Literature DB >> 28794028

The Loop Formed by Residues 340 to 343 of Reovirus μ1 Controls Entry-Related Conformational Changes.

Anthony J Snyder1, Pranav Danthi2.   

Abstract

Reovirus particles are covered with 200 μ1/σ3 heterohexamers. Following attachment to cell surface receptors, reovirus is internalized by receptor-mediated endocytosis. Within the endosome, particles undergo a series of stepwise disassembly events. First, the σ3 protector protein is degraded by cellular proteases to generate infectious subviral particles (ISVPs). Second, the μ1 protein rearranges into a protease-sensitive conformation to generate ISVP*s and releases two virus-encoded peptides, μ1N and Φ. The released peptides promote delivery of the genome-containing core by perforating the endosomal membrane. Thus, to establish a productive infection, virions must be stable in the environment but flexible to disassemble in response to the appropriate cellular cue. The reovirus outer capsid is stabilized by μ1 intratrimer, intertrimer, and trimer-core interactions. As a consequence of ISVP-to-ISVP* conversion, neighboring μ1 trimers unwind and separate. Located within the μ1 jelly roll β barrel domain, which is a known regulator of ISVP* formation, residues 340 to 343 form a loop and have been proposed to facilitate viral entry. To test this idea, we generated recombinant reoviruses that encoded deletions within this loop (Δ341 and Δ342). Both deletions destabilized the outer capsid. Notably, Δ342 impaired the viral life cycle; however, replicative fitness was restored by an additional change (V403A) within the μ1 jelly roll β barrel domain. In the Δ341 and Δ342 backgrounds, V403A also rescued defects in ISVP-to-ISVP* conversion. Together, these findings reveal a new region that regulates reovirus disassembly and how perturbing a metastable capsid can compromise replicative fitness.IMPORTANCE Capsids of nonenveloped viruses are composed of protein complexes that encapsulate, or form a shell around, nucleic acid. The protein-protein interactions that form this shell must be stable to protect the viral genome but also sufficiently flexible to disassemble during cell entry. Thus, capsids adopt conformations that undergo rapid disassembly in response to a specific cellular cue. In this work, we identify a new region within the mammalian orthoreovirus outer capsid that regulates particle stability. Amino acid deletions that destabilize this region impair the viral replication cycle. Nonetheless, replicative fitness is restored by a compensatory mutation that restores particle stability. Together, this work demonstrates the critical balance between assembling virions that are stable and maintaining conformational flexibility. Any factor that perturbs this balance has the potential to block a productive infection.
Copyright © 2017 American Society for Microbiology.

Entities:  

Keywords:  capsid; conformational change; metastable; nonenveloped virus; reovirus; thermostability

Year:  2017        PMID: 28794028      PMCID: PMC5625490          DOI: 10.1128/JVI.00898-17

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  65 in total

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Authors:  Tijana Ivanovic; Melina A Agosto; Lan Zhang; Kartik Chandran; Stephen C Harrison; Max L Nibert
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Authors:  J Borsa; D G Long; M D Sargent; T P Copps; J D Chapman
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Authors:  P Clarke; S M Meintzer; C Widmann; G L Johnson; K L Tyler
Journal:  J Virol       Date:  2001-12       Impact factor: 5.103

9.  Early steps in reovirus infection are associated with dramatic changes in supramolecular structure and protein conformation: analysis of virions and subviral particles by cryoelectron microscopy and image reconstruction.

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Journal:  J Cell Biol       Date:  1993-09       Impact factor: 10.539

10.  Independent regulation of reovirus membrane penetration and apoptosis by the mu1 phi domain.

Authors:  Pranav Danthi; Caroline M Coffey; John S L Parker; Ty W Abel; Terence S Dermody
Journal:  PLoS Pathog       Date:  2008-12-26       Impact factor: 6.823

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Journal:  J Virol       Date:  2018-09-26       Impact factor: 5.103

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