Related Experiment Video
Updated: Aug 5, 2026

Directed Evolution Method in Saccharomyces cerevisiae: Mutant Library Creation and Screening
Published on: April 1, 2016
Reprogramming a Baeyer-Villiger monooxygenase for improved synthesis of 3-hydroxypropionic acid precursor by
Melissa De Angelis1, Gianluca Catucci2, Lucia Etzi1
1Department of Life Sciences and Systems Biology, University of Torino, via Accademia Albertina, Torino, 10123, Italy.
Abstract:
Baeyer-Villiger monooxygenases (BVMOs) are attractive oxidative biocatalysts for the synthesis of 3-hydroxypropionic acid (3-HP) precursors from alkyl levulinates, but their broader application is often limited by insufficient operational robustness, uncoupling side reactions, and incomplete control over product distribution. Here, the Baeyer-Villiger monooxygenase from Acinetobacter radioresistens (Ar-BVMO) was engineered for improved oxidation of butyl levulinate through a structure-guided hotspot transfer strategy inspired by cyclopentanone monooxygenase (CPMO) from Comamonas sp. Structural alignment identified the Y141/Y142 region of Ar-BVMO as a catalytically sensitive site, and two single mutants, Y141L and Y142L, were generated. Their structural and functional effects were investigated by molecular dynamics simulations, stopped-flow measurements, steady-state kinetic analysis, coupling efficiency evaluation, and whole-cell biotransformations. Both substitutions increased the conformational mobility of the Ar-BVMO scaffold and altered NADPH-dependent catalytic behaviour. Among the two mutants, Y142L showed the best overall performance toward butyl levulinate, with 2.5-fold increase in catalytic efficiency (from 4.0 to 10.2 min-1 mM-1), ≃ 6% increase in coupling efficiency, and 54% increase in total turnover number. In contrast, Y141L displayed lower productivity and coupling efficiency, but complete regioselectivity toward the desired 3-acetoxypropionate product. Whole-cell biotransformations with Y142L confirmed the improved phenotype, achieving >95% substrate consumption within 24 h. Overall, this targeted enzyme-engineering study shows that hotspot transfer to the Ar-BVMO Y141/Y142 region can separate productivity from regioselectivity during butyl levulinate oxidation, providing a focused framework for further optimization of BVMOs for sustainable 3-HP precursor synthesis.
More Related Videos
08:02Benchtop Immobilized Metal Affinity Chromatography, Reconstitution and Assay of a Polyhistidine Tagged Metalloenzyme for the Undergraduate Laboratory
Published on: August 23, 2018
13:05Enzymatic Synthesis of Epoxidized Metabolites of Docosahexaenoic, Eicosapentaenoic, and Arachidonic Acids
Published on: June 28, 2019
Related Concept Videos
Reactions of Aldehydes and Ketones: Baeyer–Villiger Oxidation
The carbonyl center is activated by...
Bioreactor Controls-III
Hydroboration-Oxidation of Alkenes
Production of Pharmaceuticals
Preparation of Alcohols via Addition Reactions
The acid-catalyzed addition of water to the double bond of alkenes is a large-scale industrial method used to synthesize low-molecular-weight alcohols. An acidic atmosphere is required to allow the hydrogen in the water molecule to act as an electrophile and attack the double bond in an alkene. The addition of a proton to the double bond creates a carbocation intermediate. The proton preferentially bonds to the less substituted end of the double bond to create a more stable carbocation...
Upstream Processing