

| Catalog No. | HP104014 | ||||||||
|---|---|---|---|---|---|---|---|---|---|
| Species reactivity | Human | ||||||||
| Applications | ELISA, IHC, WB | ||||||||
| Host species | Rabbit | ||||||||
| Isotype | IgG | ||||||||
| Clonality | Polyclonal | ||||||||
| Immunogen | E. coli - derived recombinant Human CISD1 (Ala16-Thr108). | ||||||||
| Target | CISD1, CDGSH iron-sulfur domain-containing protein 1, MitoNEET, C10orf70, ZCD1 | ||||||||
| Purification | Purified by antigen affinity column. | ||||||||
| Accession | Q9NZ45 | ||||||||
| Form | Liquid | ||||||||
| Storage buffer | 0.01M PBS, pH 7.4, 50% Glycerol, 0.05% Proclin 300. Please refer to the specific buffer information in the hardcopy of datasheet or the lot-specific COA. |
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| Product Usage Information |
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| Stability and Storage | Use a manual defrost freezer and avoid repeated freeze thaw cycles. Store at 2 to 8°C for frequent use. Store at -20 to -80°C for twelve months from the date of receipt. | ||||||||
| Background | CDGSH iron-sulfur domain-containing protein 1 (CISD1) is a ~12 kDa protein. L-cysteine transaminase that catalyzes the reversible transfer of the amino group from L-cysteine to the alpha-keto acid 2-oxoglutarate to respectively form 2-oxo-3-sulfanylpropanoate and L-glutamate. The catalytic cycle occurs in the presence of pyridoxal 5'-phosphate (PLP) cofactor that facilitates transamination by initially forming an internal aldimine with the epsilon-amino group of active site Lys-55 residue on the enzyme (PLP-enzyme aldimine), subsequently displaced by formation of an external aldimine with the substrate amino group (PLP-L-cysteine aldimine). The external aldimine is further deprotonated to form a carbanion intermediate, which in the presence of 2-oxoglutarate regenerates PLP yielding final products 2-oxo-3-sulfanylpropanoate and L-glutamate. The proton transfer in carbanion intermediate is suggested to be controlled by the active site lysine residue, whereas PLP stabilizes carbanion structure through electron delocalization, also known as the electron sink effect. Plays a key role in regulating maximal capacity for electron transport and oxidative phosphorylation. 1. Kunk, C. et al. (2022) ACS chemical biology 17, 2716-2722. PMID: 36194135 2. Wiley, SE. et al. (2007) The Journal of biological chemistry 282, 23745-9. PMID: 17584744 3. Zuris, JA. et al. (2011) Proceedings of the National Academy of Sciences of the United States of America 108, 13047-52. PMID: 21788481 4. Bak, DW. et al. (2013) Biochemistry 52, 4687-96. PMID: 23758282 | ||||||||
| Note | For research use only. |
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