WB result of AMPylation Recombinant Mouse pAb
Primary antibody: AMPylation Recombinant Mouse pAb at 1/1000 dilution
Lane 1: mouse liver lysate 20 µg
Lane 2: mouse spleen lysate 20 µg
Secondary antibody: Goat Anti-mouse IgG, (H+L), HRP conjugated at 1/10000 dilution
Predicted MW: multiple bands
Observed MW: multiple bands
Product Details
Product Details
Product Specification
| Host | Mouse |
| Antibody Type | Polyclonal antibody |
| Isotype | IgG2b,k |
| Application | WB |
| Concentration | 2 mg/ml |
| Conjugation | Unconjugated |
| Physical Appearance | Liquid |
| Storage Buffer | PBS, 40% Glycerol, 0.05% BSA, 0.02% sodium azide |
| Stability & Storage | 12 months from date of receipt / reconstitution, -20 °C as supplied |
Dilution
| application | dilution | species |
| WB | 1:400 | Species independent |
Background
AMPylation, also known as adenylylation, is a reversible post-translational modification of proteins. In this process, a class of enzymes called "AMPylases" covalently attaches an AMP (adenosine monophosphate) group from ATP to serine, threonine, or tyrosine residues on target proteins. This dynamic process is precisely regulated by "writers" (AMPylases) and "erasers" (de-AMPylases), thereby fine-tuning the function of the modified proteins. AMPylation was first discovered in 1967 in the regulation of bacterial glutamine synthetase, and its biological significance is profound. It is not only exploited by pathogenic bacteria to hijack host cell signaling to promote infection, but also plays critical physiological roles in humans—for example, the ER-localized enzyme FICD regulates the activity of the chaperone BiP in response to unfolded protein stress. Recent studies have further revealed that AMPylation plays important roles in various physiopathological processes, including metabolic regulation, neurodevelopment, diabetes, and cancer metastasis.
Picture
Picture
Western Blot
