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Phospho-TFE3 (Ser321) Matched Antibody Pair #70104

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  • ELISA

    Product Specifications

    REACTIVITY H M R Mk
    Application Key:
    • ELISA-ELISA 
    Species Cross-Reactivity Key:
    • H-Human 
    • M-Mouse 
    • R-Rat 
    • Mk-Monkey 

    Product Information

    Product Usage Information

    Matched Antibody Pairs consist of capture and detection antibodies that bind to non-overlapping epitopes. For specific identification of the capture and detection antibodies in this pair, please refer to the data figure caption. Optimal dilutions/concentrations should be determined by the end user.

    Formulation

    Supplied in 1X PBS (10 mM Na2HPO4, 3 mM KCl, 2 mM KH2PO4, and 140 mM NaCl (pH 7.8)). BSA and Azide Free.

    Storage

    Store at -20ºC. This product will freeze at -20ºC so it is recommended to aliquot into single-use vials to avoid multiple freeze/thaw cycles. A slight precipitate may be present and can be dissolved by gently vortexing. This will not interfere with antibody performance.

    Product Description

    The Phospho-TFE3 (Ser321) Matched Antibody Pair is ideal for use with immunoassay technologies and high-throughput ELISA platforms requiring antibody pairs with specialized or custom antibody labeling. Labels include fluorophores, lanthanides, biotin, and beads. Platforms requiring conjugated Matched Antibody Pairs include MSD, Quanterix Simoa, Alpha Technology (AlphaScreen, AlphaLISA, LANCE, HTRF), and Luminex.

    Learn how Matched Antibody Pairs move your projects forward, faster at cst-science.com/matched-antibody-pairs.

    Background

    Transcription factor E3 (TFE3) is a member of a family of basic helix-loop-helix leucine zipper transcription factors that include MITF, TFEB, TFE3, and TFEC. Members of this family form heterodimers with each other, bind the same DNA sequences, and undergo the same types of post-translational modifications, including sumoylation (1). Research studies indicate that TFE3 and other family members play roles in development, organelle biogenesis, nutrient sensing, autophagy, and energy metabolism (2,3). Additional studies report that TFE3 controls the gate for pluripotent cells to exit the state of pluripotency prior to differentiation (4). Translocations involving the TFE3 gene region have been identified in a number of tumors, including sporadic renal cell tumors. Several specific translocations that result in kidney cancer and involve the TFE3 gene have been described and characterized in detail (5).

    Phosphorylation of TFE3 at Ser321 by mTOR leads to cytoplasmic retention analogous to Ser211 on TFEB (6). Dephosphorylation of TFEB and TFE3 by protein phosphatase 2A in response to oxidative stress leads to their nuclear translocation and activation (7).

    Alternate Names

    BHLHE33; class E basic helix-loop-helix protein 33; DKFZp761J1810; Putative uncharacterized protein DKFZp761J1810; RCCP2; RCCX1; TFE3; TFEA; transcription factor binding to IGHM enhancer 3; transcription factor E family, member A; Transcription factor E3; Transcription factor for IgH enhancer; transcription factor for immunoglobulin heavy-chain enhancer 3

    For Research Use Only. Not for Use in Diagnostic Procedures.
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