Multicyclic D‐Stereospecific Hydrolase Dimer With High Sustained Activity

A Anissa Haim (Department of Chemistry and Pharmaceutical Sciences VU University Amsterdam Amsterdam The Netherlands) S Sandra Liebscher (Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany) R Rasmus Klintrot (Department of Chemistry and Pharmaceutical Sciences VU University Amsterdam Amsterdam The Netherlands) L Lorenzo Vallino (Incircular B.V. Amsterdam The Netherlands) M Marcelo Masman (Incircular B.V. Amsterdam The Netherlands) A Andreas H. Simon (Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany) M Marianne Hahn (Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany) S Sven Hennig (Department of Chemistry and Pharmaceutical Sciences VU University Amsterdam Amsterdam The Netherlands) S Saskia Neubacher (Incircular B.V. Amsterdam The Netherlands) F Frank Bordusa (Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany) T Tom N. Grossmann (Department of Chemistry and Pharmaceutical Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1108, 1081 HZ Amsterdam, The Netherlands)

Abstract

ABSTRACT Enzymes are powerful catalysts for selective transformations but often suffer from limited stability under operational conditions such as elevated temperature or the presence of organic cosolvents. While sequence‐based strategies have been widely used to improve stability, chemical protein engineering enables modifications beyond the natural amino acid repertoire thereby offering complementary routes to tailor enzyme function and robustness. Here, we apply the in situ cyclization of proteins (INCYPRO) to a D‐stereospecific hydrolase with low intrinsic thermal stability. Site‐specific macrocyclization substantially improved resilience to heat and cosolvent stress. Unexpectedly, we discovered a cross‐linked protein dimer with enhanced activity and thermal stability. The complex structure was confirmed by x‐ray crystallography. Extending the INCYPRO approach, we engineered a multicyclic enzyme dimer with a total of four cross‐linking sites, which not only retained high activity under benign conditions but also outperformed the wild‐type under stress. Our findings establish protein macrocyclization as a versatile strategy to stabilize both monomeric and multimeric enzymes, providing a powerful route to robust biocatalysts.

Article Details

Volume / Issue Vol. 65, Issue 22
Published May 25, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

A

Anissa Haim

Department of Chemistry and Pharmaceutical Sciences VU University Amsterdam Amsterdam The Netherlands

S

Sandra Liebscher

Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany

R

Rasmus Klintrot

Department of Chemistry and Pharmaceutical Sciences VU University Amsterdam Amsterdam The Netherlands

L

Lorenzo Vallino

Incircular B.V. Amsterdam The Netherlands

M

Marcelo Masman

Incircular B.V. Amsterdam The Netherlands

A

Andreas H. Simon

Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany

M

Marianne Hahn

Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany

S

Sven Hennig

Department of Chemistry and Pharmaceutical Sciences VU University Amsterdam Amsterdam The Netherlands

S

Saskia Neubacher

Incircular B.V. Amsterdam The Netherlands

F

Frank Bordusa

Institute of Biochemistry and Biotechnology, Charles Tanford Protein Center Martin Luther University Halle‐Wittenberg Halle Germany

T

Tom N. Grossmann

Department of Chemistry and Pharmaceutical Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1108, 1081 HZ Amsterdam, The Netherlands