Phospho-RSK1 p90 (Ser380) Antibody (YA158)

(Synonyms: RPS6KA1; MAPKAPK1A; RSK1; Ribosomal protein S6 kinase alpha-1; S6K-alpha-1; 90 kDa ribosomal protein S6 kinase 1; p90-RSK 1; p90RSK1; p90S6K; MAP kinase-activated protein kinase 1a; MAPK-activated protein kinase 1a; MAPKAP kinase 1a; MAPKAP)
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Based on 1 Customer Validation

Phospho-RSK1 p90 (Ser380) Antibody (YA158) is a Rabbit-derived and non-conjugated IgG monoclonal antibody, targeting to Phospho-RSK1 p90 (Ser380).

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

    Rabbit

  • Isotype:

    IgG

  • Application:

    WB, ICC/IF, IP

  • Reactivity :

    Human, Rat, Mouse

  • Formulation:

    Supplied in Rabbit IgG in 10mM phosphate buffered saline , pH 7.4, 150mM sodium chloride, 0.05% BSA, 0.02% sodium azide and 50% glycerol.

  • Conjugation:
    Non-conjugated

Applications

Application
WB Info
WB: Western Blot
ICC/IF Info
ICC/IF: Immunocytochemistry/
Immunofluorescence
IP Info
IP: Immunoprecipitation
Dilution Ratio 1:500-1:1000 1:50-1:200 1:50

Product Details

Description

Phospho-RSK1 p90 (Ser380) Antibody (YA158) is a Rabbit-derived and non-conjugated IgG monoclonal antibody, targeting to Phospho-RSK1 p90 (Ser380).

  • Host Rabbit
  • Clonality Recombinant,Monoclonal
  • Species Reactivity
    Human, Rat, Mouse
  • Observed Molecular Weight
    Observed band size: 90 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: 83 kDa
Species Reactivity Database
Immunogen

Synthetic phosphopeptide corresponding to residues surrounding Ser380 of Human RSK1 p90.The exact sequence is proprietary to MCE.

Sensitivity

Endogenous

Purification

affinity purified

Conjugation

Non-conjugated

Modification

Phosphorylated

Isotype

IgG

RRID

AB_3102725

Product Properties

  • Appearance

    Solution

  • Formulation

    Supplied in Rabbit IgG in 10mM phosphate buffered saline , pH 7.4, 150mM sodium chloride, 0.05% BSA, 0.02% sodium azide and 50% glycerol.

  • 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 Phospho-RSK1 p90 (Ser380) Antibody (YA158)
    Western blot analysis of extracts from A431 (lane 2(20μg), A431 (lane 3(40μg)using Phospho-RSK1 p90 (Ser380) Antibody. Proteins were transferred to a PVDF membrane and blocked with 5% BSA in TBST for 2 hour at room temperature. The primary antibody and Loading control antibody (Beta Actin, HY-P80438, 1/3000) was used in 5% BSA in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (HY-P8004/HY-P8001, 1/10,000) was used for 1 hour at room temperature.

Background

  • Function

    RSK1 p90 is a Serine/threonine-protein kinase that acts downstream of ERK (MAPK1/ERK2 and MAPK3/ERK1) signaling and mediates mitogenic and stress-induced activation of the transcription factors CREB1, ETV1/ER81 and NR4A1/NUR77, regulates translation through RPS6 and EIF4B phosphorylation, and mediates cellular proliferation, survival, and differentiation by modulating mTOR signaling and repressing pro-apoptotic function of BAD and DAPK1. In fibroblast, is required for EGF-stimulated phosphorylation of CREB1, which results in the subsequent transcriptional activation of several immediate-early genes. In response to mitogenic stimulation (EGF and PMA), phosphorylates and activates NR4A1/NUR77 and ETV1/ER81 transcription factors and the cofactor CREBBP. Upon insulin-derived signal, acts indirectly on the transcription regulation of several genes by phosphorylating GSK3B at 'Ser-9' and inhibiting its activity. Phosphorylates RPS6 in response to serum or EGF via an mTOR-independent mechanism and promotes translation initiation by facilitating assembly of the pre-initiation complex. In response to insulin, phosphorylates EIF4B, enhancing EIF4B affinity for the EIF3 complex and stimulating cap-dependent translation. Is involved in the mTOR nutrient-sensing pathway by directly phosphorylating TSC2 at 'Ser-1798', which potently inhibits TSC2 ability to suppress mTOR signaling, and mediates phosphorylation of RPTOR, which regulates mTORC1 activity and may promote rapamycin-sensitive signaling independently of the PI3K/AKT pathway. Also involved in feedback regulation of mTORC1 and mTORC2 by phosphorylating DEPTOR. Mediates cell survival by phosphorylating the pro-apoptotic proteins BAD and DAPK1 and suppressing their pro-apoptotic function. Promotes the survival of hepatic stellate cells by phosphorylating CEBPB in response to the hepatotoxin carbon tetrachloride (CCl4). Mediates induction of hepatocyte prolifration by TGFA through phosphorylation of CEBPB. Is involved in cell cycle regulation by phosphorylating the CDK inhibitor CDKN1B, which promotes CDKN1B association with 14-3-3 proteins and prevents its translocation to the nucleus and inhibition of G1 progression. Phosphorylates EPHA2 at 'Ser-897', the RPS6KA-EPHA2 signaling pathway controls cell migration. In response to mTORC1 activation, phosphorylates EIF4B at 'Ser-406' and 'Ser-422' which stimulates bicarbonate cotransporter SLC4A7 mRNA translation, increasing SLC4A7 protein abundance and function; (Microbial infection) Promotes the late transcription and translation of viral lytic genes during Kaposi's sarcoma-associated herpesvirus/HHV-8 infection, when constitutively activated[1][2][3][4][5][6][7][8][9][10][11][12][13][14][15][16].

  • Subcellular Localization

    Nucleus; Cytoplasm

  • Isoforms & Post-Translational Modification

    Q15418 has 4 isomers: Q15418-1: 82723 Da (predicted); Q15418-2: 83932 Da (predicted); Q15418-3: 72698 Da (predicted); Q15418-4: 81147 Da (predicted).
    Activated by phosphorylation at Ser-221 by PDPK1. Autophosphorylated on Ser-380, as part of the activation process. May be phosphorylated at Thr-359 and Ser-363 by MAPK1/ERK2 and MAPK3/ERK1;N-terminal myristoylation results in an activated kinase in the absence of added growth factors

  • Subunit

    Forms a complex with either MAPK1/ERK2 or MAPK3/ERK1 in quiescent cells. Transiently dissociates following mitogenic stimulation. Interacts with ETV1/ER81 and FGFR1

  • SwissProt ID

    Q15418

  • Gene ID
  • Synonyms

    RPS6KA1; MAPKAPK1A; RSK1; Ribosomal protein S6 kinase alpha-1; S6K-alpha-1; 90 kDa ribosomal protein S6 kinase 1; p90-RSK 1; p90RSK1; p90S6K; MAP kinase-activated protein kinase 1a; MAPK-activated protein kinase 1a; MAPKAP kinase 1a; MAPKAP

  • Research Field

    Signal Transduction

References

[1]. Shimamura A, et al. Rsk1 mediates a MEK-MAP kinase cell survival signal. Curr Biol. 2000 Feb 10;10(3):127-35. [Content Brief]

[2]. Wu J, et al. Regulation of the ETS transcription factor ER81 by the 90-kDa ribosomal S6 kinase 1 and protein kinase A. J Biol Chem. 2002 Nov 8;277(45):42669-79. [Content Brief]

[3]. Hu Y, et al. 90-kDa ribosomal S6 kinase is a direct target for the nuclear fibroblast growth factor receptor 1 (FGFR1): role in FGFR1 signaling. J Biol Chem. 2004 Jul 9;279(28):29325-35. [Content Brief]

[4]. Wingate AD, et al. Nur77 is phosphorylated in cells by RSK in response to mitogenic stimulation. Biochem J. 2006 Feb 1;393(Pt 3):715-24. [Content Brief]

[5]. Roux PP, et al. RAS/ERK signaling promotes site-specific ribosomal protein S6 phosphorylation via RSK and stimulates cap-dependent translation. J Biol Chem. 2007 May 11;282(19):14056-64. [Content Brief]

[6]. Carrière A, et al. Oncogenic MAPK signaling stimulates mTORC1 activity by promoting RSK-mediated raptor phosphorylation. Curr Biol. 2008 Sep 9;18(17):1269-77. [Content Brief]

[7]. Zhou Y, et al. Crucial roles of RSK in cell motility by catalysing serine phosphorylation of EphA2. Nat Commun. 2015 Jul 9;6:7679. [Content Brief]

[8]. Ali ES, et al. The mTORC1-SLC4A7 axis stimulates bicarbonate import to enhance de novo nucleotide synthesis. Mol Cell. 2022 Sep 1;82(17):3284-3298.e7. [Content Brief]

[9]. Dalby KN, et al. Identification of regulatory phosphorylation sites in mitogen-activated protein kinase (MAPK)-activated protein kinase-1a/p90rsk that are inducible by MAPK. J Biol Chem. 1998 Jan 16;273(3):1496-505. [Content Brief]

[10]. Carriere A, et al. The RSK factors of activating the Ras/MAPK signaling cascade. Front Biosci. 2008 May 1;13:4258-75. [Content Brief]

[11]. Anjum R, et al. The RSK family of kinases: emerging roles in cellular signalling. Nat Rev Mol Cell Biol. 2008 Oct;9(10):747-58. [Content Brief]

[12]. Shahbazian D, et al. The mTOR/PI3K and MAPK pathways converge on eIF4B to control its phosphorylation and activity. EMBO J. 2006 Jun 21;25(12):2781-91. [Content Brief]

[13]. Roux PP, et al. Tumor-promoting phorbol esters and activated Ras inactivate the tuberous sclerosis tumor suppressor complex via p90 ribosomal S6 kinase. Proc Natl Acad Sci U S A. 2004 Sep 14;101(37):13489-94. [Content Brief]

[14]. Zhao Y, et al. DEPTOR, an mTOR inhibitor, is a physiological substrate of SCF(βTrCP) E3 ubiquitin ligase and regulates survival and autophagy. Mol Cell. 2011 Oct 21;44(2):304-16. [Content Brief]

[15]. Anjum R, et al. The tumor suppressor DAP kinase is a target of RSK-mediated survival signaling. Curr Biol. 2005 Oct 11;15(19):1762-7. [Content Brief]

[16]. Buck M, et al. C/EBPbeta phosphorylation by RSK creates a functional XEXD caspase inhibitory box critical for cell survival. Mol Cell. 2001 Oct;8(4):807-16. [Content Brief]

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