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          • Primary Antibodies ›
          • SCN5A Antibodies

          Proteintech

          SCN5A Monoclonal Antibody (1C2B3)

          View all (10) SCN5A antibodies

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          Datasheet
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          Datasheet
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          Cite SCN5A Monoclonal Antibody (1C2B3)

          • Antibody Testing Data (4)
          SCN5A Antibody in Immunohistochemistry (Paraffin) (IHC (P))
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          SCN5A Antibody in Immunohistochemistry (Paraffin) (IHC (P))
          Group 53 Created with Sketch.

          FIGURE: 1 / 4

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          SCN5A Antibody (68273-1-IG) in IHC (P)

          Immunohistochemical analysis of paraffin-embedded mouse skeletal muscle tissue slide using 68273-1-Ig (SCN5A antibody) at dilution of 1:200 (under 40x lens). Heat mediated antigen retrieval with Tris-EDTA buffer (pH 9.0). {{ $ctrl.currentElement.advancedVerification.fullName }} validation info. View more
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          SCN5A Antibody in Immunohistochemistry (Paraffin) (IHC (P))
          SCN5A Antibody in Western Blot (WB)
          SCN5A Antibody in Western Blot (WB)
          SCN5A Antibody in Flow Cytometry (Flow)

          Product Details

          68273-1-IG

          Applications
          Tested Dilution
          Publications

          Western Blot (WB)

          1:2,000-1:10,000
          -

          Immunohistochemistry (Paraffin) (IHC (P))

          1:50-1:500
          -

          Flow Cytometry (Flow)

          0.4 µg/1x10^6 cell suspension
          -

          ELISA (ELISA)

          Assay-dependent
          -
          Product Specifications

          Species Reactivity

          Human, Rabbit, Rat

          Host/Isotype

          Mouse / IgG1

          Class

          Monoclonal

          Type

          Antibody

          Clone

          1C2B3

          Immunogen

          Recombinant protein
          View immunogen

          Conjugate

          Unconjugated Unconjugated Unconjugated
          • CoraLite Plus 488
          • Request custom conjugation

          Form

          Liquid

          Purification

          Protein G

          Storage buffer

          PBS with 50% glycerol

          Contains

          0.02% sodium azide

          Storage conditions

          -20°C

          Shipping conditions

          Wet ice

          Product Specific Information

          Immunogen sequence: ATIAETEEKE KRFQEAMEML KKEHEALTIR GVDTVSRSSL EMSPLAPVNS HERRSKRRKR MSSGTEECGE DRLPKSDSED GPRAMNHLSL TRGLSRTSMK PRSSRGSIFT FRRRDLGSEA DFADDENSTA GESESHRTSL LVPWPLRRTS AQGQPSPGTS APGHALHGKK NSTVDCNGVV SLLGAGDPEA TSPGSHLLRP VMLEHPPDTT TPSEEPGGPQ MLTSQAPCVD GFEEPGARQR ALSAVSVLTS ALEELEESRH KCPPCWNRLA QRYLIWECCP LWMSIKQGVK LVV

          Target Information

          Scn5a is an integral membrane protein and tetrodotoxin-resistant voltage-gated sodium channel subunit. Scn5a is found primarily in cardiac muscle and is responsible for the initial upstroke of the action potential in an electrocardiogram. Defects in Scn5a are a cause of long QT syndrome type 3 (LQT3), an autosomal dominant cardiac disease. Alternative splicing results in several transcript variants encoding different isoforms of Scn5a. Voltage-gated sodium channesl (VGSCs) mediate regenerative cell membrane depolarization and conduction of electrical signalling in nerves and muscles. Expression of Scn5a is also detected in lymphocytes, glia, and fibroblasts. Further, Scn5a mediates the voltage-dependent sodium ion permeability of excitable membranes. Assuming opened or closed conformations in response to the voltage difference across the membrane, Scn5a forms a sodium-selective channel through which Na(+) ions may pass in accordance with their electrochemical gradient. Functionally, Scn5a is responsible for the initial upstroke of the action potential and the channel inactivation is regulated by intracellular calcium levels. Voltage-gated sodium channels (NaV) are responsible for action potential initiation and propagation in excitable cells, including nerve, muscle, and neuroendocrine cell types. Scn5a are also expressed at low levels in non-excitable cells, where their physiological role is unclear. Diseases associated with SCN5A include Long Qt Syndrome-3 and Brugada Syndrome 1.

          For Research Use Only. Not for use in diagnostic procedures. Not for resale without express authorization.

          References (0)

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          Cite this product

          Bioinformatics

          Protein Aliases: cardiac tetrodotoxin-insensitive voltage-dependent sodium channel alpha subunit; CDCD2VF1; CIN5; hH1; HH1CMD1E; LQT3SSS1CMPD2; RATRSKM2X; RH1; RSkM2; RSKM2X; Scn2x; Sodium channel protein cardiac muscle subunit alpha; Sodium channel protein type 5 subunit alpha; Sodium channel protein type V subunit alpha; sodium channel, voltage gated, type V alpha subunit; sodium channel, voltage-gated, type 5, alpha subunit; sodium channel, voltage-gated, type V, alpha polypeptide; sodium channel, voltage-gated, type V, alpha subunit; voltage-gated sodium channel Nav1.5c; Voltage-gated sodium channel subunit alpha Nav1.5; voltage-gated sodium channel type V alpha polypeptide

          View more View less

          Gene Aliases: CDCD2; CMD1E; CMPD2; HB1; HB2; HBBD; HH1; ICCD; IVF; LQT3; Nav1.5; PFHB1; SCAL; SCN5A; SSS1; VF1

          View more View less

          UniProt ID: (Human) Q14524, (Rat) P15389

          View more View less

          Entrez Gene ID: (Human) 6331, (Rabbit) 100009516, (Rat) 25665

          View more View less

          Function(s)
          voltage-gated sodium channel activity protein binding calmodulin binding fibroblast growth factor binding enzyme binding protein kinase binding protein domain specific binding ankyrin binding ubiquitin protein ligase binding ion channel binding nitric-oxide synthase binding voltage-gated sodium channel activity involved in cardiac muscle cell action potential voltage-gated sodium channel activity involved in AV node cell action potential voltage-gated sodium channel activity involved in bundle of His cell action potential voltage-gated sodium channel activity involved in Purkinje myocyte action potential voltage-gated sodium channel activity involved in SA node cell action potential scaffold protein binding
          Process(es)
          regulation of heart rate cardiac ventricle development brainstem development sodium ion transport positive regulation of heart rate positive regulation of sodium ion transport response to organic cyclic compound response to denervation involved in regulation of muscle adaptation neuronal action potential telencephalon development cerebellum development regulation of ion transmembrane transport sodium ion transmembrane transport odontogenesis of dentin-containing tooth positive regulation of action potential positive regulation of epithelial cell proliferation membrane depolarization cardiac muscle contraction regulation of ventricular cardiac muscle cell membrane repolarization regulation of atrial cardiac muscle cell membrane depolarization regulation of atrial cardiac muscle cell membrane repolarization regulation of ventricular cardiac muscle cell membrane depolarization cellular response to calcium ion cardiac muscle cell action potential involved in contraction regulation of cardiac muscle cell contraction ventricular cardiac muscle cell action potential membrane depolarization during action potential membrane depolarization during cardiac muscle cell action potential SA node cell action potential membrane depolarization during AV node cell action potential membrane depolarization during SA node cell action potential membrane depolarization during Purkinje myocyte cell action potential membrane depolarization during bundle of His cell action potential AV node cell to bundle of His cell communication bundle of His cell to Purkinje myocyte communication SA node cell to atrial cardiac muscle cell communication regulation of heart rate by cardiac conduction regulation of sodium ion transmembrane transport regulation of postsynaptic membrane potential cardiac conduction AV node cell action potential bundle of His cell action potential
          It has to be done as per old AB suggested Products section.
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