Anti-GAPDH Loading Control Monoclonal Antibody

Cat. No.
G041
Unit
100 μg
Price
$231.00
Cat. No. G041
Name Anti-GAPDH Loading Control Monoclonal Antibody
Unit 100 μg
Category Loading Control Antibodies
Application WB,ICC/IF
Raised In Mouse
Clonality Monoclonal
Reactivity Other
Description This gene encodes a member of the glyceraldehyde-3-phosphate dehydrogenase protein family. The encoded protein has been identified as a moonlighting protein based on its ability to perform mechanistically distinct functions. The product of this gene catalyzes an important energy-yielding step in carbohydrate metabolism, the reversible oxidative phosphorylation of glyceraldehyde-3-phosphate in the presence of inorganic phosphate and nicotinamide adenine dinucleotide (NAD). The encoded protein has additionally been identified to have uracil DNA glycosylase activity in the nucleus. Studies of a similar protein in mouse have assigned a variety of additional functions including nitrosylation of nuclear proteins, the regulation of mRNA stability, and acting as a transferrin receptor on the cell surface of macrophage. Many pseudogenes similar to this locus are present in the human genome. Alternative splicing results in multiple transcript variants. [provided by RefSeq, Jan 2014]
Isotype IgG
Concentration 100ug/100ul
Storage Buffer PBS, pH 7.4 with 0.05% sodium azide.
Storage Condition This product is stable for several weeks at 4° C as an undiluted liquid. Dilute only prior to immediate use. For extended storage, aliquot contents and freeze at -20° C or below. Avoid cycles of freezing and thawing. Expiration date is one (1) year from date of receipt.
Formulation Liquid
Guarantee abm guarantees that all our Anti-GAPDH Loading Control Monoclonal Antibody will perform as described on this product webpage, if this is not the case we will provide you with a one-time replacement at no extra cost. Documentation and explanation of experiment conducted will be required when submitting a claim for replacement.
Material Citation If use of this material results in a scientific publication, please cite the material in the following manner: Applied Biological Materials Inc, Cat. No. G041
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  • Shintani-ishida, K et al. "MDMA induces cardiac contractile dysfunction through autophagy upregulation and lysosome " Biochim. Biophys. Acta, Mol. Basis. Dis. 5:691-700 (2014). PubMed: 24491919.
  • Cicchetti, F et al. "Mutant huntingtin is present in neuronal grafts in huntington disease patients" Ann. Neurol. 1:31-42 (2014). PubMed: 24798518.
  • Bessière, L.B. et al. "A Hot-spot of In-frame Duplications Activates the Oncoprotein AKT1 in Juvenile Granulosa Cell Tumors" EBioMedicine 5:421-431 (2015). DOI: 10.1016/j.ebiom.2015.03.002. Application: WB.
  • Bastien, B et al. "IL-1 Gene Deletion Protects Oligodendrocytes after Spinal Cord Injury through Upregulation of the Survival Factor Tox3 " J. Neurosci. 30:10715–10730 (2015). DOI: 10.1523/JNEUROSCI.0498-15.2015. Application: WB Control.
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  • Yoshida, K.Y. et al. "Mitochondrial m-calpain opens the mitochondrial permeability transition pore in ischemia–reperfusion" Int. J. Cardiol. Heart Vessels N/A:26-32 (2015). DOI: 10.1016/j.ijcard.2015.06.010.
  • Gerwing, M et al. "Cabazitaxel overcomes cisplatin resistance in germ cell tumour cells" Journal of Cancer Research and Clinical Oncology 9(142):1979-1994 (2016). DOI: 10.1007/s00432-016-2204-6. PubMed: 27424191. Application: Western Blot.
  • Knipe, D et al. "Foreign DNA Surveillance Protein" http://www.freepatentsonline.com/y2016/0076041.html : (0). DOI: 14/888853. Application: Western Blot.
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  • Kimbara, Y., Shimada, Y., Kuboyama, T., & Tohda, C. "Cistanche tubulosa (Schenk) Wight Extract Enhances Hindlimb Performance and Attenuates Myosin Heavy Chain IId/IIx Expression in Cast-Immobilized Mice" Evidence-Based Complementary and Alternative Medicine 2019:1–10 (2019). DOI: 10.1155/2019/9283171.
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  • Mirzoev, T. M., Tyganov, S. A., & Shenkman, B. S. "The Role of Stretch-Activated Channels in Mediating mTORC1 Signaling in Isolated Rat Soleus Muscle in Response to Mechanical Stimulation after Functional Unloading" Neuroscience and Behavioral Physiology 49(6):759–764 (2019). DOI: 10.1007/s11055-019-00798-w.
  • Segal, I., Nachmias, D., Arbely, E., & Elia, N. "A straightforward approach for bioorthogonal labeling of proteins and organelles in live mammalian cells, using a short peptide tag" : (2019). DOI: 10.1101/708545.
  • Tyganov, S. A., Mochalova, E. P., Belova, S. P., Sharlo, K. A., Rozhkov, S. V., Vilchinskaya, N. A., … Shenkman, B. S. "Effects of Plantar Mechanical Stimulation on Anabolic and Catabolic Signaling in Rat Postural Muscle Under Short-Term Simulated Gravitational Unloading"  Frontiers in Physiology  10: (2019). DOI: 10.3389/fphys.2019.01252.
  • Tyganov, S., Mirzoev, T., & Shenkman, B. "An Anabolic Signaling Response of Rat Soleus Muscle to Eccentric Contractions Following Hindlimb Unloading: A Potential Role of Stretch-Activated Ion Channels" International journal of molecular sciences 20(5):1165 (2019).
  • Zhang., Juan., . "Dexmedetomidine-Induced Cardioprotection Is Mediated by Inhibition of High Mobility Group Box-1 and the Cholinergic Anti-Inflammatory Pathway in Myocardial Ischemia-Reperfusion Injury" 14(7) : (2019). DOI: 10.1371/journal.pone.0218726..
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