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Pan Na Channel alpha Subunit (D2I9C) Rabbit Monoclonal Antibody (BSA and Azide Free) #55247

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  • WB

    Product Specifications

    REACTIVITY H M R
    SENSITIVITY Endogenous
    MW (kDa) 230-260
    Source/Isotype Rabbit IgG
    Application Key:
    • WB-Western Blotting 
    Species Cross-Reactivity Key:
    • H-Human 
    • M-Mouse 
    • R-Rat 

    Product Information

    Product Usage Information

    This product is the carrier free version of product #14380. All data were generated using the same antibody clone in the standard formulation which contains BSA and glycerol.

    This formulation is ideal for use with technologies requiring specialized or custom antibody labeling, including fluorophores, metals, lanthanides, and oligonucleotides. It is not recommended for ChIP, ChIP-seq, CUT&RUN or CUT&Tag assays. If you require a carrier free formulation for chromatin profiling, please contact us. Optimal dilutions/concentrations should be determined by the end user.

    BSA and Azide Free antibodies are quality control tested by size exclusion chromatography (SEC) to determine antibody integrity.

    Formulation

    Supplied in 1X PBS (10 mM Na2HPO4, 3 mM KCl, 2 mM KH2PO4, and 140 mM NaCl (pH 7.8)). BSA and Azide Free.

    For standard formulation of this product see product #14380

    Storage

    Store at -20°C. This product will freeze at -20°C so it is recommended to aliquot into single-use vials to avoid multiple freeze/thaw cycles. A slight precipitate may be present and can be dissolved by gently vortexing. This will not interfere with antibody performance.

    Specificity / Sensitivity

    Pan Na Channel alpha Subunit (D2I9C) Rabbit Monoclonal Antibody (BSA and Azide Free) recognizes endogenous levels of Na channel α subunits.

    Species Reactivity:

    Human, Mouse, Rat

    Source / Purification

    Monoclonal antibody is produced by immunizing animals with a synthetic peptide corresponding to cytoplasmic residues between repeats of III and IV of all human Na channel α subunits.

    Background

    Voltage gated sodium channels are composed of a large alpha subunit and auxiliary beta subunits. The alpha subunit has 4 homologous domains, with each domain containing 6 transmembrane segments. These segments function as the voltage sensor and sodium permeable pore. Upon change of membrane potential, the sodium channel is activated, which allows sodium ions to flow through (1,2). When associated with beta subunits or other accessory proteins, the alpha subunit is regulated at the level of cell surface expression, kinetics, and voltage dependence (3,4).

    There are 9 mammalian alpha subunits, named Nav1.1-Nav1.9 (5). These alpha subunits differ in tissue specificity and biophysical functions (6,7). Seven of these subunits are essential for the initiation and propagation of action potentials in the central and peripheral nervous system while Nav1.4 and Nav1.5 are mainly expressed in skeletal muscle and cardiac muscle (8,9). Mutations in these alpha channel subunits have been identified in patients with epilepsy, seizure, ataxia, sensitivity to pain, and cardiomyopathy (reviewed in 10).

    Alternate Names

    BFIC3; BFIS3; BFIS5; BFNIS; cardiac sodium channel alpha subunit; cardiac tetrodotoxin-insensitive voltage-dependent sodium channel alpha subunit; CDCD2; CerIII; CIAT; CMD1E; CMPD2; CMS16; CTC-264K15.6; EA9; EIEE11; EIEE13; EIEE6; ETHA; FEB3; FEB3A; FEB3B; FEPS2; FEPS3; FHM3; GEFSP2; GEFSP7; HB1; HB2; HBA; HBBD; HBSC II; HBSCI; HBSCII; HH1; hNa6/Scn8a voltage-gated sodium channel; hNaN; hNE-Na; HOKPP2; hPN3; HSAN2D; HSAN7; HYKPP; HYPP; ICCD; IVF; LQT3; MED; motor endplate disease; MYOCL2; Na(v)1.2; Na(V)1.4; NAC1; NAC1A; NAC2; NaCh6; NaG; NaN; Nav1.1; Nav1.2; Nav1.4; Nav1.5; Nav1.6; Nav1.7; Nav1.8; NAV1.9; Nav2.1; Nav2.2; NE-NA; NENA; Neuroendocrine sodium channel; Peripheral nerve sodium channel 3; Peripheral nerve sodium channel 5; Peripheral sodium channel 1; PFHB1; PN1; PN3; PN4; PN5; Putative voltage-gated sodium channel subunit alpha Nax; SCN1; SCN10A; SCN11A; SCN12A; SCN1A; SCN2A; SCN2A1; SCN2A2; SCN4A; SCN5A; SCN6A; SCN7A; SCN8A; SCN9A; SCNAA; SCNBA; Sensory neuron sodium channel 2; SFNP; skeletal muscle sodium channel alpha subunit; skeletal muscle voltage-dependent sodium channel type IV alpha subunit; SkM1; SMEI; SNS; SNS-2; SNS2; Sodium channel protein brain I subunit alpha; Sodium channel protein brain II subunit alpha; Sodium channel protein cardiac and skeletal muscle subunit alpha; Sodium channel protein cardiac muscle subunit alpha; Sodium channel protein skeletal muscle subunit alpha; Sodium channel protein type 1 subunit alpha; Sodium channel protein type 10 subunit alpha; Sodium channel protein type 11 subunit alpha; Sodium channel protein type 2 subunit alpha; Sodium channel protein type 4 subunit alpha; Sodium channel protein type 5 subunit alpha; Sodium channel protein type 7 subunit alpha; Sodium channel protein type 8 subunit alpha; Sodium channel protein type 9 subunit alpha; Sodium channel protein type I subunit alpha; Sodium channel protein type II subunit alpha; Sodium channel protein type IV subunit alpha; Sodium channel protein type IX subunit alpha; sodium channel protein type V alpha subunit; Sodium channel protein type V subunit alpha; Sodium channel protein type VII subunit alpha; Sodium channel protein type VIII subunit alpha; Sodium channel protein type X subunit alpha; Sodium channel protein type XI subunit alpha; sodium channel protein, brain I alpha subunit; sodium channel protein, brain type 2 alpha subunit; sodium channel voltage gated type 1 alpha subunit; sodium channel, voltage gated, type VIII, alpha subunit; sodium channel, voltage-gated, type I, alpha polypeptide; sodium channel, voltage-gated, type I, alpha subunit; sodium channel, voltage-gated, type II, alpha 1 polypeptide; sodium channel, voltage-gated, type II, alpha 2 polypeptide; sodium channel, voltage-gated, type II, alpha subunit; sodium channel, voltage-gated, type IV, alpha subunit; sodium channel, voltage-gated, type IX, alpha polypeptide; sodium channel, voltage-gated, type IX, alpha subunit; sodium channel, voltage-gated, type V, alpha subunit; sodium channel, voltage-gated, type VI, alpha polypeptide; sodium channel, voltage-gated, type VII, alpha; sodium channel, voltage-gated, type VII, alpha polypeptide; sodium channel, voltage-gated, type VII, alpha subunit; sodium channel, voltage-gated, type X, alpha polypeptide; sodium channel, voltage-gated, type X, alpha subunit; sodium channel, voltage-gated, type XI, alpha polypeptide; sodium channel, voltage-gated, type XI, alpha subunit; sodium channel, voltage-gated, type XII, alpha polypeptide; sodium voltage-gated channel alpha subunit 1; sodium voltage-gated channel alpha subunit 10; sodium voltage-gated channel alpha subunit 11; sodium voltage-gated channel alpha subunit 2; sodium voltage-gated channel alpha subunit 4; sodium voltage-gated channel alpha subunit 5; sodium voltage-gated channel alpha subunit 7; sodium voltage-gated channel alpha subunit 8; sodium voltage-gated channel alpha subunit 9; SSS1; VF1; voltage-dependent sodium channel alpha subunit; voltage-gated sodium channel alpha subunit Nav1.7; voltage-gated sodium channel Nav1.9; voltage-gated sodium channel subtype II; Voltage-gated sodium channel subunit alpha Nav1.1; Voltage-gated sodium channel subunit alpha Nav1.2; Voltage-gated sodium channel subunit alpha Nav1.4; Voltage-gated sodium channel subunit alpha Nav1.5; Voltage-gated sodium channel subunit alpha Nav1.6; Voltage-gated sodium channel subunit alpha Nav1.7; Voltage-gated sodium channel subunit alpha Nav1.8; Voltage-gated sodium channel subunit alpha Nav1.9; voltage-gated sodium channel type II alpha subunit; voltage-gated sodium channel type VIII alpha protein

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