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2.
J Virol ; 91(2)2017 Jan 15.
Article in English | MEDLINE | ID: mdl-27852845

ABSTRACT

The picornavirus-like deformed wing virus (DWV) has been directly linked to colony collapse; however, little is known about the mechanisms of host attachment or entry for DWV or its molecular and structural details. Here we report the three-dimensional (3-D) structures of DWV capsids isolated from infected honey bees, including the immature procapsid, the genome-filled virion, the putative entry intermediate (A-particle), and the empty capsid that remains after genome release. The capsids are decorated by large spikes around the 5-fold vertices. The 5-fold spikes had an open flower-like conformation for the procapsid and genome-filled capsids, whereas the putative A-particle and empty capsids that had released the genome had a closed tube-like spike conformation. Between the two conformations, the spikes undergo a significant hinge-like movement that we predicted using a Robetta model of the structure comprising the spike. We conclude that the spike structures likely serve a function during host entry, changing conformation to release the genome, and that the genome may escape from a 5-fold vertex to initiate infection. Finally, the structures illustrate that, similarly to picornaviruses, DWV forms alternate particle conformations implicated in assembly, host attachment, and RNA release. IMPORTANCE: Honey bees are critical for global agriculture, but dramatic losses of entire hives have been reported in numerous countries since 2006. Deformed wing virus (DWV) and infestation with the ectoparasitic mite Varroa destructor have been linked to colony collapse disorder. DWV was purified from infected adult worker bees to pursue biochemical and structural studies that allowed the first glimpse into the conformational changes that may be required during transmission and genome release for DWV.


Subject(s)
Bees/virology , Insect Viruses/physiology , Picornaviridae/physiology , Amino Acid Sequence , Animals , Capsid/metabolism , Capsid/ultrastructure , Insect Viruses/ultrastructure , Models, Molecular , Picornaviridae/ultrastructure , Protein Conformation , Viral Proteins/chemistry , Viral Proteins/genetics , Viral Proteins/metabolism , Virion/ultrastructure
3.
Sci Adv ; 2(8): e1501929, 2016 08.
Article in English | MEDLINE | ID: mdl-27574701

ABSTRACT

Many nonenveloped viruses engage host receptors that initiate capsid conformational changes necessary for genome release. Structural studies on the mechanisms of picornavirus entry have relied on in vitro approaches of virus incubated at high temperatures or with excess receptor molecules to trigger the entry intermediate or A-particle. We have induced the coxsackievirus B3 entry intermediate by triggering the virus with full-length receptors embedded in lipid bilayer nanodiscs. These asymmetrically formed A-particles were reconstructed using cryo-electron microscopy and a direct electron detector. These first high-resolution structures of a picornavirus entry intermediate captured at a membrane with and without imposing icosahedral symmetry (3.9 and 7.8 Å, respectively) revealed a novel A-particle that is markedly different from the classical A-particles. The asymmetric receptor binding triggers minimal global capsid expansion but marked local conformational changes at the site of receptor interaction. In addition, viral proteins extrude from the capsid only at the site of extensive protein remodeling adjacent to the nanodisc. Thus, the binding of the receptor triggers formation of a unique site in preparation for genome release.


Subject(s)
Capsid Proteins/genetics , Coxsackievirus Infections/virology , Enterovirus/genetics , Host-Pathogen Interactions/genetics , Capsid/chemistry , Capsid/ultrastructure , Capsid Proteins/chemistry , Capsid Proteins/ultrastructure , Coxsackievirus Infections/genetics , Cryoelectron Microscopy , Lipid Bilayers/chemistry , Lipid Bilayers/metabolism , Picornaviridae/chemistry , Picornaviridae/genetics , Picornaviridae/ultrastructure , Protein Binding , Protein Conformation , Virion/chemistry , Virion/ultrastructure , Virus Internalization
4.
J Virol ; 89(3): 1900-8, 2015 Feb.
Article in English | MEDLINE | ID: mdl-25428877

ABSTRACT

UNLABELLED: Enterovirus 71 (EV71) is responsible for seasonal outbreaks of hand, foot, and mouth disease in the Asia-Pacific region. The virus has the capability to cause severe disease and death, especially in young children. Although several vaccines are currently in clinical trials, no vaccines or therapeutics have been approved for use. Previous structural studies have revealed that two antigenically distinct capsid forms are produced in EV71-infected cells: an expanded empty capsid, sometimes called a procapsid, and the infectious virus. Specifically, an immunodominant epitope of EV71 that maps to the virus canyon is structurally different in the procapsid and virus. This structure-function study shows that the procapsid can sequester antibodies, thus enhancing EV71 infection in vitro. The results presented here suggest that, due to conformational differences between the EV71 procapsid and virus, the presence of the procapsid in natural virus infections should be considered in the future design of vaccines or therapeutics. IMPORTANCE: In a picornavirus infection, both an infectious and a noninfectious empty capsid, sometimes referred to as a procapsid, are produced. It was novel to discover that the procapsid form of EV71 was expanded and antigenically distinct from the infectious virus. Previously, it had been supposed that this empty capsid was an off-pathway dead end or at best served for storage of pentameric subunits, which was later shown to be unlikely. It remains unexplained why picornaviruses evolutionarily conserve the wasteful production of so much noninfectious capsid. Here, we demonstrate that the EV71 procapsid has different antigenic properties than the infectious virus. Thus, the procapsid has the capacity to sequester neutralizing antibody and protect the virus, promoting or restoring a successful infection in vitro. This important observation should be considered in the future design and development of vaccines and therapeutics.


Subject(s)
Antibodies, Neutralizing/immunology , Antibodies, Viral/immunology , Capsid/immunology , Enterovirus A, Human/immunology , Enterovirus A, Human/physiology , Virus Internalization , HeLa Cells , Humans , Models, Molecular , Protein Binding , Protein Conformation
5.
Bio Protoc ; 4(9)2014 May 05.
Article in English | MEDLINE | ID: mdl-27547789

ABSTRACT

Since its discovery in 1969, enterovirus 71 (EV71) has emerged as a serious worldwide health threat. This member of the picornavirus family causes hand, foot, and mouth disease, and also has the capacity to invade the central nervous system to cause severe disease and death. This is the propagation and purification procedure to produce infectious virion.

6.
J Virol ; 87(13): 7637-45, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23637404

ABSTRACT

Enterovirus 71 (EV71) is an important emerging human pathogen with a global distribution and presents a disease pattern resembling poliomyelitis with seasonal epidemics that include cases of severe neurological complications, such as acute flaccid paralysis. EV71 is a member of the Picornaviridae family, which consists of icosahedral, nonenveloped, single-stranded RNA viruses. Here we report structures derived from X-ray crystallography and cryoelectron microscopy (cryo-EM) for the 1095 strain of EV71, including a putative precursor in virus assembly, the procapsid, and the mature virus capsid. The cryo-EM map of the procapsid provides new structural information on portions of the capsid proteins VP0 and VP1 that are disordered in the higher-resolution crystal structures. Our structures solved from virus particles in solution are largely in agreement with those from prior X-ray crystallographic studies; however, we observe small but significant structural differences for the 1095 procapsid compared to a structure solved in a previous study (X. Wang, W. Peng, J. Ren, Z. Hu, J. Xu, Z. Lou, X. Li, W. Yin, X. Shen, C. Porta, T. S. Walter, G. Evans, D. Axford, R. Owen, D. J. Rowlands, J. Wang, D. I. Stuart, E. E. Fry, and Z. Rao, Nat. Struct. Mol. Biol. 19:424-429, 2012) for a different strain of EV71. For both EV71 strains, the procapsid is significantly larger in diameter than the mature capsid, unlike in any other picornavirus. Nonetheless, our results demonstrate that picornavirus capsid expansion is possible without RNA encapsidation and that picornavirus assembly may involve an inward radial collapse of the procapsid to yield the native virion.


Subject(s)
Capsid/diagnostic imaging , Enterovirus A, Human/genetics , Models, Molecular , Virion/ultrastructure , Capsid/physiology , Cryoelectron Microscopy , Crystallography, X-Ray , Humans , Ultrasonography , Virion/physiology
7.
PLoS Pathog ; 9(3): e1003240, 2013 Mar.
Article in English | MEDLINE | ID: mdl-23555253

ABSTRACT

Since its discovery in 1969, enterovirus 71 (EV71) has emerged as a serious worldwide health threat. This human pathogen of the picornavirus family causes hand, foot, and mouth disease, and also has the capacity to invade the central nervous system to cause severe disease and death. Upon binding to a host receptor on the cell surface, the virus begins a two-step uncoating process, first forming an expanded, altered "A-particle", which is primed for genome release. In a second step after endocytosis, an unknown trigger leads to RNA expulsion, generating an intact, empty capsid. Cryo-electron microscopy reconstructions of these two capsid states provide insight into the mechanics of genome release. The EV71 A-particle capsid interacts with the genome near the icosahedral two-fold axis of symmetry, which opens to the external environment via a channel ∼10 Šin diameter that is lined with patches of negatively charged residues. After the EV71 genome has been released, the two-fold channel shrinks, though the overall capsid dimensions are conserved. These structural characteristics identify the two-fold channel as the site where a gateway forms and regulates the process of genome release.


Subject(s)
Capsid Proteins/metabolism , Enterovirus A, Human/genetics , Enterovirus A, Human/pathogenicity , Genome, Viral , Host-Pathogen Interactions , Virus Uncoating/physiology , Capsid/physiology , Capsid/ultrastructure , Cryoelectron Microscopy , Endocytosis , Enterovirus A, Human/metabolism , Enterovirus A, Human/ultrastructure , Enterovirus Infections/virology , HeLa Cells , Humans , Protein Binding , RNA, Viral/physiology , Receptors, Cell Surface/metabolism , Virion/genetics
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