Discovery of an Antiviral Electron Transfer Process to Create Catalytically Self‐Sufficient Viral Restriction Factors

M Mengdi Wu N Nghi Thao Hoang (Institute of Pharmaceutical Science King's College London London UK) D Deborah Grifagni (Magnetic Resonance Center and Department of Chemistry University of Florence Sesto Fiorentino Tuscany Italy) M Meritxell Wu‐Lu (Department of Chemistry Technical University of Berlin Berlin Germany) Y Yujie Sheng (Institute of Pharmaceutical Science King's College London London UK) T Theo Situmorang (Institute of Pharmaceutical Science King's College London London UK) P Pei‐Hsin Tai (Institute of Pharmaceutical Science King's College London London UK) Z Zheng Chen A Astrid Maluta (Institute of Pharmaceutical Science King's College London London UK) M Mohammed Hakil (Institute of Pharmaceutical Science King's College London London UK) B Bianca Susini (Department of Chemistry Ugo Schiff (DICUS), University of Florence, Via della Lastruccia 3, 50019 Sesto Fiorentino, Italy) H Hannah Florance (Institution: Agilent Technologies Cheadle UK) P Peter‐Leon Hagedoorn (Department of Biotechnology Delft University of Technology Delft the Netherlands) J John Mark Sutton (Institute of Pharmaceutical Science King's College London London UK) M Maria‐Andrea Mroginski (Department of Chemistry Technical University of Berlin Berlin Germany) S Simone Ciofi‐Baffoni (Magnetic Resonance Center and Department of Chemistry University of Florence Sesto Fiorentino Tuscany Italy) K Kourosh H. Ebrahimi (Institute of Pharmaceutical Science King's College London London UK)

Abstract

ABSTRACT Engineering immune‐silent, catalytically self‐sufficient antiviral restriction factor enzymes (iCAREs) provides a proof‐of‐concept for developing autonomous enzymes for future antiviral applications. To rationally design these enzymes, we sought to identify and engineer components of the intrinsic immune system. Here, we identified the endoplasmic reticulum (ER)‐anchored cytochrome b5 reductase 3 (CYB5R3) as a putative electron donor to the ER‐anchored and interferon‐stimulated antiviral radical S‐adenosylmethionine (SAM)‐dependent nucleotide dehydratase (SAND), or RSAD2 (viperin) in humans. We demonstrate that their functional partnership depends on co‐localisation. We obtained insights into the structure of the RSAD2:CYB5R3 complex and, using mutagenesis, identified the structural elements required for electron transfer. Based on this discovery, we engineered iCAREs that autonomously generate an antiviral nucleotide analogue to chain‐terminate viral RNA polymerase activity. Because iCAREs are self‐sufficient and do not require recruitment of endogenous redox partners, they are predicted to avoid interference with numerous biological processes associated with single‐domain redox partners such as CYB5R3, including electron delivery to the oncogenic enzyme stearoyl‐CoA desaturase (SCD1). This work solves a long‐standing question of why ER localisation is critical for RSAD2 activity, resolves a key mechanistic question in radical‐SAM enzymology, and establishes a general strategy to engineer self‐sufficient radical‐SAM enzymes for biotechnological applications.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 21, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (17)

M

Mengdi Wu

N

Nghi Thao Hoang

Institute of Pharmaceutical Science King's College London London UK

D

Deborah Grifagni

Magnetic Resonance Center and Department of Chemistry University of Florence Sesto Fiorentino Tuscany Italy

M

Meritxell Wu‐Lu

Department of Chemistry Technical University of Berlin Berlin Germany

Y

Yujie Sheng

Institute of Pharmaceutical Science King's College London London UK

T

Theo Situmorang

Institute of Pharmaceutical Science King's College London London UK

P

Pei‐Hsin Tai

Institute of Pharmaceutical Science King's College London London UK

Z

Zheng Chen

A

Astrid Maluta

Institute of Pharmaceutical Science King's College London London UK

M

Mohammed Hakil

Institute of Pharmaceutical Science King's College London London UK

B

Bianca Susini

Department of Chemistry Ugo Schiff (DICUS), University of Florence, Via della Lastruccia 3, 50019 Sesto Fiorentino, Italy

H

Hannah Florance

Institution: Agilent Technologies Cheadle UK

P

Peter‐Leon Hagedoorn

Department of Biotechnology Delft University of Technology Delft the Netherlands

J

John Mark Sutton

Institute of Pharmaceutical Science King's College London London UK

M

Maria‐Andrea Mroginski

Department of Chemistry Technical University of Berlin Berlin Germany

S

Simone Ciofi‐Baffoni

Magnetic Resonance Center and Department of Chemistry University of Florence Sesto Fiorentino Tuscany Italy

K

Kourosh H. Ebrahimi

Institute of Pharmaceutical Science King's College London London UK