| Code | CSB-RA963260A0HU |
| Size | US$210 |
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| Application | Recommended Dilution |
|---|---|
| IF | 1:50-1:200 |
| FC | 1:50-1:200 |
DUSP1, also known as MKP-1 (MAP kinase phosphatase 1), serves as a critical negative regulator of the MAPK signaling cascade, dephosphorylating both threonine and tyrosine residues on activated MAP kinases. This dual specificity phosphatase plays essential roles in controlling inflammatory responses, cellular stress adaptation, and metabolic regulation, making it a key target for researchers investigating signal transduction, immune function, and cancer biology.
This recombinant monoclonal antibody, clone 2C5, offers the reproducibility and consistency that demanding experimental workflows require. Developed using recombinant technology with a sequence-defined rabbit IgG framework, this antibody eliminates the lot-to-lot variability that can compromise longitudinal studies and multi-site collaborations. The defined molecular composition ensures that your results remain comparable across experiments, whether you're establishing baseline data or building on previous findings.
Validation studies demonstrate reliable performance in immunofluorescence and flow cytometry applications. Immunofluorescence analysis of MCF-7 breast cancer cells reveals clear cytoplasmic and nuclear staining patterns at dilutions of 1:50 to 1:200, consistent with DUSP1's known subcellular localization. Flow cytometric analysis using 786-O renal carcinoma cells confirms specific detection with distinct population shifts compared to isotype controls, supporting quantitative single-cell analysis of DUSP1 expression levels.
The antibody is supplied in a stabilized liquid format containing glycerol for convenient long-term storage at -20°C or -80°C, ready for immediate use without reconstitution. For researchers studying MAPK pathway dynamics, inflammatory signaling, glucocorticoid responses, or tumor microenvironment regulation, this antibody provides a dependable tool for visualizing and quantifying DUSP1 expression in human cell models.
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