Regioselective Hydration of Terpenes with Cofactor‐Independent Carotenoid 1,2‐Hydratase

P Philip Horz (Department of Technical Biochemistry Institute of Biochemistry and Technical Biochemistry Department of Technical Biochemistry University of Stuttgart Allmandring 31 70569 Stuttgart Germany) N Natalie Härterich (Department of Technical Biochemistry Institute of Biochemistry and Technical Biochemistry Department of Technical Biochemistry University of Stuttgart Allmandring 31 70569 Stuttgart Germany) A Andreas Schneider N Nicolas D. Travnicek (Department of Technical Biochemistry Institute of Biochemistry and Technical Biochemistry Department of Technical Biochemistry University of Stuttgart Allmandring 31 70569 Stuttgart Germany) B Bettina M. Nestl (Innophore GmbH Am Eisernen Tor 3 8010 Graz Austria) U Ursula Kahler (Innophore GmbH Am Eisernen Tor 3 8010 Graz Austria) B Bernhard Hauer (Institute of Biochemistry and Technical Biochemistry, University of Stuttgart Vaihingen Germany)

Abstract

Abstract Terminally hydrated terpenes are highly sought‐after compounds in the flavor and fragrance industries. However, their selective synthesis remains a considerable challenge in catalysis. Regioselective hydration of non‐activated C─C double bonds is typically hindered by poor selectivity and low atom efficiency in conventional methods. In this study, we harness the underexplored potential of the acyclic carotenoid 1,2‐hydratase from Rubrivivax gelatinosus IL144, employing it as a whole‐cell biocatalyst for cofactor‐independent terminal hydration of a diverse range of terpenes. This enzyme demonstrates exceptional activity across more than 20 C 12 ─C 20 terpenes and shows notable tolerance to various functional groups, establishing it as a valuable tool for sustainable organic synthesis. We emphasize the critical influence of expression system choice in maximizing enzymatic performance, enabling high‐yield transformations on the gram scale. Through a combination of homology modeling, consensus analysis, and targeted mutagenesis, essential residues involved in catalytic activity were identified. Notably, enhanced catalytic efficiency was only achievable through the epistatic effect of three specific mutations. These findings highlight the biocatalytic potential of acyclic carotenoid hydratase, offering a green and efficient route to the production of valuable tertiary alcohols.

Article Details

Volume / Issue Vol. 64, Issue 36
Published September 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

P

Philip Horz

Department of Technical Biochemistry Institute of Biochemistry and Technical Biochemistry Department of Technical Biochemistry University of Stuttgart Allmandring 31 70569 Stuttgart Germany

N

Natalie Härterich

Department of Technical Biochemistry Institute of Biochemistry and Technical Biochemistry Department of Technical Biochemistry University of Stuttgart Allmandring 31 70569 Stuttgart Germany

A

Andreas Schneider

N

Nicolas D. Travnicek

Department of Technical Biochemistry Institute of Biochemistry and Technical Biochemistry Department of Technical Biochemistry University of Stuttgart Allmandring 31 70569 Stuttgart Germany

B

Bettina M. Nestl

Innophore GmbH Am Eisernen Tor 3 8010 Graz Austria

U

Ursula Kahler

Innophore GmbH Am Eisernen Tor 3 8010 Graz Austria

B

Bernhard Hauer

Institute of Biochemistry and Technical Biochemistry, University of Stuttgart Vaihingen Germany