14-3-3 Protein Eta (YWHAH) Antibody (FITC)

169€ (20 µg)
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935106861
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name
14-3-3 Protein Eta (YWHAH) Antibody (FITC)
category
Primary Antibodies
provider
Abbexa
reference
abx106462
Description
14-3-3 Protein Eta (YWHAH) Antibody (FITC) is a Rabbit Polyclonal antibody against 14-3-3 protein eta conjugated to FITC.
Documents del producto
Instrucciones
Data sheet
Product specifications
Category | Primary Antibodies |
Immunogen Target | 14-3-3 Protein Eta (YWHAH) |
Host | Rabbit |
Reactivity | Human |
Recommended Dilution | Optimal dilutions/concentrations should be determined by the end user. |
Clonality | Polyclonal |
Conjugation | FITC |
Isotype | IgG |
Purity | > 95% |
Purification | Purified by Protein G. |
Size 1 | 20 µg |
Size 2 | 50 µg |
Size 3 | 100 µg |
Size 4 | 200 µg |
Size 5 | 1 mg |
Form | Liquid |
Buffer | 0.01 M PBS, pH 7.4, 0.03% Proclin-300 and 50% Glycerol. |
Availability | Shipped within 5-10 working days. |
Storage | Aliquot and store at -20°C. Avoid exposure to light. Avoid repeated freeze/thaw cycles. |
Dry Ice | No |
UniProt ID | Q04917 |
Gene ID | 7533 |
OMIM | 113508 |
Alias | YWHAH, YWHA1, tyrosine 3-monooxygenase/tryptophan 5-monooxygenase activation protein eta |
Background | Antibody anti-YWHAH |
Status | RUO |
Descripción
YWHAH, a member of the 14-3-3 protein family, acts as an adaptor molecule that binds phosphorylated serine/threonine residues on target proteins, regulating their stability, localization, and function. YWHAH is highly expressed in the brain, where it is involved in synaptic plasticity, neurotransmitter release, and neuronal development. It interacts with key signaling molecules in pathways such as MAPK, PI3K/Akt, and dopamine receptor signaling, influencing cellular processes like survival, growth, and stress response. Dysregulation of YWHAH is associated with neurological disorders such as schizophrenia, Parkinson’s disease, and rheumatoid arthritis, where altered signaling contributes to disease pathogenesis. Elevated levels of YWHAH have been detected in autoimmune diseases, highlighting its role as a biomarker. Knockout studies demonstrate impaired synaptic transmission, defects in neuronal signaling, and altered stress adaptation, emphasizing its importance in brain function, neurodevelopment, and immune regulation.
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