Recombinant Human ACO1

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Product specifications
Category | Proteins and Peptides |
Host | E.Coli |
Reactivity | Human |
Assay Data | Centrifuge the vial before opening, reconstitute in sterile distilled water to a concentration of 0.1-1 mg/ml by gently pipetting 2-3 times, don't vortex. |
Recommended Dilution | ¥ |
Isotype | ¥ |
Clone ID | ¥ |
Observed MW | 44.4 kDa |
Expression | 675-889 |
Purity | Greater than 90% as determined by SDS-PAGE. |
Size 1 | 50μg |
Size 2 | 200μg |
Size 3 | 1mg |
Form | Lyophilized powder |
Tested Applications | Western Blot, ELISA |
Buffer | Lyophilized from a 0.2 μm filtered solution in 10 mM Hepes, 500 mM NaCl with 5% trehalose, pH 7.4. |
Availability | 7 days |
Storage | The lyophilized protein is stable at -20 °C for up to 1 year. After reconstitution, the protein solution is stable at -20 to -80 °C for 3 months or 1 week at 2 to 8 °C under sterile conditions. For extended storage, it is recommended to further dilute in working aliquots, avoid repeated freeze/thaw cycle. |
UniProt ID | P21399 |
Alias | ACO1|Aconitase 1|IREB1|IRP1|IREBP |
Background | Protein ACO1 |
Status | RUO |
Note | Tag : N-terminal His-IF2DI Tag |
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The protein encoded by this gene is a bifunctional, cytosolic protein that functions as an essential enzyme in the TCA cycle and interacts with mRNA to control the levels of iron inside cells. When cellular iron levels are high, this protein binds to a 4Fe-4S cluster and functions as an aconitase. Aconitases are iron-sulfur proteins that function to catalyze the conversion of citrate to isocitrate. When cellular iron levels are low, the protein binds to iron-responsive elements (IREs), which are stem-loop structures found in the 5' UTR of ferritin mRNA, and in the 3' UTR of transferrin receptor mRNA. When the protein binds to IRE, it results in repression of translation of ferritin mRNA, and inhibition of degradation of the otherwise rapidly degraded transferrin receptor mRNA. The encoded protein has been identified as a moonlighting protein based on its ability to perform mechanistically distinct functions. Alternative splicing results in multiple transcript variants
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