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A role for endoplasmic reticulum exit sites in foot-and-mouth disease virus infection
Rebecca Midgley1, Katy Moffat1, Stephen Berryman1
1The Pirbright Institute, Pirbright, Surrey GU24 0NF, UK.
Abstract:
Picornaviruses replicate their genomes in association with cellular membranes. While enteroviruses are believed to utilize membranes of the early secretory pathway, the origin of the membranes used by foot-and-mouth disease virus (FMDV) for replication are unknown. Secretory-vesicle traffic through the early secretory pathway is mediated by the sequential acquisition of two distinct membrane coat complexes, COPII and COPI, and requires the coordinated actions of Sar1, Arf1 and Rab proteins. Sar1 is essential for generating COPII vesicles at endoplasmic reticulum (ER) exit sites (ERESs), while Arf1 and Rab1 are required for subsequent vesicle transport by COPI vesicles. In the present study, we have provided evidence that FMDV requires pre-Golgi membranes of the early secretory pathway for infection. Small interfering RNA depletion of Sar1 or expression of a dominant-negative (DN) mutant of Sar1a inhibited FMDV infection. In contrast, a dominant-active mutant of Sar1a, which allowed COPII vesicle formation but inhibited the secretory pathway by stabilizing COPII coats, caused major disruption to the ER-Golgi intermediate compartment (ERGIC) but did not inhibit infection. Treatment of cells with brefeldin A, or expression of DN mutants of Arf1 and Rab1a, disrupted the Golgi and enhanced FMDV infection. These results show that reagents that block the early secretory pathway at ERESs have an inhibitory effect on FMDV infection, while reagents that block the early secretory pathway immediately after ER exit but before the ERGIC and Golgi make infection more favourable. Together, these observations argue for a role for Sar1 in FMDV infection and that initial virus replication takes place on membranes that are formed at ERESs.
Insights
Foot-and-mouth disease virus (FMDV) requires early secretory pathway membranes for replication. Blocking Sar1 at endoplasmic reticulum exit sites inhibits FMDV infection, indicating replication occurs on these specific membranes.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Picornaviruses, including FMDV, replicate using cellular membranes.
- Enteroviruses use early secretory pathway membranes, but FMDV membrane origins are unknown.
- Secretory pathway vesicle transport involves COPII, COPI, Sar1, Arf1, and Rab proteins.
Purpose of the Study:
- To investigate the origin of cellular membranes used by FMDV for replication.
- To determine the role of the early secretory pathway in FMDV infection.
Main Methods:
- Small interfering RNA (siRNA) depletion of Sar1.
- Expression of dominant-negative (DN) and dominant-active Sar1a mutants.
- Treatment with brefeldin A.
- Expression of DN mutants of Arf1 and Rab1a.
Main Results:
- Sar1 depletion or DN Sar1a expression inhibited FMDV infection.
- Dominant-active Sar1a disrupted the ER-Golgi intermediate compartment (ERGIC) but did not inhibit infection.
- Brefeldin A treatment or DN Arf1/Rab1a expression enhanced FMDV infection.
Conclusions:
- FMDV requires pre-Golgi membranes of the early secretory pathway for infection.
- Sar1 plays a crucial role in FMDV infection.
- Virus replication initiates on membranes formed at endoplasmic reticulum exit sites (ERESs).
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