Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment

Sara Landeras-Bueno1,2, Shun-Ichiro Oda2, Michael J Norris1,2

  • 1La Jolla Institute for Immunology, La Jolla, California, USA.

Mbio
|July 25, 2019
PubMed

Insights

Researchers elucidated the structure of Sudan virus nucleoprotein (NP) interacting with phosphoprotein VP35, revealing a key beta sheet crucial for viral assembly and potential broad-spectrum antiviral targets.

Area of Science:

  • Virology
  • Structural Biology
  • Drug Discovery

Background:

  • Filoviruses, including Ebola and Marburg viruses, cause severe hemorrhagic fevers with high mortality and pose outbreak risks.
  • The nucleoprotein (NP) is vital for filovirus replication and assembly, making it a promising therapeutic target.
  • Existing treatments lack broad efficacy against diverse filoviruses.

Purpose of the Study:

  • To determine the crystal structure of Sudan virus nucleoprotein (SUDV NP) in complex with its interacting partner, VP35.
  • To characterize the structural basis of the NP-VP35 interaction and its role in viral replication.
  • To identify conserved residues for the development of pan-filovirus antivirals.

Main Methods:

  • X-ray crystallography to determine the 2.3 Å structure of the SUDV NP-VP35 complex.
  • Affinity binding assays to assess the importance of identified interactions.
  • Electron microscopy to evaluate the impact on NP oligomerization and assembly.
  • Structure-directed mutagenesis to identify critical residues.

Main Results:

  • The structure reveals VP35 chaperoning monomeric, RNA-free SUDV NP, a state critical for viral genome encapsidation.
  • A novel beta sheet interaction between NP and VP35 was identified, essential for high-affinity binding.
  • This interaction is crucial for NP oligomerization and assembly within human cells.
  • Mutagenesis identified conserved residues across filoviruses that could be targeted for antiviral development.

Conclusions:

  • The SUDV NP-VP35 structure provides insights into a critical step of filovirus replication.
  • The identified beta sheet interaction and conserved residues represent potential targets for broad-spectrum antiviral therapies.
  • Understanding these molecular interactions facilitates the rational design of new treatments against filovirus infections.

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