Mitogen-activated protein kinase 14
Also known as: CSBP, CSBP1, CSBP2, CSPB1, MAPK14, MXI2, SAPK2A
Function
Serine/threonine kinase which acts as an essential component 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 pro-inflammatory 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 also interacts 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. Isoform MXI2 activation is stimulated by mitogens and oxidative stress and only poorly phosphorylates ELK1 and ATF2. Isoform EXIP may play a role in the early onset of apoptosis. Phosphorylates S100A9 at 'Thr-113'. Phosphorylates NLRP1 downstream of MAP3K20/ZAK in response to UV-B irradiation and ribosome collisions, promoting activation of the NLRP1 inflammasome and pyroptosis.
Classification
- Family (Pfam)
- PF00069 Pkinase
- InterPro
- Kinase-like_dom_sf, MAP_kinase_CS, MAPK, MAPK14, MAPK_HOG-like, Prot_kinase_dom, Protein_kinase_ATP_BS
- Functional cluster
- Serine/Threonine Protein Kinases
Experimental structures · PDB · 262
- 1A9U X-ray 2.50A
- 1BL6 X-ray 2.50A
- 1BL7 X-ray 2.50A
- 1BMK X-ray 2.40A
- 1DI9 X-ray 2.60A
- 1IAN X-ray 2.00A
- 1KV1 X-ray 2.50A
- 1KV2 X-ray 2.80A
- 1M7Q X-ray 2.40A
- 1OUK X-ray 2.50A
- 1OUY X-ray 2.50A
- 1OVE X-ray 2.10A
- … and 250 more
A predicted model is available from AlphaFold.
Gene Ontology · 64
- GO:0005737 cytoplasm
- GO:0005829 cytosol
- GO:0005576 extracellular region
- GO:1904813 ficolin-1-rich granule lumen
- GO:0098978 glutamatergic synapse
- GO:0005739 mitochondrion
- GO:0016607 nuclear speck
- GO:0005654 nucleoplasm
- GO:0005634 nucleus
- GO:0034774 secretory granule lumen
- GO:0000922 spindle pole
- GO:0005524 ATP binding
- GO:0019899 enzyme binding
- GO:0004707 MAP kinase activity
- GO:0004708 MAP kinase kinase activity
- GO:0048273 mitogen-activated protein kinase p38 binding
- GO:0051525 NFAT protein binding
- GO:0019903 protein phosphatase binding
- GO:0106310 protein serine kinase activity
- GO:0004674 protein serine/threonine kinase activity
- GO:0070935 3'-UTR-mediated mRNA stabilization
- GO:0006915 apoptotic process
- GO:0060348 bone development
- GO:0001502 cartilage condensation
- GO:0007166 cell surface receptor signaling pathway
- GO:0071479 cellular response to ionizing radiation
- GO:0071222 cellular response to lipopolysaccharide
- GO:0071223 cellular response to lipoteichoic acid
- GO:0071493 cellular response to UV-B
- GO:0035924 cellular response to vascular endothelial growth factor stimulus
- GO:0098586 cellular response to virus
- GO:0090398 cellular senescence
- GO:0006935 chemotaxis
- GO:0006351 DNA-templated transcription
- GO:0035556 intracellular signal transduction
- GO:0000165 MAPK cascade
- GO:0090090 negative regulation of canonical Wnt signaling pathway
- GO:0035331 negative regulation of hippo signaling
- GO:0002862 negative regulation of inflammatory response to antigenic stimulus
- GO:0001649 osteoblast differentiation
- GO:0030316 osteoclast differentiation
- GO:0038066 p38MAPK cascade
- GO:0030168 platelet activation
- GO:0031281 positive regulation of cyclase activity
- GO:0045648 positive regulation of erythrocyte differentiation
- GO:0010628 positive regulation of gene expression
- GO:0032735 positive regulation of interleukin-12 production
- GO:0051149 positive regulation of muscle cell differentiation
- GO:0045663 positive regulation of myoblast differentiation
- GO:1901741 positive regulation of myoblast fusion
- GO:0010831 positive regulation of myotube differentiation
- GO:2000379 positive regulation of reactive oxygen species metabolic process
- GO:1900015 regulation of cytokine production involved in inflammatory response
- GO:0099179 regulation of synaptic membrane adhesion
- GO:0006357 regulation of transcription by RNA polymerase II
- GO:0002021 response to dietary excess
- GO:0032868 response to insulin
- GO:0007165 signal transduction
- GO:0042770 signal transduction in response to DNA damage
- GO:0051403 stress-activated MAPK cascade
- GO:0031098 stress-activated protein kinase signaling cascade
- GO:0090400 stress-induced premature senescence
- GO:0033209 tumor necrosis factor-mediated signaling pathway
- GO:0048010 vascular endothelial growth factor receptor signaling pathway
Drugs targeting this protein · 25
- DORAMAPIMOD inhibitor
- ARRY-797 inhibitor
- PH-797804 inhibitor
- LOSMAPIMOD inhibitor
- PAMAPIMOD inhibitor
- VX-702 inhibitor
- SD-0006 inhibitor
- NEFLAMAPIMOD inhibitor
- BMS-582949 inhibitor
- SCIO-323 inhibitor
- R-1487 HYDROCHLORIDE inhibitor
- RWJ-67657 inhibitor
- PF-03715455 inhibitor
- AZD-6703 inhibitor
- RO-3201195 inhibitor
- DILMAPIMOD inhibitor
- SEMAPIMOD inhibitor
- RALIMETINIB inhibitor
- ITX-5061 inhibitor
- TAK-715 inhibitor
- PEXMETINIB inhibitor
- TALMAPIMOD inhibitor
- ACUMAPIMOD inhibitor
- AMG-548 inhibitor
- AZD-7624 inhibitor
Neighborhood · nearest proteins
Related proteins · sequence + function similarity
- Mitogen-activated protein kinase 14 1.00
- Mitogen-activated protein kinase 14 1.00
- Mitogen-activated protein kinase 14 1.00
- Mitogen-activated protein kinase 14 0.99
- Mitogen-activated protein kinase 14 0.99
- Mitogen-activated protein kinase 14B 0.98
- Mitogen-activated protein kinase 14A 0.98
- Mitogen-activated protein kinase 14B 0.98
- Mitogen-activated protein kinase 14A 0.97
- Mitogen-activated protein kinase p38a 0.96
- Mitogen-activated protein kinase p38b 0.96
- Mitogen-activated protein kinase mpkC 0.95
Co-cited proteins · studied together in the literature
- Mitogen-activated protein kinase 12 5 shared papers
- Mitogen-activated protein kinase 11 8 shared papers
- Mitogen-activated protein kinase 14 5 shared papers
- Transcription factor SPT20 homolog 2 shared papers
- Dual specificity protein phosphatase 10 1 shared papers
- Ribosomal protein S6 kinase alpha-4 2 shared papers
- Cytokine-like nuclear factor N-PAC 1 shared papers
- Growth arrest and DNA damage-inducible protein GADD45 alpha 1 shared papers
- Transcription factor SPT20 homolog 1 shared papers
- Mitogen-activated protein kinase 13 1 shared papers
- Mitogen-activated protein kinase 14 1 shared papers
- E3 ubiquitin-protein ligase SIAH2 1 shared papers
Literature · 76 cited papers
- ZAKalpha-driven ribotoxic stress response activates the human NLRP1 inflammasome. Science · 2022
- MicroRNA-143-3p promotes human cardiac fibrosis via targeting sprouty3 after myocardial infarction. J. Mol. Cell. Cardiol. · 2019
- N-terminome analysis of the human mitochondrial proteome. Proteomics · 2015
- An enzyme assisted RP-RPLC approach for in-depth analysis of human liver phosphoproteome. J. Proteomics · 2014
- Toward a comprehensive characterization of a human cancer cell phosphoproteome. J. Proteome Res. · 2013
- The Mycobacterium tuberculosis early secreted antigenic target of 6 kDa inhibits T cell interferon-gamma production through the p38 mitogen-activated protein kinase pathway. J. Biol. Chem. · 2011
- Acetylation of a conserved lysine residue in the ATP binding pocket of p38 augments its kinase activity during hypertrophy of cardiomyocytes. Mol. Cell. Biol. · 2011
- LZAP inhibits p38 MAPK (p38) phosphorylation and activity by facilitating p38 association with the wild-type p53 induced phosphatase 1 (WIP1). PLoS ONE · 2011
- Initial characterization of the human central proteome. BMC Syst. Biol. · 2011
- A-kinase anchoring protein (AKAP)-Lbc anchors a PKN-based signaling complex involved in alpha1-adrenergic receptor-induced p38 activation. J. Biol. Chem. · 2011
- DNA damage activates a spatially distinct late cytoplasmic cell-cycle checkpoint network controlled by MK2-mediated RNA stabilization. Mol. Cell · 2010
- Mechanisms and functions of p38 MAPK signalling. Biochem. J. · 2010
- … and 64 more in the literature graph