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AB59461

Anti-p38 alpha/MAPK14 antibody [9F12]

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(7 Publications)

Mouse Monoclonal MK14 antibody. Suitable for WB, IHC-P and reacts with Recombinant full length protein - Human, Human, Rat samples. Cited in 7 publications. Immunogen corresponding to Recombinant Full Length Protein corresponding to Human MAPK14.

View Alternative Names

CSBP, CSBP1, CSBP2, CSPB1, MXI2, SAPK2A, MAPK14, Mitogen-activated protein kinase 14, MAP kinase 14, MAPK 14, Cytokine suppressive anti-inflammatory drug-binding protein, MAP kinase MXI2, MAX-interacting protein 2, Mitogen-activated protein kinase p38 alpha, Stress-activated protein kinase 2a, CSAID-binding protein, MAP kinase p38 alpha, SAPK2a

4 Images
Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)
  • IHC-P

Supplier Data

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)

Paraffin-embedded human colon carcinoma tissue stained for p38 using ab59461 at 1/10000 dilution in immunohistochemical analysis. Secondary Antibody : Biotin Goat Anti-Mouse at 1/2000 for 1 hour at RT. Counterstain : Mayer Hematoxylin (purple/blue) nuclear stain at 200 μl for 2 minutes at RT.

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)
  • WB

Unknown

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)

All lanes:

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (ab59461) at 1/1000 dilution

Lane 1:

Western blot - Recombinant Human p38 beta/MAPK11 protein (His tag N-Terminus) (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-beta-mapk11-protein-ab117219'>ab117219</a>)

Lane 2:

Western blot - Recombinant Human p38 gamma/MAPK12 protein (His tag N-Terminus) (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-gamma-mapk12-protein-ab117221'>ab117221</a>)

Lane 3:

Western blot - Recombinant Human p38 delta/MAPK13 protein (His tag N-Terminus) (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-delta-mapk13-protein-ab113869'>ab113869</a>)

Lane 4:

Western blot - Recombinant Human p38 alpha/MAPK14 protein (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-alpha-mapk14-protein-ab82188'>ab82188</a>)

Predicted band size: 41 kDa

false

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)
  • WB

Lab

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)

Lanes 1 - 4 : Green - ab59461 observed at 43 kDa.

ab59461 was shown to react with Anti-p38 antibody [9F12] in Western blot. Membranes were blocked in 100% Licor before incubation with ab59461 and overnight at 4 °C at a 1 in 1000 dilution. Blots were incubated with Goat anti-Mouse IgG H&L (IRDye® 800CW) preabsorbed (ab216772) secondary antibody at 1 in 20000 dilution for 1 h at room temperature before imaging.

All lanes:

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (ab59461) at 1/1000 dilution

Lane 1:

MAPK11 recombinant (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-beta-mapk11-protein-ab117219'>ab117219</a>) at 0.5 µg

Lane 2:

MAPK12 recombinant (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-gamma-mapk12-protein-ab117221'>ab117221</a>) at 0.5 µg

Lane 3:

MAPK13 recombinant (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-delta-mapk13-protein-ab113869'>ab113869</a>) at 0.5 µg

Lane 4:

MAPK14 (p38) recombinant (<a href='/en-us/products/proteins-peptides/recombinant-human-p38-alpha-mapk14-protein-ab82188'>ab82188</a>) at 0.5 µg

Predicted band size: 41 kDa

Observed band size: 43 kDa

false

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)
  • WB

Supplier Data

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (AB59461)

All lanes:

Western blot - Anti-p38 alpha/MAPK14 antibody [9F12] (ab59461) at 1/1000 dilution

Lane 1:

A431 (human epidermoid carcinoma cell line) cell lysate at 15 µg

Lane 2:

A549 (human lung carcinoma cell line) cell lysate at 15 µg

Lane 3:

HCT 116 (human colorectal carcinoma cell line) cell lysate at 15 µg

Lane 4:

HeLa (human epithelial cell line from cervix adenocarcinoma) cell lysate at 15 µg

Lane 5:

HEK-293 (human epithelial cell line from embryonic kidney) cell lysate at 15 µg

Lane 6:

HepG2 (human liver hepatocellular carcinoma cell line) cell lysate at 15 µg

Lane 7:

Hl-60 (human promyelocytic leukemia cell line) cell lysate at 15 µg

Lane 8:

HUVEC (human umbilical vein endothelial cell line) cell lysate at 15 µg

Lane 9:

Jurkat (human T cell leukemia cell line from peripheral blood) cell lysate at 15 µg

Lane 10:

MCF7 (human breast adenocarcinoma cell line) cell lysate at 15 µg

Lane 11:

PC-3 (human prostate adenocarcinoma cell line) cell lysate at 15 µg

Lane 12:

T98G cell lysate at 15 µg

Lane 13:

Rat brain lysate at 15 µg

Secondary

All lanes:

Sheep Anti-Mouse IgG: HRP

Predicted band size: 41 kDa

false

Key facts

Host species

Mouse

Clonality

Monoclonal

Clone number

9F12

Isotype

IgG1

Carrier free

No

Reacts with

Rat, Human

Applications

IHC-P, WB

applications

Immunogen

Recombinant Full Length Protein corresponding to Human MAPK14.

Q16539

Reactivity data

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Properties and storage information

Form
Liquid
Purification technique
Affinity purification Protein G
Storage buffer
Preservative: 0.09% Sodium azide Constituents: PBS, 50% Glycerol (glycerin, glycerine)
Shipped at conditions
Blue Ice
Appropriate short-term storage duration
1-2 weeks
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
-20°C
Aliquoting information
Upon delivery aliquot
Storage information
Stable for 12 months at -20°C

Supplementary information

This supplementary information is collated from multiple sources and compiled automatically.

P38 alpha also known as MAPK14 is a significant member of the MAP kinase family involved in cellular response to stress signals. This protein has a molecular mass of about 38 kDa and is expressed in various tissues throughout the body. p38 alpha plays an important role in the signal transduction pathways that regulate inflammatory responses and cell differentiation. Its activity is modulated by multiple upstream kinases leading to cell-specific effects that are important for organismal homeostasis.
Biological function summary

P38 alpha MAPK14 is a part of a larger mitogen-activated protein kinase (MAPK) complex where it serves to mediate signals from external stressors to the appropriate cellular processes. It is particularly active in its roles involving inflammation and apoptosis regulation. The protein interacts with other members of the MAPK family and additional proteins such as TAB1 to conduct these biological signals efficiently.

Pathways

P38 alpha integrates into the p38 MAPK pathway and the NF-kB signaling pathway which are essential for managing cellular stress responses and inflammatory reactions. It closely interacts with other proteins like MKK3 and MKK6 which are directly upstream regulators phosphorylating and activating p38 MAPK14. This intricate connection allows p38 alpha to execute precise regulation within cellular environments.

P38 alpha MAPK14 is prominently associated with inflammatory diseases such as rheumatoid arthritis and cardiovascular disorders. In these conditions its aberrant activation or expression can lead to pathological inflammation and tissue damage. Additionally p38 alpha’s connection with TNF-alpha in inflammation highlights its relevance in therapeutic targets for related disorders reflecting the significance of its modulation to potentially mitigate disease progression.

Product protocols

For this product, it's our understanding that no specific protocols are required. You can visit:

Target data

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 (PubMed : 9687510, PubMed : 9792677). 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 (PubMed : 9687510, PubMed : 9792677). 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 (PubMed : 11154262). MAPK14 also interacts with casein kinase II, leading to its activation through autophosphorylation and further phosphorylation of TP53/p53 (PubMed : 10747897). 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 (PubMed : 17003045). MAPK14 may also inhibit the lysosomal degradation pathway of autophagy by interfering with the intracellular trafficking of the transmembrane protein ATG9 (PubMed : 19893488). 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 (PubMed : 16932740). 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 (PubMed : 20188673). 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 (PubMed : 10330143, PubMed : 9430721, PubMed : 9858528). 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 (PubMed : 11333986). Phosphorylates TIAR following DNA damage, releasing TIAR from GADD45A mRNA and preventing mRNA degradation (PubMed : 20932473). 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 (PubMed : 10943842). 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' (PubMed : 15905572). Phosphorylates NLRP1 downstream of MAP3K20/ZAK in response to UV-B irradiation and ribosome collisions, promoting activation of the NLRP1 inflammasome and pyroptosis (PubMed : 35857590).. (Microbial infection) Activated by phosphorylation by M.tuberculosis EsxA in T-cells leading to inhibition of IFN-gamma production; phosphorylation is apparent within 15 minutes and is inhibited by kinase-specific inhibitors SB203580 and siRNA (PubMed : 21586573).
See full target information MAPK14

Publications (7)

Recent publications for all applications. Explore the full list and refine your search

Journal of experimental & clinical cancer research : CR 44:198 PubMed40640948

2025

PHGDH drives 5-FU chemoresistance in colorectal cancer through the Hedgehog signaling.

Applications

Unspecified application

Species

Unspecified reactive species

Caterina Mancini,Giulia Lori,Gianluca Mattei,Marta Iozzo,Dayana Desideri,Fabio Cianchi,Laura Fortuna,Federico Passagnoli,Daniela Massi,Filippo Ugolini,Luca Messerini,Salvatore Piscuoglio,Antonio Pezone,Francesca Magherini,Alessio Biagioni,Tiziano Lottini,Demetra Zambardino,Giuseppina Ivana Truglio,Elena Petricci,Alberto Magi,Annarosa Arcangeli,Luisa Maresca,Barbara Stecca,Erica Pranzini,Maria Letizia Taddei

Cell discovery 8:77 PubMed35945223

2022

GFAT1-linked TAB1 glutamylation sustains p38 MAPK activation and promotes lung cancer cell survival under glucose starvation.

Applications

Unspecified application

Species

Unspecified reactive species

Shupei Wei,Qin Zhao,Ke Zheng,Peiying Liu,Nannan Sha,Yingzi Li,Chunmin Ma,Jingjie Li,Lingang Zhuo,Guanxin Liu,Wenhua Liang,Yuhui Jiang,Tao Chen,Nanshan Zhong

Oxidative medicine and cellular longevity 2022:3605977 PubMed35096267

2022

Modulating Oxidative Stress in B Cells Promotes Immunotherapy in Food Allergy.

Applications

Unspecified application

Species

Unspecified reactive species

Hao-Tao Zeng,Yu Liu,Miao Zhao,Jiang-Qi Liu,Qiao-Ruo Jin,Zhi-Qiang Liu,Yan Li,Zhi-Gang Liu,Bai-Sui Feng,Pingchang Yang

Cell biology international 46:148-157 PubMed34694031

2021

Downregulation of tripartite motif protein 11 attenuates cardiomyocyte apoptosis after ischemia/reperfusion injury via DUSP1-JNK1/2.

Applications

Unspecified application

Species

Unspecified reactive species

Fang He,Zheqian Wu,Yong Wang,Lili Yin,Shijie Lu,Lihua Dai

Molecular and cellular biology 41:e0005921 PubMed34031216

2021

LINC00997/MicroRNA 574-3p/CUL2 Promotes Cervical Cancer Development via Mitogen-Activated Protein Kinase Signaling.

Applications

Unspecified application

Species

Unspecified reactive species

Daming Chu,Tengteng Liu,Yuan Yao,Nannan Luan

Open life sciences 15:971-980 PubMed33817283

2020

CTRP9 protects against MIA-induced inflammation and knee cartilage damage by deactivating the MAPK/NF-κB pathway in rats with osteoarthritis.

Applications

Unspecified application

Species

Unspecified reactive species

Shicheng Zheng,Jing Ren,Sihai Gong,Feng Qiao,Jinlong He

Journal of cachexia, sarcopenia and muscle 10:903-918 PubMed31020810

2019

Amelioration of muscle wasting by glucagon-like peptide-1 receptor agonist in muscle atrophy.

Applications

Unspecified application

Species

Unspecified reactive species

Yeonhee Hong,Jong Han Lee,Kwang Won Jeong,Cheol Soo Choi,Hee-Sook Jun
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