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SMC-344D-APC

TRPC5 Antibody, Clone N67/15: APC

Cannot supply to this region.

SKU:
SMC-344D-APC
Additional Names:
Htrp5, Short transient receptor potential channel 5, TRP5
Application:
IHC, WB, IF, ICC, IP, Microarray
Concentration:
1 mg/ml
Species Reactivity:
Human
Purification:
Protein G Purified
Storage Conditions:
See Manual
Supplier:
StressMarq Biosciences
Host:
Mouse
Reactivities:
Human, Mouse, Rat
ABP:
IMP-GEN-2015-06 < 10% Serum <100ml
Buffer:
95.46mM Phosphate, 2.48mM MES and 2mM EDTA
Immunogen:
Synthetic peptide amino acids 827-845 of human TrpC5 (also known as short transient receptor potential channel 5, and Htrp5)
Clone:
N67/15 (Formerly sold as S67-15)
Uniprot:
Q9UL62
Synonyms:
hTRP5;PPP1R159;protein phosphatase 1, regulatory subunit 159;short transient receptor potential channel 5;transient receptor potential channel 5;transient receptor protein 5;TRP-5;TRP5
Extra Details:
TRPC5 (Transient Receptor Potential Cation Channel Subfamily C Member 5) is a non-selective, calcium-permeable ion channel belonging to the TRPC family of transient receptor potential channels. It forms functional homo- or hetero-multimeric complexes, particularly with TRPC1, and is activated by extracellular reduced thioredoxin-a redox-sensitive mechanism that links TRPC5 to oxidative stress signaling. TRPC5 is highly expressed in the brain, where it contributes to calcium homeostasis, synaptic plasticity, and neuronal excitability. It is involved in key processes such as fear response, dendritic spine remodeling, and neurodevelopment. Recent studies have also implicated TRPC5 in the modulation of anesthetic responses, including sensitivity to agents like chloroform, halothane, and propofol. In the context of neurodegenerative disease, TRPC5's sensitivity to oxidative and inflammatory signals positions it as a potential mediator of neuronal injury. Dysregulated TRPC5 activity may exacerbate calcium overload, mitochondrial dysfunction, and excitotoxicity-hallmarks of conditions such as Alzheimer's disease, Parkinson's disease, and multiple sclerosis. Given its dual role in redox signaling and calcium dynamics, TRPC5 is emerging as a promising target for therapeutic intervention in neurodegenerative and neuroinflammatory disorders.
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