

| Catalog No. | HB889014 | ||||||||
|---|---|---|---|---|---|---|---|---|---|
| Species reactivity | Human, Mouse | ||||||||
| Applications | ELISA, IHC, WB | ||||||||
| Host species | Rabbit | ||||||||
| Clonality | Polyclonal | ||||||||
| Isotype | IgG | ||||||||
| Immunogen | E. coli - derived recombinant Human ACADL (Ile214-Lys430). | ||||||||
| Target | ACADL, LCAD, Long-chain specific acyl-CoA dehydrogenase, mitochondrial | ||||||||
| Purification | Purified by antigen affinity column. | ||||||||
| Accession | P28330 | ||||||||
| 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 | Long-chain specific acyl-CoA dehydrogenase, mitochondrial (ACADL) is a ~47 kDa protein. Long-chain specific acyl-CoA dehydrogenase is one of the acyl-CoA dehydrogenases that catalyze the first step of mitochondrial fatty acid beta-oxidation (FAO), breaking down fatty acids into acetyl-CoA and allowing the production of energy from fats. The first step of FAO consists in the proR-proR stereospecific alpha, beta-dehydrogenation of fatty acyl-CoA thioesters using the electron transfer flavoprotein (ETF) as their physiologic electron acceptor, resulting in the formation of trans-2-enoyl-CoA ((2E)-enoyl-CoA). Among the different mitochondrial acyl-CoA dehydrogenases, long-chain specific acyl-CoA dehydrogenase activity overlaps with that of ACADV and ACAD9, acting on saturated and unsaturated acyl-CoAs with 6 to 24 carbons with a preference for 8 to 18 carbons long primary chains. Plays a primary role in FAO in tissues where it is the main long-chain ACAD expressed, such as the lung, specifically in type 2 alveolar cells (responsible for surfactant production). Probably responsible for beta-oxidation of bulky substrates including branched chain fatty acyl-CoAs and sterol derivatives thanks to its enlarged substrate-binding cavity. 1. He, M. et al. (2007) American journal of human genetics 81, 87-103. PMID: 17564966 2. Goetzman, ES. et al. (2014) The Journal of biological chemistry 289, 10668-10679. PMID: 24591516 3. Beck, ME. et al. (2020) Molecular genetics and metabolism 131, 83-89. PMID: 32389575 4. He, M. et al. (2011) Molecular genetics and metabolism 102, 418-29. PMID: 21237683 5. Nandy, A. et al. (1996) Biochemistry 35, 12402-11. PMID: 8823175 | ||||||||
| Note | For research use only. |
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