Engineering of Transmembrane Alkane Monooxygenases to Improve a Key Reaction Step in the Synthesis of Polymer Precursor Tulipalin A

A Andrea Nigl (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) V Veronica Delsoglio (Institute of Biochemistry, Graz University of Technology Petersgasse 12/2 Graz 8010 Austria) L Lucija Sovic (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) M Marina Grgić (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) L Lenny Malihan‐Yap (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) K Kamela Myrtollari (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) J Jelena Spasic (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) M Margit Winkler (Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria) G Gustav Oberdorfer A Andreas Taden (Henkel AG & Co. KGaA Henkelstraße 67 40589 Düsseldorf Germany) I Iva Anić (Henkel AG & Co. KGaA Henkelstraße 67 40589 Düsseldorf Germany) R Robert Kourist (Institute of Molecular Biotechnology, Graz University of Technology, Petersgasse 14, 8010 Graz, Austria)

Abstract

Abstract The α‐methylene‐γ‐butyrolactone tulipalin A, a defense compound found in tulips, can polymerize via addition at the vinyl group or via ring‐opening polymerization, making it a highly promising monomer for bio‐based polymers. Since the biosynthesis of tulipalin A in plants remains elusive, we propose an alternative pathway for its synthesis starting from the terpenoid intermediate isoprenyl acetate. While fungal unspecific peroxygenases showed a preference for the unwanted epoxidation of the exo‐ olefin group, bacterial alkane monooxygenases were selective for terminal hydroxylation. By combining protein engineering based on de novo structure prediction of the membrane enzymes with cell engineering, the specific activity was increased 6‐fold to 1.83 U g cdw −1 . Oxidation of the formed allylic alcohol by a three‐enzyme cascade and subsequent lactonization yielded tulipalin A. Our results demonstrate the feasibility of producing the polymer precursor tulipalin A from terpenoid intermediates and provide a solid foundation for future metabolic engineering endeavors.

Article Details

Volume / Issue Vol. 64, Issue 25
Published June 17, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

A

Andrea Nigl

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

V

Veronica Delsoglio

Institute of Biochemistry, Graz University of Technology Petersgasse 12/2 Graz 8010 Austria

L

Lucija Sovic

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

M

Marina Grgić

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

L

Lenny Malihan‐Yap

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

K

Kamela Myrtollari

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

J

Jelena Spasic

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

M

Margit Winkler

Institute of Molecular Biotechnology, Graz University of Technology Petersgasse 14 Graz 8010 Austria

G

Gustav Oberdorfer

A

Andreas Taden

Henkel AG & Co. KGaA Henkelstraße 67 40589 Düsseldorf Germany

I

Iva Anić

Henkel AG & Co. KGaA Henkelstraße 67 40589 Düsseldorf Germany

R

Robert Kourist

Institute of Molecular Biotechnology, Graz University of Technology, Petersgasse 14, 8010 Graz, Austria