The phiX174 protein J mediates DNA packaging and viral attachment to host cells

Ricardo A Bernal1, Susan Hafenstein, Raquel Esmeralda

  • 1Department of Biological Sciences, Purdue University, Lilly Hall, 915 W State Street, West Lafayette, IN 47907-2054, USA.

Insights

Viral J proteins neutralize DNA charge for capsid packaging. Differences in J protein length and order affect viral properties like cell attachment and infection, suggesting evolutionary links.

Area of Science:

  • Virology
  • Structural Biology
  • Molecular Biology

Background:

  • Viral genome packaging into capsids requires neutralization of charged nucleic acids.
  • Microviridae bacteriophages utilize positively charged J proteins for this purpose.
  • The phiX174 J protein is longer than alpha3 and G4 J proteins due to an additional N-terminal domain.

Purpose of the Study:

  • To investigate the role of the J protein's N-terminal domain in viral assembly, stability, and infectivity.
  • To understand how J protein variations influence viral surface properties and host cell interactions.
  • To explore potential evolutionary correlations between J protein size and other viral components.

Main Methods:

  • Construction and analysis of chimeric phages (alpha3/G4 with phiX174 J protein).
  • Determination of viral particle density and infectivity.
  • Host cell attachment assays and native gel electrophoresis.
  • High-resolution structural determination (3.5Å) of a chimeric particle.

Main Results:

  • Chimeric phages with phiX174 J protein assemble and are infectious but less dense.
  • J protein variations alter viral surface properties, affecting host cell attachment.
  • The N-terminal domain of phiX174 J protein is mostly disordered in the alpha3 chimera.
  • Ordered N-terminal domain may control capsid flexibility by binding internally.

Conclusions:

  • The J protein is crucial for DNA packaging and mediates viral surface properties.
  • The N-terminal domain's order/disorder influences viral solution properties and infectivity.
  • An evolutionary link may exist between J protein length and the DNA pilot protein H stoichiometry.

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