R Recombinant
Recombinant: Superior lot-to-lot consistency, continuous supply, and animal-free manufacturing.
DYRK2 (D9A3K) Rabbit mAb #11921
Filter:
- WB
Supporting Data
REACTIVITY | H M R Hm Mk |
SENSITIVITY | Endogenous |
MW (kDa) | 60, 66 |
Source/Isotype | Rabbit IgG |
Application Key:
- WB-Western Blotting
Species Cross-Reactivity Key:
- H-Human
- M-Mouse
- R-Rat
- Hm-Hamster
- Mk-Monkey
Product Information
Product Usage Information
Application | Dilution |
---|---|
Western Blotting | 1:1000 |
Storage
Supplied in 10 mM sodium HEPES (pH 7.5), 150 mM NaCl, 100 µg/ml BSA, 50% glycerol and less than 0.02% sodium azide. Store at –20°C. Do not aliquot the antibody.
Protocol
Specificity / Sensitivity
DYRK2 (D9A3K) Rabbit mAb recognizes endogenous levels of total DYRK2 protein. The antibody recognizes both known isoforms, 66 and 60 kDa, of DYRK2.
Species Reactivity:
Human, Mouse, Rat, Hamster, Monkey
Source / Purification
Monoclonal antibody is produced by immunizing animals with a synthetic peptide corresponding to residues surrounding Gly545 of human DYRK2 protein.
Background
The DYRK family includes several dual-specificity tyrosine-phosphorylated and regulated kinases capable of phosphorylating proteins at both Tyr and Ser/Thr residues (1). The DYRK family was identified based on homology to the yeast Yak1 (2) and the Drosophila minibrain (mnb) kinases (3). Seven mammalian isoforms have been discovered, including DYRK1A, DYRK1B, DYRK1C, DYRK2, DYRK3, DYRK4, and DYRK4B. Differences in substrate specificity, expression, and subcellular localization are seen across the DYRK family (4,5). All DYRK proteins have a Tyr-X-Tyr motif in the catalytic domain activation loop; phosphorylation of the second Tyr residue (e.g. Tyr312 of DYRK1A) is necessary for kinase activity. DYRKs typically autophosphorylate the Tyr residue within their activation loop, but phosphorylate substrates at Ser and Thr residues (1,6).
DYRK2 is thought to play a role in checkpoint control of the cell cycle. DYRK2 can phosphorylate p53 at Ser46 following cellular damage, leading to activation of the apoptotic response (7). Research studies have demonstrated overexpression of DYRK2 in esophageal and lung adenocarcinomas (8), with DYRK2 expression levels acting as a potential predictor of chemotherapy treatment outcomes in non-small cell lung cancer (9).
DYRK2 is thought to play a role in checkpoint control of the cell cycle. DYRK2 can phosphorylate p53 at Ser46 following cellular damage, leading to activation of the apoptotic response (7). Research studies have demonstrated overexpression of DYRK2 in esophageal and lung adenocarcinomas (8), with DYRK2 expression levels acting as a potential predictor of chemotherapy treatment outcomes in non-small cell lung cancer (9).
- Becker, W. and Joost, H.G. (1999) Prog. Nucleic Acid Res. Mol. Biol. 62, 1-17.
- Garrett, S. and Broach, J. (1989) Genes Dev. 3, 1336-1348.
- Tejedor, F. et al. (1995) Neuron 14, 287-301.
- Kentrup, H. et al. (1996) J. Biol. Chem. 271, 3488-3495.
- Becker, W. et al. (1998) J. Biol. Chem. 273, 25893-25902.
- Lochhead, P.A. et al. (2005) Cell 121, 925-936.
- Taira, N. et al. (2007) Mol Cell 25, 725-38.
- Miller, C.T. et al. (2003) Cancer Res 63, 4136-43.
- Yamashita, S. et al. (2009) Anticancer Res 29, 2753-7.
限制使用
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For Research Use Only. Not For Use In Diagnostic Procedures.
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