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Western blot analysis of extracts from Jurkat cells and HUVEC cells, using p44 MAPK antibody.
Western blot analysis of extracts from Jurkat cells and HUVEC cells, using p44 MAPK antibody.
Western blot analysis of extracts from Jurkat cells and HUVEC cells, using p44 MAPK antibody.

MAPK3 Antibody

Research Use Only
CSB-PA272447
Cusabio
ApplicationsWestern Blot, ELISA
Product group Antibodies
ReactivityHuman
TargetMAPK3
Price on request
Packing Size
Large volume orders?
Order with a bulk request

Overview

  • Supplier
    Cusabio
  • Product Name
    MAPK3 Antibody
  • Delivery Days Customer
    20
  • Applications
    Western Blot, ELISA
  • Certification
    Research Use Only
  • Clonality
    Polyclonal
  • Conjugate
    Unconjugated
  • Gene ID5595
  • Target name
    MAPK3
  • Target description
    mitogen-activated protein kinase 3
  • Target synonyms
    ERK1; ERK-1; ERT2; extracellular signal-regulated kinase 1; extracellular signal-related kinase 1; HS44KDAP; HUMKER1A; insulin-stimulated MAP2 kinase; MAPK 1; microtubule-associated protein 2 kinase; mitogen-activated protein kinase 3; P44ERK1; p44-ERK1; P44MAPK; p44-MAPK; PRKM3
  • Host
    Rabbit
  • Isotype
    IgG
  • Protein IDP27361
  • Protein Name
    Mitogen-activated protein kinase 3
  • Scientific Description
    Serine/threonine kinase which acts as an essential component of the MAP kinase signal transduction pathway. MAPK1/ERK2 and MAPK3/ERK1 are the 2 MAPKs which play an important role in the MAPK/ERK cascade. They participate also in a signaling cascade initiated by activated KIT and KITLG/SCF. Depending on the cellular context, the MAPK/ERK cascade mediates diverse biological functions such as cell growth, adhesion, survival and differentiation through the regulation of transcription, translation, cytoskeletal rearrangements. The MAPK/ERK cascade plays also a role in initiation and regulation of meiosis, mitosis, and postmitotic functions in differentiated cells by phosphorylating a number of transcription factors. About 160 substrates have already been discovered for ERKs. Many of these substrates are localized in the nucleus, and seem to participate in the regulation of transcription upon stimulation. However, other substrates are found in the cytosol as well as in other cellular organelles, and those are responsible for processes such as translation, mitosis and apoptosis. Moreover, the MAPK/ERK cascade is also involved in the regulation of the endosomal dynamics, including lysosome processing and endosome cycling through the perinuclear recycling compartment (PNRC); as well as in the fragmentation of the Golgi apparatus during mitosis. The substrates include transcription factors (such as ATF2, BCL6, ELK1, ERF, FOS, HSF4 or SPZ1), cytoskeletal elements (such as CANX, CTTN, GJA1, MAP2, MAPT, PXN, SORBS3 or STMN1), regulators of apoptosis (such as BAD, BTG2, CASP9, DAPK1, IER3, MCL1 or PPARG), regulators of translation (such as EIF4EBP1) and a variety of other signaling-related molecules (like ARHGEF2, FRS2 or GRB10). Protein kinases (such as RAF1, RPS6KA1/RSK1, RPS6KA3/RSK2, RPS6KA2/RSK3, RPS6KA6/RSK4, SYK, MKNK1/MNK1, MKNK2/MNK2, RPS6KA5/MSK1, RPS6KA4/MSK2, MAPKAPK3 or MAPKAPK5) and phosphatases (such as DUSP1, DUSP4, DUSP6 or DUSP16) are other substrates which enable the propagation the MAPK/ERK signal to additional cytosolic and nuclear targets, thereby extending the specificity of the cascade. Charest D.L., Mol. Cell. Biol. 13:4679-4690(1993). Owaki H., Biochem. Biophys. Res. Commun. 182:1416-1422(1992). Zhang Y., Mol. Cell. Proteomics 4:1240-1250(2005).
  • Reactivity
    Human
  • Storage Instruction
    -20°C or -80°C
  • UNSPSC
    12352203