Picornavirus non-structural proteins as targets for new anti-virals with broad activity

Heléne Norder1, Armando M De Palma, Barbara Selisko

  • 1Virology Department, Swedish Institute for Infectious Disease Control, Solna, Sweden. helene.norder@smi.se

Antiviral Research
|January 18, 2011
PubMed

Insights

Picornaviruses, including enteroviruses, pose risks despite available vaccines. Research identified new targets and compounds, like thiazolobenzimidazoles, to combat these viruses and prevent re-emerging diseases.

Area of Science:

  • Virology
  • Structural Biology
  • Drug Discovery

Background:

  • Picornaviridae is a large viral family with significant human pathogens like enteroviruses, FMDV, and HAV.
  • While vaccines exist for some picornaviruses, no effective prophylaxis is available for many, posing risks of chronic infection and re-emerging diseases.
  • Limited understanding of non-structural protein targets hinders the development of broad-spectrum antiviral therapies.

Purpose of the Study:

  • To identify conserved binding sites on non-structural proteins for broadly reactive antiviral agents against picornaviruses.
  • To characterize the structural and functional properties of key viral proteins, including helicase and protease.
  • To discover novel compounds targeting essential viral proteins for potential therapeutic development.

Main Methods:

  • Comparative structural genomics of viral enzymes involved in replication.
  • Biochemical assays to determine protein function (e.g., ATPase activity, hexamer formation).
  • X-ray crystallography to solve the structures of viral proteases and identify novel binding sites.
  • Screening for broad anti-enterovirus compounds targeting viral proteins 2C and 3A.

Main Results:

  • The echovirus-30 2C helicase forms ring-shaped hexamers with ATPase activity; hexamer formation is N-terminal dependent.
  • Crystal structures of three enterovirus 3C proteases were determined, showing similarity to other picornaviruses.
  • A novel VPg binding site on the CV-B3 3D polymerase was identified.
  • Broad anti-enterovirus compounds, including thiazolobenzimidazoles (targeting 2C) and TTP-8307 (targeting 3A), were discovered.

Conclusions:

  • The study identified novel targets and potential broad-spectrum antiviral compounds against picornaviruses.
  • Understanding the structure and function of viral proteins like 2C and 3A is crucial for developing new therapies.
  • Further development of potent inhibitors is needed to combat poliovirus and other picornaviruses, preventing future outbreaks.

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