Related Experiment Video
Updated: Aug 23, 2026

Confocal Imaging of Double-Stranded RNA and Pattern Recognition Receptors in Negative-Sense RNA Virus Infection
Published on: January 26, 2019
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.
Abstract:
All positive-strand RNA [(+)RNA] viruses replicate their RNA on intracellular membranes, often in association with spherular invaginations of the target membrane. For brome mosaic virus, we previously showed that such spherules serve as compartments or mini-organelles for RNA replication and that their assembly, structure, and function have similarities to the replicative cores of retrovirus and double-stranded RNA virus virions. Some other (+)RNA viruses conduct RNA replication in association with individual or clustered double-membrane vesicles, appressed double membranes, or other structures whose possible relationships to the spherular invaginations are unclear. Here we show that modulating the relative levels and interactions of brome mosaic virus replication factors 1a and 2a polymerase (2apol) shifted the membrane rearrangements associated with RNA replication from small invaginated spherules to large, karmellae-like, multilayer stacks of appressed double membranes that supported RNA replication as efficiently as spherules. Spherules were induced by expressing 1a, which has functional similarities to retrovirus virion protein Gag, or 1a plus low levels of 2apol. Double-membrane layers were induced by 1a plus higher levels of 2apol and were suppressed by deleting the major 1a-interacting domain from 2apol. The stacked, double-membrane layers alternated with spaces that, like spherule interiors, were 50-60 nm wide, connected to the cytoplasm, and contained 1a and 2apol. These and other results suggest that seemingly diverse membrane rearrangements associated with RNA replication by varied (+)RNA viruses may represent topologically and functionally related structures formed by similar protein-protein and protein-membrane interactions and interconverted by altering the balances among those interactions.
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.
Related Concept Videos
Viruses with RNA Genomes
Retrovirus Life Cycles
Size and Structure of Viral Genomes
Inhibitors Of Virion Release
Retroviruses
Viral Mutations
