Phospho-Akt (Thr308) (244F9) Rabbit mAb

Phospho-Akt (Thr308) (244F9) R

abbit mAb
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  • Cell Signaling Technology已认证
  • USA
  • 2025年07月16日
  • W, IP
  • H,M,R,Mk
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    • 详细信息
    • 询价记录
    • 技术资料
    • 抗体英文名

      Phospho-Akt (Thr308) (244F9) Rabbit mAb

    • 抗原

      synthetic phosphopeptide corresponding to residues around Thr308 of mouse Akt

    • 应用范围

      W, IP

    • 库存

      大量

    • 保质期

      详见说明书

    • 供应商

      CST

    • 级别

      详见MSDS文件

    • 适应物种

      H,M,R,Mk

    • 是否单克隆

      1

    • 保存条件

      -20°c

    • 规格

      100 ul (10 western blots)/300 ul (30 western blots)/carrier free & custom formulation / quantity

    规格:产品价格:¥请询价
    规格:100 ul (10 western blots)产品价格:¥请询价
    规格:300 ul (30 western blots)产品价格:¥请询价
    规格:carrier free & custom formulation / quantity产品价格:¥请询价

    pathway more info application references datasheet PDF MSDS PDF protocols

    Applications Key:  W=Western Blotting  IP=Immunoprecipitation
    Reactivity Key:  H=Human  M=Mouse  R=Rat  Mk=Monkey
    Species cross-reactivity is determined by western blot. Species enclosed in parentheses are predicted to react based on 100% sequence homology.

    Applications Reactivity Sensitivity MW (kDa) Isotype
    W IP H M R Mk Endogenous 60 Rabbit IgG
    Protocols
    Specificity / Sensitivity

    Phospho-Akt (Thr308) (244F9) Rabbit mAb detects endogenous levels of Akt only when phosphorylated at threonine 308.

    Source / Purification

    Monoclonal antibody is produced by immunizing animals with a synthetic phosphopeptide corresponding to residues around Thr308 of mouse Akt.

    Western Blotting

    Western Blotting

    Western blot analysis of extracts from NIH/3T3 cells, untreated, PDGF-treated, or PDGF-treated after treatment with wortmannin and/or rapamycin as indicated, using Phospho-Akt (Thr308) (244F9) Rabbit mAb (upper) or Akt Antibody #9272 (lower).

    Background

    Akt, also referred to as PKB or Rac, plays a critical role in controlling survival and apoptosis (1-3). This protein kinase is activated by insulin and various growth and survival factors to function in a wortmannin-sensitive pathway involving PI3 kinase (2,3). Akt is activated by phospholipid binding and activation loop phosphorylation at Thr308 by PDK1 (4) and by phosphorylation within the carboxy terminus at Ser473. The previously elusive PDK2 responsible for phosphorylation of Akt at Ser473 has been identified as mammalian target of rapamycin (mTOR) in a rapamycin-insensitive complex with rictor and Sin1 (5,6). Akt promotes cell survival by inhibiting apoptosis through phosphorylation and inactivation of several targets, including Bad (7), forkhead transcription factors (8), c-Raf (9), and caspase-9. PTEN phosphatase is a major negative regulator of the PI3 kinase/Akt signaling pathway (10). LY294002 is a specific PI3 kinase inhibitor (11). Another essential Akt function is the regulation of glycogen synthesis through phosphorylation and inactivation of GSK-3α and β (12,13). Akt may also play a role in insulin stimulation of glucose transport (12). In addition to its role in survival and glycogen synthesis, Akt is involved in cell cycle regulation by preventing GSK-3β-mediated phosphorylation and degradation of cyclin D1 (14) and by negatively regulating the cyclin dependent kinase inhibitors p27 Kip (15) and p21 Waf1/CIP1 (16). Akt also plays a critical role in cell growth by directly phosphorylating mTOR in a rapamycin-sensitive complex containing raptor (17). More importantly, Akt phosphorylates and inactivates tuberin (TSC2), an inhibitor of mTOR within the mTOR-raptor complex (18,19).

    1. Franke, T.F. et al. (1997) Cell 88, 435-7.
    2. Burgering, B.M. and Coffer, P.J. (1995) Nature 376, 599-602.
    3. Franke, T.F. et al. (1995) Cell 81, 727-36.
    4. Alessi, D.R. et al. (1996) EMBO J 15, 6541-51.
    5. Sarbassov, D.D. et al. (2005) Science 307, 1098-101.
    6. Jacinto, E. et al. (2006) Cell 127, 125-37.
    7. Cardone, M.H. et al. (1998) Science 282, 1318-21.
    8. Brunet, A. et al. (1999) Cell 96, 857-68.
    9. Zimmermann, S. and Moelling, K. (1999) Science 286, 1741-4.
    10. Cantley, L.C. and Neel, B.G. (1999) Proc Natl Acad Sci USA 96, 4240-5.
    11. Vlahos, C.J. et al. (1994) J Biol Chem 269, 5241-8.
    12. Hajduch, E. et al. (2001) FEBS Lett 492, 199-203.
    13. Cross, D.A. et al. (1995) Nature 378, 785-9.
    14. Diehl, J.A. et al. (1998) Genes Dev 12, 3499-511.
    15. Gesbert, F. et al. (2000) J Biol Chem 275, 39223-30.
    16. Zhou, B.P. et al. (2001) Nat Cell Biol 3, 245-52.
    17. Navé, B.T. et al. (1999) Biochem J 344 Pt 2, 427-31.
    18. Inoki, K. et al. (2002) Nat Cell Biol 4, 648-57.
    19. Manning, B.D. et al. (2002) Mol Cell 10, 151-62.
    Application References

    Have you published research involving the use of our products? If so we'd love to hear about it. Please let us know !

    Companion Products

    Rabbit Monoclonals Produced Using Epitomics® Technology, U.S. Patent No. 5,675,063.


    For Research Use Only. Not For Use In Diagnostic Procedures.

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