Boosting Reversible Photocontrol of a Photoxenase by an Engineered Conformational Shift

S Sabrina Mandl (Institute of Biophysics and Physical Biochemistry and Regensburg Center for Biochemistry University of Regensburg Universitätsstraße 31 D‐93053 Regensburg Germany) J Janet Sanchez M Miquel Estévez (Institut de Química Computacional i Catàlisi and Departament de Química Universitat de Girona c/Maria Aurèlia Capmany 69 Girona 17003 Spain) A Astrid Bruckmann (Institute of Biochemistry Genetics and Microbiology University of Regensburg Universitatsstrasse 31 D‐93053 Regensburg Germany) C Caroline Hiefinger (Institute of Biophysics and Physical Biochemistry and Regensburg Center for Biochemistry University of Regensburg Universitätsstraße 31 D‐93053 Regensburg Germany) S Sílvia Osuna A Andrea Hupfeld (Institute of Biophysics and Physical Biochemistry and Regensburg Center for Biochemistry University of Regensburg Universitätsstraße 31 D‐93053 Regensburg Germany)

Abstract

Abstract Our study successfully explores strategies to effectively improve the photocontrol efficiency of light‐sensitive enzymes, dubbed photoxenases, with photoswitchable unnatural amino acids (UAAs). The engineering of photoxenases is a versatile method for the reversible photocontrol in various applications. To boost the photocontrol of an established allosteric and heterodimeric photoxenase based on imidazole glycerol phosphate synthase, we turned from an ineffective tuning of the UAA photochemistry to a semi‐rational enzyme design. Remarkably, mutations at the catalytically important heterodimer interface increased the light‐regulation factor (LRF) for the k cat up to ∼100 with near‐quantitative reversibility. Steady‐state kinetic investigations combined with computationally determined correlation‐based Shortest‐Path‐Map (SPM) analysis and conformational landscapes revealed how photocontrol was altered in the two best hits. The LRF( k cat ) correlated with a shift of a conformational equilibrium between an active and inactive population at the targeted active site and a tuned population productivity upon irradiation. While the overall reduced k cat values originated from a rewiring of the allosteric signal transmission, the increased LRF( k cat ) resulted from a change in i) the size of the conformational shift, ii) the population productivity, and iii) the conformational heterogeneity. With this, our findings provide initial guidelines to boost photocontrol and underscore the power of photoxenase engineering.

Article Details

Volume / Issue Vol. 65, Issue 4
Published January 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

S

Sabrina Mandl

Institute of Biophysics and Physical Biochemistry and Regensburg Center for Biochemistry University of Regensburg Universitätsstraße 31 D‐93053 Regensburg Germany

J

Janet Sanchez

M

Miquel Estévez

Institut de Química Computacional i Catàlisi and Departament de Química Universitat de Girona c/Maria Aurèlia Capmany 69 Girona 17003 Spain

A

Astrid Bruckmann

Institute of Biochemistry Genetics and Microbiology University of Regensburg Universitatsstrasse 31 D‐93053 Regensburg Germany

C

Caroline Hiefinger

Institute of Biophysics and Physical Biochemistry and Regensburg Center for Biochemistry University of Regensburg Universitätsstraße 31 D‐93053 Regensburg Germany

S

Sílvia Osuna

A

Andrea Hupfeld

Institute of Biophysics and Physical Biochemistry and Regensburg Center for Biochemistry University of Regensburg Universitätsstraße 31 D‐93053 Regensburg Germany