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Methods to Classify Cytoplasmic Foci as Mammalian Stress Granules
Published on: May 12, 2017
Mammalian Orthoreovirus Factories Modulate Stress Granule Protein Localization by Interaction with G3BP1
Promisree Choudhury1, Luke D Bussiere1,2, Cathy L Miller3,2
1Department of Veterinary Microbiology and Preventive Medicine, College of Veterinary Medicine, Iowa State University, Ames, Iowa, USA.
Abstract:
Mammalian orthoreovirus (MRV) infection induces phosphorylation of translation initiation factor eIF2α, which promotes the formation of discrete cytoplasmic inclusions, termed stress granules (SGs). SGs are emerging as a component of the innate immune response to virus infection, and modulation of SG assembly is a common mechanism employed by viruses to counter this antiviral response. We previously showed that MRV infection induces SGs early and then interferes with SG formation as infection proceeds. In this work, we found that SG-associated proteins localized to the periphery of virus-encoded cytoplasmic structures, termed virus factories (VFs), where viral transcription, translation, and replication occur. The localization of SG proteins to VFs was dependent on polysome dissociation and occurred via association of the SG effector protein, Ras-GAP SH3-binding protein 1 (G3BP1), with the MRV nonstructural protein σNS, which localizes to VFs via association with VF nucleating protein, μNS. Deletion analysis of the σNS RNA binding domain and G3BP1 RNA (RRM) and ribosomal (RGG) binding domains showed that σNS association and VF localization phenotypes of G3BP1 do not occur solely through RNA or ribosomal binding but require both the RRM and RGG domains of G3BP1 for maximal viral-factory-like structure (VFL) localization and σNS association. Coexpression of σNS and μNS resulted in disruption of normal SG puncta, and in cells lacking G3BP1, MRV replication was enhanced in a manner correlating with strain-dependent induction of host translation shutoff. These results suggest that σNS association with G3BP1 and relocalization of G3BP1 to the VF periphery play roles in SG disruption to facilitate MRV replication in the host translational shutoff environment.IMPORTANCE SGs and SG effector proteins have emerged as important, yet poorly understood, players in the host's innate immune response to virus infection. MRV infection induces SGs early during infection that are dispersed and/or prevented from forming during late stages of infection despite continued activation of the eIF2α signaling pathway. Cellular and viral components involved in disruption of SGs during late stages of MRV infection remain to be elucidated. This work provides evidence that MRV disruption of SGs may be facilitated by association of the MRV nonstructural protein σNS with the major SG effector protein G3BP1 and subsequent localization of G3BP1 and other SG-associated proteins around the peripheries of virus-encoded factories, interrupting the normal formation of SGs. Our findings also reveal the importance of G3BP1 as an inhibitor of MRV replication during infection for the first time.
Insights
Mammalian orthoreovirus (MRV) infection disrupts stress granules (SGs) by recruiting SG proteins to viral factories. This interaction, involving MRV protein σNS and G3BP1, enhances viral replication by interfering with the innate immune response.
Area of Science:
- Virology
- Cellular Biology
- Innate Immunity
Background:
- Mammalian orthoreovirus (MRV) infection triggers stress granule (SG) formation, a cellular defense mechanism.
- Viruses often manipulate SG assembly to evade host immunity.
- MRV initially induces SGs but later interferes with their formation.
Purpose of the Study:
- To elucidate the mechanism by which MRV disrupts SG formation during infection.
- To identify viral and cellular factors involved in SG modulation by MRV.
- To understand the role of SG disruption in MRV replication and host shutoff.
Main Methods:
- Investigated the localization of SG-associated proteins, specifically G3BP1, relative to MRV-induced virus factories (VFs).
- Analyzed the interaction between MRV nonstructural protein σNS and G3BP1 using deletion analysis of their RNA and ribosomal binding domains.
- Assessed the impact of σNS and μNS coexpression on SG formation and MRV replication in G3BP1-deficient cells.
Main Results:
- SG proteins, including G3BP1, were found at the periphery of MRV VFs, dependent on polysome dissociation.
- G3BP1's localization to VFs and association with σNS required both RRM and RGG domains for maximal effect.
- MRV replication was enhanced in G3BP1-deficient cells, correlating with increased host translation shutoff.
Conclusions:
- MRV protein σNS facilitates SG disruption by associating with G3BP1 and relocating it to VFs, thereby hindering SG formation.
- This disruption of SGs by MRV aids viral replication within the host's translational shutoff environment.
- G3BP1 acts as a crucial inhibitor of MRV replication.
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