Biology:Dihydrobenzophenanthridine oxidase
From HandWiki
Short description: Class of enzymes
| Dihydrobenzophenanthridine oxidase | |||||||||
|---|---|---|---|---|---|---|---|---|---|
| Identifiers | |||||||||
| EC number | 1.5.3.12 | ||||||||
| CAS number | 114051-83-1 | ||||||||
| Databases | |||||||||
| IntEnz | IntEnz view | ||||||||
| BRENDA | BRENDA entry | ||||||||
| ExPASy | NiceZyme view | ||||||||
| KEGG | KEGG entry | ||||||||
| MetaCyc | metabolic pathway | ||||||||
| PRIAM | profile | ||||||||
| PDB structures | RCSB PDB PDBe PDBsum | ||||||||
| Gene Ontology | AmiGO / QuickGO | ||||||||
| |||||||||
Dihydrobenzophenanthridine oxidase (DHBP oxidase) is an enzyme. In the IUBMB Enzyme Nomenclature, dihydrobenzophenanthridine oxidase is EC 1.5.3.12.
Dihydrobenzophenanthridine oxidase produces oxidized forms of benzophenanthridine alkaloids:
- In Sanguinaria canadensis (bloodroot), dihydrobenzophenanthridine oxidase produces sanguinarine from dihydrosanguinarine, and chelirubine from dihydrochelirubine.[1][2]
- REDIRECT Template:Chemical reaction
- In Eschscholzia californica (California poppy), dihydrobenzophenanthridine oxidase produces macarpine from dihydromacarpine.[3]
References
- ↑ "Growth characteristics of Sanguinaria canadensis L. cell suspensions and immobilized cultures for production of benzophenanthridine alkaloids". Appl. Microbiol. Biotechnol. 36 (5): 611–7. 1992. doi:10.1007/BF00183237. PMID 1368065.
- ↑ "Elicitation of dihydrobenzophenanthridine oxidase in Sanguinaria canadensis cell cultures". Phytochemistry 43 (6): 1141–4. 1996. doi:10.1016/S0031-9422(96)00540-7. PMID 8987906. Bibcode: 1996PChem..43.1141I.
- ↑ "Antisense RNA-mediated suppression of benzophenanthridine alkaloid biosynthesis in transgenic cell cultures of California poppy". Plant Physiol. 128 (2): 696–706. 2002. doi:10.1104/pp.010741. PMID 11842172. PMC 148930. http://www.plantphysiol.org/cgi/content/abstract/128/2/696.
External links
- Chelirubine, Macarpine and Sanguinarine Biosynthesis
- KEGG (Kyoto Encyclopedia of Genes and Genomes) Alkaloid biosynthesis I - Reference pathway
