Alternate, virus-induced membrane rearrangements support positive-strand RNA virus genome replication

Michael Schwartz1, Jianbo Chen, Wai-Ming Lee

  • 1Institute for Molecular Virology and Howard Hughes Medical Institute, University of Wisconsin, Madison, WI 53706, USA.

Insights

Positive-strand RNA [(+)RNA] virus replication involves membrane rearrangements. Brome mosaic virus studies show protein interactions can shift replication sites from spherules to double-membrane stacks, suggesting conserved mechanisms across viruses.

Area of Science:

  • Virology
  • Molecular Biology
  • Cell Biology

Background:

  • Positive-strand RNA [(+)RNA] viruses replicate RNA on intracellular membranes.
  • Brome mosaic virus (BMV) uses spherular invaginations as replication compartments.
  • Other (+)RNA viruses utilize diverse membrane structures for replication.

Purpose of the Study:

  • To investigate how BMV replication factors 1a and 2a polymerase (2apol) influence membrane rearrangements during RNA replication.
  • To determine if diverse membrane structures observed in (+)RNA virus replication are related.

Main Methods:

  • Modulating the expression levels and interactions of BMV replication factors 1a and 2apol.
  • Analyzing membrane structures induced by these factors using electron microscopy (implied).
  • Assessing RNA replication efficiency in different membrane structures.

Main Results:

  • Shifting the balance of 1a and 2apol levels altered membrane rearrangements from spherules to large, karmellae-like double-membrane stacks.
  • Spherules were induced by 1a or 1a with low 2apol; double-membrane layers required higher 2apol levels.
  • These stacked layers supported RNA replication efficiently, similar to spherules.

Conclusions:

  • Diverse membrane rearrangements in (+)RNA virus replication may be topologically and functionally related.
  • Altering protein-protein and protein-membrane interactions can interconvert these structures.
  • BMV replication factors 1a and 2apol play a key role in directing membrane rearrangements.

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