGCTCAG TACCACGACC CTGATGATGA GCCTGTTGCT 960
GACCCTTATG ACCAGTCCTT TGAAAGCAGG GACCTTCTCA TAGATGAGTG GAAGAGCCTG 1020
ACCTATGATG AAGTCATCAG CTTTGTGCCA CCACCCCTTG ACCAAGAAGA AATGGAGTCC 1080
TGA 1083
Domain Profile
S: 1     yeslkplgeGaygvvvsavdkrteervaikklsrpfqketsakrtlRElkllkelkheNi  60
         y++l+p+g+Gayg v++a+d++t++rva+kklsrpfq+ ++akrt+REl+llk++kheN+
Q: 24    YQNLSPVGSGAYGSVCAAFDTKTGHRVAVKKLSRPFQSIIHAKRTYRELRLLKHMKHENV  83
         899*********************************************************
S: 61    iklldvftpeeeleelkdvYlvtelmetdLkkviksqklsdehiklllyqilrglkylHs  120
         i lldvftp+++lee++dvYlvt+lm++dL++++k qkl+d+h+++l+yqilrglky+Hs
Q: 84    IGLLDVFTPARSLEEFNDVYLVTHLMGADLNNIVKCQKLTDDHVQFLIYQILRGLKYIHS  143
         ************************************************************
S: 121   anviHrDlKPsNllvnedcelkildFGlarsadkekekklteyvatrwYraPeillslke  180
         a++iHrDlKPsNl+vnedcelkildFGlar++d+e    +t+yvatrwYraPei+l++++
Q: 144   ADIIHRDLKPSNLAVNEDCELKILDFGLARHTDDE----MTGYVATRWYRAPEIMLNWMH  199
         **********************************9....*********************
S: 181   ytkavDiWsvGCIlaElltgkplfpgkdeidqlekilevlgtpseeflkkieseearnyi  240
         y+++vDiWsvGCI+aElltg++lfpg+d+idql++il+++gtp +e lkki+se+arnyi
Q: 200   YNQTVDIWSVGCIMAELLTGRTLFPGTDHIDQLKLILRLVGTPGAELLKKISSESARNYI  259
         ************************************************************
S: 241   kslpkkkkkdfeelfpkaseealdLleklLvldpdkRisveeaLehpYl  289
         +sl +++k++f+++f  a++ a+dLlek+Lvld+dkRi++++aL+h Y+
Q: 260   QSLAQMPKMNFANVFIGANPLAVDLLEKMLVLDSDKRITAAQALAHAYF  308
         ***********************************************96
Domain Sequence
(FASTA)
YQNLSPVGSG AYGSVCAAFD TKTGHRVAVK KLSRPFQSII HAKRTYRELR LLKHMKHENV 60
IGLLDVFTPA RSLEEFNDVY LVTHLMGADL NNIVKCQKLT DDHVQFLIYQ ILRGLKYIHS 120
ADIIHRDLKP SNLAVNEDCE LKILDFGLAR HTDDEMTGYV ATRWYRAPEI MLNWMHYNQT 180
VDIWSVGCIM AELLTGRTLF PGTDHIDQLK LILRLVGTPG AELLKKISSE SARNYIQSLA 240
QMPKMNFANV FIGANPLAVD LLEKMLVLDS DKRITAAQAL AHAYF 285
Keyword3D-structure; Acetylation; Alternative splicing; Apoptosis; ATP-binding; Complete proteome; Cytoplasm; Direct protein sequencing; Kinase; Nucleotide-binding; Nucleus; Phosphoprotein; Reference proteome; Serine/threonine-protein kinase; Stress response; Transcription; Transcription regulation; Transferase; Ubl conjugation.
Sequence SourceEnsembl
Orthology
Ortholog group
Ailuropoda melanoleuca"; ?>Anolis carolinensis"; ?>Bos taurus"; ?>Caenorhabditis elegans"; ?>Callithrix jacchus"; ?>Canis familiaris"; ?>Cavia porcellus"; ?>Ciona savignyi"; ?>Danio rerio"; ?>Drosophila melanogaster"; ?>Echinops telfairi"; ?>Equus caballus"; ?>Felis catus"; ?>Gadus morhua"; ?>Gallus gallus"; ?>Gasterosteus aculeatus"; ?>Homo sapiens"; ?>Latimeria chalumnae"; ?>Loxodonta africana"; ?>Macaca mulatta"; ?>Meleagris gallopavo"; ?>Monodelphis domestica"; ?>Mustela putorius furo"; ?>Myotis lucifugus"; ?>Nomascus leucogenys"; ?>Oreochromis niloticus"; ?>Oryctolagus cuniculus"; ?>Oryzias latipes"; ?>Otolemur garnettii"; ?>Pan troglodytes"; ?>Pelodiscus sinensis"; ?>Petromyzon marinus"; ?>Pongo abelii"; ?>Rattus norvegicus"; ?>Sarcophilus harrisii"; ?>Sus scrofa"; ?>Taeniopygia guttata"; ?>Takifugu rubripes"; ?>Tetraodon nigroviridis"; ?>Vicugna pacos"; ?>Xiphophorus maculatus"; ?>Saccharomyces cerevisiae"; ?>Schizosaccharomyces pombe"; ?>
EKS-AIM-00428
EKS-ANC-00445
EKS-BOT-00460
EKS-CAE-00384
EKS-CAJ-00464
EKS-CAF-00459
EKS-CAP-00492
EKS-CIS-00219
EKS-DAR-00865
EKS-DRM-00220
EKS-ECT-00061
EKS-EQC-00450
EKS-FEC-00437
EKS-GAM-00266
EKS-GAG-00383
EKS-GAA-00556
EKS-HOS-00466
EKS-LAC-00471
EKS-LOA-00466
EKS-MAM-00457
EKS-MEG-00376
EKS-MOD-00451
EKS-MUP-00451
EKS-MYL-00453
EKS-NOL-00426
EKS-ORN-00579
EKS-ORC-00435
EKS-ORL-00528
EKS-OTG-00466
EKS-PAT-00434
EKS-PES-00406
EKS-PEM-00253
EKS-POA-00448
EKS-RAN-00472
EKS-SAH-00428
EKS-SUS-00406
EKS-TAG-00522
EKS-TAR-00573
EKS-TEN-00571
EKS-VIP-00087
EKS-XIM-00570
EKS-SAC-00099
EKS-SCP-00102
Gene Ontology
GO:0005829; C:cytosol
GO:0044445; C:cytosolic part
GO:0005739; C:mitochondrion
GO:0005634; C:nucleus
GO:0000922; C:spindle pole
GO:0005524; F:ATP binding
GO:0004707; F:MAP kinase activity
GO:0001525; P:angiogenesis
GO:0006915; P:apoptotic process
GO:0000902; P:cell morphogenesis
GO:0071363; P:cellular response to growth factor stimulus
GO:0071479; P:cellular response to ionizing radiation
GO:0002062; P:chondrocyte differentiation
GO:0000077; P:DNA damage checkpoint
GO:0019395; P:fatty acid oxidation
GO:0006006; P:glucose metabolic process
GO:0031663; P:lipopolysaccharide-mediated signaling pathway
GO:0030316; P:osteoclast differentiation
GO:0018105; P:peptidyl-serine phosphorylation
GO:0045648; P:positive regulation of erythrocyte differentiation
GO:0042307; P:positive regulation of protein import into nucleus
GO:2000379; P:positive regulation of reactive oxygen species metabolic process
GO:0045944; P:positive regulation of transcription from RNA polymerase II promoter
GO:0046777; P:protein autophosphorylation
GO:0009749; P:response to glucose stimulus
GO:0032495; P:response to muramyl dipeptide
GO:0042770; P:signal transduction in response to DNA damage
GO:0007519; P:skeletal muscle tissue development
GO:0051403; P:stress-activated MAPK cascade
GO:0090400; P:stress-induced premature senescence
GO:0051146; P:striated muscle cell differentiation
GO:0006351; P:transcription, DNA-dependent
GO:0048010; P:vascular endothelial growth factor receptor signaling pathway
KEGG
mmu:26416;
InterPros
IPR011009; Kinase-like_dom.
IPR003527; MAP_kinase_CS.
IPR008352; MAPK_p38.
IPR000719; Prot_kinase_cat_dom.
IPR017441; Protein_kinase_ATP_BS.
IPR002290; Ser/Thr_dual-sp_kinase_dom.
Pfam
PF00069; Pkinase; 1.
SMARTs
SM00220; S_TKc; 1.
Prosites
PS01351; MAPK; 1.
PS00107; PROTEIN_KINASE_ATP; 1.
PS50011; PROTEIN_KINASE_DOM; 1.
PS00108; PROTEIN_KINASE_ST; FALSE_NEG.
Prints
PR01773; P38MAPKINASE.
Created Date20-Feb-2013