EventsViruses 2026 – New Horizons in Virology
Published
This submission belongs to the session S4. Structure and Mechanisms of Virus Replication of the event Viruses 2026 – New Horizons in Virology
Published date
09 Mar, 2026
Academic Editor
author-avatarEric Freed
Citation
Line Abildgaard Ryberg, Anna Valeryevna Sherwood, Helena Damtoft Tjørnelund-Sjursen, Nanna Emilie Askvad Sørensen, Lizandro Rene Rivera-Rangel, Troels Kasper Høyer Scheel, Günther Herbert Johannes Peters, Santseharay Ramirez, Jeppe Vinther, Pernille Harris, Jens Bukh, Capturing the FAD-capped de novo initiation complex of hepatitis C virus NS5B at high resolution, in Proceedings of Viruses 2026 – New Horizons in Virology, Barcelona, 11 March–13 March 2026, MDPI: Basel, Switzerland
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Capturing the FAD-capped de novo initiation complex of hepatitis C virus NS5B at high resolution

Anna Valeryevna Sherwood 2
Helena Damtoft Tjørnelund-Sjursen 1
Nanna Emilie Askvad Sørensen 2
Lizandro Rene Rivera-Rangel 1
Jeppe Vinther 2
1. Copenhagen Hepatitis C Program (CO-HEP), Department of Infectious Diseases, Copenhagen University Hospital, DK-2650 Hvidovre, Denmark, and Department of Immunology and Microbiology, University of Copenhagen, DK-2200 Copenhagen, Denmark., Denmark
2. Section for Computational and RNA Biology, Department of Biology, University of Copenhagen; Ole Maaløes Vej 5, DK-2200 Copenhagen N, Denmark., Denmark
3. DTU Chemistry, Technical University of Denmark; Kemitorvet, Building 207, DK-2800 Kongens Lyngby, Denmark., Denmark
4. Department of Chemistry, University of Copenhagen; Universitetsparken 5, DK-2100 Copenhagen Ø, Denmark., Denmark
Abstract

We recently discovered that hepatitis C virus (HCV) is capped with flavin adenine dinucleotide (FAD) on the 5’ end of its RNA and showed that the RNA-dependent RNA polymerase NS5B is responsible for its incorporation as a non-canonical initiating nucleotide (NCIN). Thus, to elucidate the structural basis of FAD-initiated HCV replication and to shed light on the poorly understood de novo initiation step, we used X-ray crystallography to determine structures of NS5B in complex with RNA and FAD.

Obtaining structures of NS5B with RNA bound is challenging and was previously only possible using a mutated genotype 2a NS5B (strain JFH1) containing five substitutions of which S15G/C223H/V321I are near the active site and therefore could influence substrate recognition. Here, we successfully obtained well-diffracting crystals capable of binding RNA and FAD by using only two protein surface substitutions, thus enabling structural studies in a near-wild-type context. To further enhance physiological relevance, we used the authentic NTP substrate in the active site rather than the commonly used NDP model substrate.

We successfully obtained de novo initiation structures of NS5B-RNA-FAD at high resolutions ranging from 1.7 to 2.2 Å. We found that FAD binding is stabilized by key interactions with Y448 and G449 in NS5B’s beta-loop, as well as stacking and base pairing with the RNA. The structures reveal that the authentic NTP substrate promotes catalytically competent conformations of FAD and the incoming nucleotide. Additionally, we observed structural consequences of S15G/C223H/V321I, including altered active site electrostatics and changes in NS5B–RNA interactions.

Overall, our structures provide new insights into HCV replication, elucidate the role of non-canonical initiating nucleotides in viral RNA synthesis and establish a platform for studying de novo initiation, including nucleotide analog recognition in a physiologically relevant NS5B context.

Keywords
HCV
NS5B
de novo initiation
flavin adenine dinucleotide
capping
non-canonical initiating nucleotides
X-ray crystallography
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