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Astor Scientific  |  SKU: ASTP7575

Human HIF1A (Hypoxia-Inducible Factor 1-Alpha) - Recombinant Protein

Molecule: HIF1A
Species: Human
Expression System: E.coli
Tag: N-6His
Expression Range: 1-85aa
$429.99 $549.99
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SDS-PAGE analysis of Human HIF1A (Hypoxia-Inducible Factor 1-Alpha) - Recombinant Protein, showing >90% purity under 15% SDS-PAGE (Reduced)
Astor Scientific

Human HIF1A (Hypoxia-Inducible Factor 1-Alpha) - Recombinant Protein

$429.99 $549.99

Product Overview

Product Name Recombinant Human HIF1a Protein
Product Overview This recombinant human HIF1a protein includes amino acids 1-85aa of the target gene is expressed in E.coli.The protein is supplied in lyophilized form and formulated in phosphate buffered saline (pH7.4) containing 0.01% sarcosyl, 5% trehaloseprior to lyophilization.
Target Uniprot Id Q16665
Recommended Name Hypoxia-inducible factor 1-alpha
Gene Name HIF1A
Synonyms Hypoxia-inducible factor 1-alpha, BHLHE78, MOP1, PASD8.
Species Human
Predicted Molecular Mass 11.8 kDa
Expression System E.coli
Expression Range 1-85aa
Tag N-6His
Purity >90%
Formulation Lyophilized
Buffer Phosphate buffered saline (pH7.4) containing 0.01% sarcosyl, 5%Trehalose
Storage Condition 1. Store at -20°C/-80°C upon receipt, aliquoting is necessary for mutiple use. 2. Avoid repeated freeze-thaw cycles. 3. Store working aliquots at 4°C for up to one week. 4. In general, protein in liquid form is stable for up to 6 months at -20°C/-80°C. Protein in lyophilized powder form is stable for up to 12 months at -20°C/-80°C.
Reconstitution Instruction Briefly centrifuged the vial prior to opening to bring the contents to the bottom. Reconstitute protein in deionized sterile water to a concentration of 0.1-1.0 mg/mL. It is recommended to add 5-50% of glycerol (final concentration) and aliquot for long-term storage at -20°C/-80°C. The default final concentration of glycerol is 50%.
Applications Positive Control; Immunogen; SDS-PAGE; WB
Research Area Transcription
Target Function Functions as a master transcriptional regulator of the adaptive response to hypoxia. Under hypoxic conditions, activates the transcription of over 40 genes, including erythropoietin, glucose transporters, glycolytic enzymes, vascular endothelial growth factor, HILPDA, and other genes whose protein products increase oxygen delivery or facilitate metabolic adaptation to hypoxia. Plays an essential role in embryonic vascularization, tumor angiogenesis and pathophysiology of ischemic disease. Heterodimerizes with ARNT; heterodimer binds to core DNA sequence 5'-TACGTG-3' within the hypoxia response element (HRE) of target gene promoters. Activation requires recruitment of transcriptional coactivators such as CREBBP and EP300. Activity is enhanced by interaction with NCOA1 and/or NCOA2. Interaction with redox regulatory protein APEX1 seems to activate CTAD and potentiates activation by NCOA1 and CREBBP. Involved in the axonal distribution and transport of mitochondria in neurons during hypoxia.; (Microbial infection) Upon infection by human coronavirus SARS-CoV-2, is required for induction of glycolysis in monocytes and the consequent proinflammatory state. In monocytes, induces expression of ACE2 and cytokines such as IL1B, TNF, IL6, and interferons. Promotes human coronavirus SARS-CoV-2 replication and monocyte inflammatory response.
Subcellular Location Cytoplasm. Nucleus. Nucleus speckle.
Tissue Specificity Expressed in most tissues with highest levels in kidney and heart. Overexpressed in the majority of common human cancers and their metastases, due to the presence of intratumoral hypoxia and as a result of mutations in genes encoding oncoproteins and tumo

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  • 100ug
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