Anti-Human/Mouse/Rat ANXA2 Antibody with collaborator-tested evidence for WB, IHC.
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Anti-Human/Mouse/Rat ANXA2 Antibody is a research-use antibody from Elabscience for studying ANXA2 in WB, IHC workflows with listed reactivity for Human, Mouse, Rat. Specifications and supporting documents below should be reviewed when planning the experiment.
Fully tested in-house by ABMIUM. Highest confidence. Non-conformities fully supported under the ABMIUM Product Promise.
Quality verified. Independent collaborator or expected-performance data available. Product meets ABMIUM quality standards.
Expected to work based on structural and biochemical data. Not yet directly tested by ABMIUM or a collaborator. No non-conformity support for this combination.
Not recommended for this application or species/sample combination. This may indicate either evidence of unsuitability or that the combination has not been tested and therefore cannot currently be recommended.
Evidence status by application and model.
| Species | WB | IHC-P | IHC-Fr | IF/ICC | Flow Cyt | IP | ChIP | IHC |
|---|---|---|---|---|---|---|---|---|
| Human | ||||||||
| Mouse | ||||||||
| Rat |
This product is manufactured by Elabscience and sold through ABMIUM without relabelling.
ABMIUM supports global orders. Availability, shipping requirements and applicable import arrangements are confirmed before fulfilment where required.
Yes. Send your target, sample, application and experimental conditions through ABMIUM MATCH or technical support.
Unless the listing expressly states otherwise, ABMIUM products are supplied for research use only and are not for diagnostic or therapeutic use.
Annexin A2 (ANXA2) is a calcium-dependent phospholipid-binding annexin family protein involved in membrane-associated processes, signal transduction and regulation of cellular growth.
Biological function: ANXA2 binds phospholipids in a calcium-dependent manner and participates in membrane organisation and signalling. NCBI describes annexin A2 family biology in cellular growth and signal-transduction pathways and identifies an autocrine role that can enhance osteoclast formation and bone resorption.
