Publication | Closed Access
A Dual Role Reductase from Phytosterols Catabolism Enables the Efficient Production of Valuable Steroid Precursors
69
Citations
45
References
2020
Year
Aldo-keto ReductaseMolecular BiologyValuable Steroid PrecursorsChemical BiologyPhytosterols Catabolism EnablesBiosynthesisDual-role ReductaseBioenergeticsMycobacterium NeoaurumNatural Product BiosynthesisSteroid MetabolismBiochemistryBiocatalysisNatural Product SynthesisPrimary MetaboliteBiologyNatural SciencesEnzyme CatalysisDual Role ReductaseMetabolismMedicineSteroid Drugs
4-Androstenedione (4-AD) and progesterone (PG) are two of the most important precursors for synthesis of steroid drugs, however their current manufacturing processes suffer from low efficiency and severe environmental issues. In this study, we decipher a dual-role reductase (mnOpccR) in the phytosterols catabolism, which engages in two different metabolic branches to produce the key intermediate 20-hydroxymethyl pregn-4-ene-3-one (4-HBC) through a 4-e reduction of 3-oxo-4-pregnene-20-carboxyl-CoA (3-OPC-CoA) and 2-e reduction of 3-oxo-4-pregnene-20-carboxyl aldehyde (3-OPA), respectively. Inactivation or overexpression of mnOpccR in the Mycobacterium neoaurum can achieve exclusive production of either 4-AD or 4-HBC from phytosterols. By utilizing a two-step synthesis, 4-HBC can be efficiently converted into PG in a scalable manner (100 gram scale). This study deciphers a pivotal biosynthetic mechanism of phytosterol catabolism and provides very efficient production routes of 4-AD and PG.
| Year | Citations | |
|---|---|---|
Page 1
Page 1