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Published on: March 1, 2019
Determinants of strain-specific differences in efficiency of reovirus entry
1Department of Biology, Indiana University, Bloomington, IN 47405, USA.
Abstract:
Cell entry of reovirus requires a series of ordered steps, which include conformational changes in outer capsid protein μ1 and its autocleavage. The μ1N fragment released as a consequence of these events interacts with host cell membranes and mediates their disruption, leading to delivery of the viral core into the cytoplasm. The prototype reovirus strains T1L and T3D exhibit differences in the efficiency of autocleavage, in the propensity to undergo conformational changes required for membrane penetration, and in the capacity for penetrating host cell membranes. To better understand how polymorphic differences in μ1 influence reovirus entry events, we generated recombinant viruses that express chimeric T1L-T3D μ1 proteins and characterized them for the capacity to efficiently complete each step required for membrane penetration. Our studies revealed two important functions for the central δ region of μ1. First, we found that μ1 autocleavage is regulated by the N-terminal portion of δ, which forms an α-helical pedestal structure. Second, we observed that the C-terminal portion of δ, which forms a jelly-roll β barrel structure, regulates membrane penetration by influencing the efficiency of ISVP* formation. Thus, our studies highlight the molecular basis for differences in the membrane penetration efficiency displayed by prototype reovirus strains and suggest that distinct portions of the reovirus δ domain influence different steps during entry.
Insights
Reovirus cell entry involves outer capsid protein μ1 changes and cleavage. Distinct regions of the μ1 delta (δ) domain control autocleavage and membrane penetration, explaining strain differences.
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Reovirus cell entry is a complex process involving outer capsid protein μ1.
- Differences in μ1 structure and function exist between reovirus strains T1L and T3D.
- Understanding these differences is key to elucidating viral entry mechanisms.
Purpose of the Study:
- To investigate how polymorphic differences in the μ1 protein influence reovirus entry.
- To characterize chimeric T1L-T3D μ1 proteins in reovirus entry steps.
- To define the specific roles of the μ1 delta (δ) domain in viral entry.
Main Methods:
- Generation of recombinant reoviruses expressing chimeric T1L-T3D μ1 proteins.
- Characterization of viral entry steps, including autocleavage and membrane penetration.
- Structural analysis of μ1 protein domains.
Main Results:
- The N-terminal portion of the μ1 δ domain, an α-helical pedestal, regulates μ1 autocleavage.
- The C-terminal portion of the μ1 δ domain, a β barrel, influences membrane penetration efficiency by affecting ISVP* formation.
- Distinct regions within the μ1 δ domain mediate different steps of reovirus entry.
Conclusions:
- The study reveals the molecular basis for differences in membrane penetration efficiency between reovirus strains.
- Specific structural elements within the μ1 δ domain are critical for distinct stages of viral entry.
- This work provides insights into the regulation of reovirus cell entry.
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