Sequence analysis and structural implications of rotavirus capsid proteins

Acta Virologica
|September 20, 2016
PubMed

Insights

Rotavirus capsid proteins VP2, VP6, and VP7 show conserved amino acid sequences despite varying RNA genomes. This conservation offers targets for antiviral strategies and biotechnological applications.

Area of Science:

  • Virology
  • Structural Biology
  • Molecular Evolution

Background:

  • Rotavirus is a leading cause of severe gastroenteritis in young children globally, particularly in developing nations.
  • The virus possesses a non-enveloped, triple-layered capsid with 11 double-stranded RNA segments.
  • Understanding the conservation of key viral proteins is crucial for developing effective interventions.

Purpose of the Study:

  • To analyze the sequence and structural conservation of rotavirus capsid proteins VP2, VP6, and VP7 across different species and genotypes.
  • To identify conserved regions within these proteins that could be targeted for therapeutic or biotechnological purposes.

Main Methods:

  • Generated consensus amino acid sequences for VP2, VP6, and VP7 from published data of representative rotavirus genotypes worldwide.
  • Created homology models to visualize and quantify the degree of interspecies conservation for each protein.
  • Analyzed amino acid variability, specifically identifying sites with conservation below 60% or 70%.

Main Results:

  • VP7, the outer capsid protein, exhibited the highest variability (14-45 sites <60% conserved), often on its surface, suggesting immune evasion.
  • VP6, the middle capsid layer, showed lower variability (14-32 sites <70% conserved).
  • VP2, the inner structural layer, displayed the least variability (1-16 sites <70% conserved).

Conclusions:

  • Despite high RNA sequence variability due to error-prone replication, the amino acid sequences of VP2, VP6, and VP7 are relatively conserved.
  • Conserved regions in these proteins can be targeted for antiviral therapies, as mutations at these sites may impact viral fitness.
  • The structural and functional stability of these proteins presents opportunities for biotechnological applications.

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