Yuqi Yu
Structure-Based Design of Small Imine Reductase Panels for Target Substrates
Yu, Yuqi; Rué Casamajo, Arnau; Finnigan, William; Schnepel, Christian; Barker, Rhys; Morrill, Charlotte; Heath, Rachel S.; De Maria, Leonardo; Turner, Nicholas J.; Scrutton, Nigel S.
Authors
Arnau Rué Casamajo
William Finnigan
Dr Christian Schnepel christian.schnepel@durham.ac.uk
Assistant Professor
Rhys Barker
Charlotte Morrill
Rachel S. Heath
Leonardo De Maria
Nicholas J. Turner
Nigel S. Scrutton
Abstract
Biocatalysis is important in the discovery, development, and manufacture of pharmaceuticals. However, the identification of enzymes for target transformations of interest requires major screening efforts. Here, we report a structure-based computational workflow to prioritize protein sequences by a score based on predicted activities on substrates, thereby reducing a resource-intensive laboratory-based biocatalyst screening. We selected imine reductases (IREDs) as a class of biocatalysts to illustrate the application of the computational workflow termed IREDFisher. Validation by using published data showed that IREDFisher can retrieve the best enzymes and increase the hit rate by identifying the top 20 ranked sequences. The power of IREDFisher is confirmed by computationally screening 1400 sequences for chosen reductive amination reactions with different levels of complexity. Highly active IREDs were identified by only testing 20 samples in vitro. Our speed test shows that it only takes 90 min to rank 85 sequences from user input and 30 min for the established IREDFisher database containing 591 IRED sequences. IREDFisher is available as a user-friendly web interface (https://enzymeevolver.com/IREDFisher). IREDFisher enables the rapid discovery of IREDs for applications in synthesis and directed evolution studies, with minimal time and resource expenditure. Future use of the workflow with other enzyme families could be implemented following the modification of the workflow scoring function.
Citation
Yu, Y., Rué Casamajo, A., Finnigan, W., Schnepel, C., Barker, R., Morrill, C., Heath, R. S., De Maria, L., Turner, N. J., & Scrutton, N. S. (2023). Structure-Based Design of Small Imine Reductase Panels for Target Substrates. ACS Catalysis, 13(18), 12310-12321. https://doi.org/10.1021/acscatal.3c02278
Journal Article Type | Article |
---|---|
Acceptance Date | Aug 21, 2023 |
Online Publication Date | Sep 5, 2023 |
Publication Date | Sep 15, 2023 |
Deposit Date | Jan 1, 2025 |
Journal | ACS Catalysis |
Electronic ISSN | 2155-5435 |
Publisher | American Chemical Society |
Peer Reviewed | Peer Reviewed |
Volume | 13 |
Issue | 18 |
Pages | 12310-12321 |
DOI | https://doi.org/10.1021/acscatal.3c02278 |
Public URL | https://durham-repository.worktribe.com/output/3263333 |
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