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.

RSC Chemical Biology
|August 17, 2022
PubMed

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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