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Discovery of novel druggable pockets on polyomavirus VP1 through crystallographic fragment-based screening to develop
Evgenii M Osipov1, Ali H Munawar1,2,3, Steven Beelen1
1Biocrystallography, KU Leuven Herestraat 49 Leuven Belgium sergei.strelkov@kuleuven.be.
Abstract:
Polyomaviruses are a family of ubiquitous double-stranded DNA viruses many of which are human pathogens. These include BK polyomavirus which causes severe urinary tract infection in immunocompromised patients and Merkel cell polyomavirus associated with aggressive cancers. The small genome of polyomaviruses lacks conventional drug targets, and no specific drugs are available at present. Here we focus on the main structural protein VP1 of BK polyomavirus which is responsible for icosahedral capsid formation. To provide a foundation towards rational drug design, we crystallized truncated VP1 pentamers and subjected them to a high-throughput screening for binding drug-like fragments through a direct X-ray analysis. To enable a highly performant screening, rigorous optimization of the crystallographic pipeline and processing with the latest generation PanDDA2 software were necessary. As a result, a total of 144 binding hits were established. Importantly, the hits are well clustered in six surface pockets. Three pockets are located on the outside of the pentamer and map on the regions where the 'invading' C-terminal arm of another pentamer is attached upon capsid assembly. Another set of three pockets is situated within the wide pore along the five-fold axis of the VP1 pentamer. These pockets are situated at the interaction interface with the minor capsid protein VP2 which is indispensable for normal functioning of the virus. Here we systematically analyse the three outside pockets which are highly conserved across various polyomaviruses, while point mutations in these pockets are detrimental for viral replication. We show that one of the pockets can accommodate antipsychotic drug trifluoperazine. For each pocket, we derive pharmacophore features which enable the design of small molecules preventing the interaction between VP1 pentamers and therefore inhibiting capsid assembly. Our data lay a foundation towards a rational development of first-in-class drugs targeting polyomavirus capsid.
Insights
Researchers identified drug-binding sites on BK polyomavirus VP1 protein, crucial for capsid assembly. This discovery paves the way for developing novel antiviral drugs targeting polyomaviruses.
Area of Science:
- Virology
- Structural Biology
- Drug Discovery
Background:
- Polyomaviruses, including BK polyomavirus and Merkel cell polyomavirus, are widespread human pathogens lacking specific antiviral treatments.
- The VP1 protein is the primary structural component of the polyomavirus capsid, essential for viral assembly.
Purpose of the Study:
- To identify potential drug targets on the BK polyomavirus VP1 protein.
- To lay the groundwork for rational drug design against polyomaviruses.
Main Methods:
- Crystallization of truncated VP1 pentamers from BK polyomavirus.
- High-throughput screening using X-ray crystallography to identify drug-like fragments binding to VP1.
- Optimization of crystallographic pipeline and data processing using PanDDA2 software.
Main Results:
- 144 drug-like fragments were identified, binding to six distinct surface pockets on the VP1 pentamer.
- Three pockets are located on the exterior, involved in inter-pentamer interactions crucial for capsid assembly.
- Three pockets are within the five-fold axis pore, at the VP1-VP2 interface.
- One pocket demonstrated binding affinity for the antipsychotic drug trifluoperazine.
Conclusions:
- The identified surface pockets on VP1 are conserved across polyomaviruses and are critical for viral replication.
- Pharmacophore features derived from these pockets can guide the design of small molecules to inhibit VP1-VP1 interactions and capsid assembly.
- This study provides a foundation for developing the first-in-class drugs targeting the polyomavirus capsid.
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