JNK1/2/3 Antibody (YA329)

(Synonyms: AI849689 antibody; c Jun N terminal kinase 1 antibody; C-JUN kinase 1 antibody; c-Jun N-terminal kinase 1 antibody; EC 2.7.11.24 antibody; JNK 1 antibody; JNK antibody; JNK-46 antibody; JNK1A2 antibody; JNK21B1/2 antibody; MAP kinase 8 antibody; MAPK 8 antibody; mapk8 antibody; Mitogen activated protein kinase 8 antibody; MK08_HUMAN antibody; p54 gamma antibody; Prkm8 antibody; Protein kinase JNK1 antibody; Protein kinase, mitogen-activated, 8 antibody; SAPK 1 antibody; SAPK gamma antibody; SAPK1 antibody; Stress-activated protein kinase 1 antibody)
4 Cited Publications
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Based on 4 publication(s) in Google Scholar

JNK1/2/3 Antibody (YA329) is a Rabbit-derived and non-conjugated IgG monoclonal antibody, targeting to JNK1/2/3.

For research use only. We do not sell to patients.
  • Host:

    Rabbit

  • Isotype:

    IgG

  • Application:

    WB, IP

  • Reactivity :

    Human, Mouse, Rat, Hamster

  • Formulation:

    Supplied in 50 mM Tris-Glycine (pH 7.4), 0.15 M NaCl, 40% Glycerol and 0.05% BSA. Preservative: 0.01% Sodium azide

  • Conjugation:
    Non-conjugated

Applications

Application
WB Info
WB: Western Blot
IP Info
IP: Immunoprecipitation
Dilution Ratio 1:500-1:1000 1:20

Product Details

Description

JNK1/2/3 Antibody (YA329) is a Rabbit-derived and non-conjugated IgG monoclonal antibody, targeting to JNK1/2/3.

  • Host Rabbit
  • Clonality Recombinant,Monoclonal
  • Species Reactivity
    Human, Mouse, Rat, Hamster
  • Observed Molecular Weight
    Observed band size: 46/54 kDa Info
    Note: Due to possible protein modifications or aggregation, the molecular weight should be confirmed by actual measurement, and the predicted value is for reference only.
  • Calculated Molecular Weight Predicted band size: 48 kDa
Immunogen

Synthetic peptide corresponding to Human JNK1.The exact sequence is proprietary to MCE.

Sensitivity

Endogenous

Purification

affinity purified

Conjugation

Non-conjugated

Modification

Unmodified

Isotype

IgG

RRID

AB_3102176

Product Properties

  • Appearance

    Solution

  • Formulation

    Supplied in 50 mM Tris-Glycine (pH 7.4), 0.15 M NaCl, 40% Glycerol and 0.05% BSA. Preservative: 0.01% Sodium azide

  • Concentration

    Batch-dependent, Please check the COA for the concentration of each lot. Check Lot Concentration

  • Storage & Stability

    Stored at -20°C for 1 year. Avoid repeated freeze / thaw cycles.

  • Shipping

    Shipping with blue ice.

Verification Images

  • Experimental Validation Results for JNK1/2/3 Antibody (YA329)
    Western blot analysis of extracts from Jurkat(lane 2(20μg), C6 (lane 3(20μg) and Hela(lane 4(20μg) using JNK (HY-P80728) Rabbit mAb. Proteins were transferred to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.

Background

  • Function

    JNK1/2/3 is a Serine/threonine-protein kinase involved in various processes such as cell proliferation, differentiation, migration, transformation and programmed cell death. Extracellular stimuli such as pro-inflammatory cytokines or physical stress stimulate the stress-activated protein kinase/c-Jun N-terminal kinase (SAP/JNK) signaling pathway. In this cascade, two dual specificity kinases MAP2K4/MKK4 and MAP2K7/MKK7 phosphorylate and activate MAPK8/JNK1. In turn, MAPK8/JNK1 phosphorylates a number of transcription factors, primarily components of AP-1 such as JUN, JDP2 and ATF2 and thus regulates AP-1 transcriptional activity. Phosphorylates the replication licensing factor CDT1, inhibiting the interaction between CDT1 and the histone H4 acetylase HBO1 to replication origins. Loss of this interaction abrogates the acetylation required for replication initiation. Promotes stressed cell apoptosis by phosphorylating key regulatory factors including p53/TP53 and Yes-associates protein YAP1. In T-cells, MAPK8 and MAPK9 are required for polarized differentiation of T-helper cells into Th1 cells. Contributes to the survival of erythroid cells by phosphorylating the antagonist of cell death BAD upon EPO stimulation. Mediates starvation-induced BCL2 phosphorylation, BCL2 dissociation from BECN1, and thus activation of autophagy. Phosphorylates STMN2 and hence regulates microtubule dynamics, controlling neurite elongation in cortical neurons. In the developing brain, through its cytoplasmic activity on STMN2, negatively regulates the rate of exit from multipolar stage and of radial migration from the ventricular zone. Phosphorylates several other substrates including heat shock factor protein 4 (HSF4), the deacetylase SIRT1, ELK1, or the E3 ligase ITCH. Phosphorylates the CLOCK-BMAL1 heterodimer and plays a role in the regulation of the circadian clock. Phosphorylates the heat shock transcription factor HSF1, suppressing HSF1-induced transcriptional activity. Phosphorylates POU5F1, which results in the inhibition of POU5F1's transcriptional activity and enhances its proteasomal degradation. Phosphorylates JUND and this phosphorylation is inhibited in the presence of MEN1. In neurons, phosphorylates SYT4 which captures neuronal dense core vesicles at synapses. Phosphorylates EIF4ENIF1/4-ET in response to oxidative stress, promoting P-body assembly. Phosphorylates SIRT6 in response to oxidative stress, stimulating its mono-ADP-ribosyltransferase activity. Phosphorylates NLRP3, promoting assembly of the NLRP3 inflammasome. Phosphorylates ALKBH5 in response to reactive oxygen species (ROS), promoting ALKBH5 sumoylation and inactivation; JNK1 isoforms display different binding patterns: beta-1 preferentially binds to c-Jun, whereas alpha-1, alpha-2, and beta-2 have a similar low level of binding to both c-Jun or ATF2. However, there is no correlation between binding and phosphorylation, which is achieved at about the same efficiency by all isoforms[1][2][3][4][5][6][7][8][9][10][11][12][13][14][15].

  • Subcellular Localization

    Cytoplasm; Nucleus; Synapse

  • Isoforms & Post-Translational Modification

    P45983 has 5 isomers: P45983-1: 48296 Da (predicted); P45983-2: 44229 Da (predicted); P45983-3: 44022 Da (predicted); P45983-4: 48088 Da (predicted); P45983-5: 35333 Da (predicted).
    Dually phosphorylated on Thr-183 and Tyr-185 by MAP2K7 and MAP2K4, which activates the enzyme (PubMed:11062067). Phosphorylated by TAOK2 (PubMed:17158878). May be phosphorylated at Thr-183 and Tyr-185 by MAP3K1/MEKK1 (PubMed:17761173). Phosphorylated form is more concentrated at synapses than none-phosphorylated (By similarity)

  • Subunit

    Forms a complex with MAPK8IP1 and ARHGEF28 (By similarity). Found in a complex with SH3RF1, RAC1, MAP3K11/MLK3, MAP2K7/MKK7 and MAPK8IP1/JIP1.

  • SwissProt ID

    P45983

  • Gene ID
  • Synonyms

    AI849689 antibody; c Jun N terminal kinase 1 antibody; C-JUN kinase 1 antibody; c-Jun N-terminal kinase 1 antibody; EC 2.7.11.24 antibody; JNK 1 antibody; JNK antibody; JNK-46 antibody; JNK1A2 antibody; JNK21B1/2 antibody; MAP kinase 8 antibody; MAPK 8 antibody; mapk8 antibody; Mitogen activated protein kinase 8 antibody; MK08_HUMAN antibody; p54 gamma antibody; Prkm8 antibody; Protein kinase JNK1 antibody; Protein kinase, mitogen-activated, 8 antibody; SAPK 1 antibody; SAPK gamma antibody; SAPK1 antibody; Stress-activated protein kinase 1 antibody

  • Research Field

    Signal Transduction

[1]. Song N, et al. NLRP3 Phosphorylation Is an Essential Priming Event for Inflammasome Activation. Mol Cell. 2017 Oct 5;68(1):185-197.e6. [Content Brief]

[2]. Murata T, et al. Phosphorylation of two eukaryotic transcription factors, Jun dimerization protein 2 and activation transcription factor 2, in Escherichia coli by Jun N-terminal kinase 1. Anal Biochem. 2008 May 1;376(1):115-21. [Content Brief]

[3]. Miotto B, et al. JNK1 phosphorylation of Cdt1 inhibits recruitment of HBO1 histone acetylase and blocks replication licensing in response to stress. Mol Cell. 2011 Oct 7;44(1):62-71. [Content Brief]

[4]. Tomlinson V, et al. JNK phosphorylates Yes-associated protein (YAP) to regulate apoptosis. Cell Death Dis. 2010;1(2):e29. [Content Brief]

[5]. Deng H, et al. Phosphorylation of Bcl-associated death protein (Bad) by erythropoietin-activated c-Jun N-terminal protein kinase 1 contributes to survival of erythropoietin-dependent cells. Int J Biochem Cell Biol. 2011 Mar;43(3):409-15. [Content Brief]

[6]. Wei Y, et al. JNK1-mediated phosphorylation of Bcl-2 regulates starvation-induced autophagy. Mol Cell. 2008 Jun 20;30(6):678-88. [Content Brief]

[7]. Hu Y, et al. Association and regulation of heat shock transcription factor 4b with both extracellular signal-regulated kinase mitogen-activated protein kinase and dual-specificity tyrosine phosphatase DUSP26. Mol Cell Biol. 2006 Apr;26(8):3282-94. [Content Brief]

[8]. Zhang L, et al. Rev7/MAD2B links c-Jun N-terminal protein kinase pathway signaling to activation of the transcription factor Elk-1. Mol Cell Biol. 2007 Apr;27(8):2861-9. [Content Brief]

[9]. Nasrin N, et al. JNK1 phosphorylates SIRT1 and promotes its enzymatic activity. PLoS One. 2009 Dec 22;4(12):e8414. [Content Brief]

[10]. Yoshitane H, et al. JNK regulates the photic response of the mammalian circadian clock. EMBO Rep. 2012 May 1;13(5):455-61. [Content Brief]

[11]. Dai R, et al. c-Jun NH2-terminal kinase targeting and phosphorylation of heat shock factor-1 suppress its transcriptional activity. J Biol Chem. 2000 Jun 16;275(24):18210-8. [Content Brief]

[12]. Huang J, et al. The same pocket in menin binds both MLL and JUND but has opposite effects on transcription. Nature. 2012 Feb 12;482(7386):542-6. [Content Brief]

[13]. Cargnello M, et al. Phosphorylation of the eukaryotic translation initiation factor 4E-transporter (4E-T) by c-Jun N-terminal kinase promotes stress-dependent P-body assembly. Mol Cell Biol. 2012 Nov;32(22):4572-84. [Content Brief]

[14]. Van Meter M, et al. JNK Phosphorylates SIRT6 to Stimulate DNA Double-Strand Break Repair in Response to Oxidative Stress by Recruiting PARP1 to DNA Breaks. Cell Rep. 2016 Sep 6;16(10):2641-2650. [Content Brief]

[15]. Yu F, et al. Post-translational modification of RNA m6A demethylase ALKBH5 regulates ROS-induced DNA damage response. Nucleic Acids Res. 2021 Jun 4;49(10):5779-5797. [Content Brief]

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