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  2. Monoclonal

SMC-399

ATP7B Antibody, Clone L62/29

Cannot supply to this region.

SKU:
SMC-399
Additional Names:
ATP7B, ATPase Cu++ transporting beta polypeptide, ATPase Cu(2+) transporting beta polypeptide, Copper pump 2, Copper transporting ATPase 2, PWD, Toxic milk, tx, WC1, WD, Wilson disease associated protein, WND, WND/140 kDa
Application:
IHC, WB, IF, ICC, IP
Concentration:
1 mg/ml
Species Reactivity:
Human
Purification:
Protein G Purified
Storage Conditions:
-20[o]C
Supplier:
StressMarq Biosciences
Host:
Mouse
Reactivities:
Human, Mouse, Rat
ABP:
IMP-GEN-2015-06 < 10% Serum <100ml
Buffer:
PBS pH7.4, 50% glycerol, 0.09% sodium azide
Immunogen:
Synthetic peptide amino acids 3-21 (cytoplasmic N-terminus) of human Copper-transporting ATPase2
Clone:
L62/29 (Formerly sold as S62-29)
Uniprot:
B7ZLR4
Synonyms:
ATPase, Cu(2+)- transporting, beta polypeptide;ATPase, Cu++ transporting, beta polypeptide;copper pump 2;copper-transporting ATPase 2;copper-transporting protein ATP7B;PWD;WC1;WD;Wilson disease-associated protein;WND
Extra Details:
ATP7B is a copper-transporting P-type ATPase critical for maintaining systemic and neuronal copper balance. Working in tandem with ATP7A, ATP7B facilitates the sequestration of intracellular copper into the vesicular secretory pathway, enabling its export and preventing toxic accumulation. This function is essential for copper detoxification, particularly in the liver, where ATP7B mediates biliary copper excretion. ATP7B operates by using ATP hydrolysis to transport copper ions across cellular membranes. Three isoforms of the ATP7B gene have been identified: isoform A is expressed in the liver, kidney, and brain; isoform B is brain-specific; and the WND/140 kDa isoform localizes to mitochondria, suggesting a role in mitochondrial copper regulation and oxidative stress response. Mutations in ATP7B cause Wilson disease, a rare autosomal recessive disorder characterized by copper accumulation in the liver and brain. Neurological manifestations include tremors, dystonia, psychiatric disturbances, and cognitive decline-highlighting the protein's importance in neural function and copper detoxification. In neuroscience, ATP7B is increasingly recognized for its role in protecting neurons from copper-induced oxidative damage, a contributing factor in neurodegenerative diseases such as Alzheimer's and Parkinson's. Dysregulation of ATP7B may exacerbate mitochondrial dysfunction and protein aggregation, linking copper imbalance to broader neurodegenerative mechanisms. As a key regulator of copper metabolism, ATP7B represents a promising target for therapeutic strategies aimed at restoring metal homeostasis in neurodegenerative disease.
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