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Use of Viral Entry Assays and Molecular Docking Analysis for the Identification of Antiviral Candidates against Coxsackievirus A16
Published on: July 15, 2019
Structures of Coxsackievirus A16 Capsids with Native Antigenicity: Implications for Particle Expansion, Receptor
Jingshan Ren1, Xiangxi Wang2, Ling Zhu1
1Division of Structural Biology, University of Oxford, The Henry Wellcome Building for Genomic Medicine, Headington, Oxford, United Kingdom.
Insights
Hand-foot-and-mouth disease (HFMD) is a major threat to children. Researchers determined the structure of coxsackievirus A16 (CVA16) to aid in developing a CVA16 vaccine, as existing enterovirus 71 (EV71) vaccines offer no cross-protection.
Area of Science:
- Virology
- Structural Biology
- Vaccinology
Background:
- Enterovirus 71 (EV71) and coxsackievirus A16 (CVA16) cause widespread hand-foot-and-mouth disease (HFMD) in children.
- Current EV71 vaccines do not protect against CVA16, necessitating a CVA16 or bivalent vaccine.
Purpose of the Study:
- To determine the high-resolution structure of native coxsackievirus A16 (CVA16) particles.
- To provide structural insights for developing a CVA16 vaccine or a bivalent EV71/CVA16 vaccine.
Main Methods:
- X-ray crystallography was used to determine the atomic structures of mature CVA16, natural empty CVA16 particles, and recombinant CVA16 virus-like particles.
- Structural and immunogenic comparisons were made with EV71.
Main Results:
- High-resolution structures of mature CVA16, natural empty CVA16 particles, and recombinant CVA16 virus-like particles were obtained.
- All three particles exhibited similar structures and identical antigenicity.
- Recombinant CVA16 particles, produced in insect cells, were stabilized by a unique lipid moiety.
Conclusions:
- The determined structures provide a basis for structure-based drug design and vaccine development against CVA16.
- Understanding CVA16 structure is crucial for addressing HFMD epidemics and developing effective vaccines.
Unlabelled:
Enterovirus 71 (EV71) and coxsackievirus A16 (CVA16) are the primary causes of the epidemics of hand-foot-and-mouth disease (HFMD) that affect more than a million children in China each year and lead to hundreds of deaths. Although there has been progress with vaccines for EV71, the development of a CVA16 vaccine has proved more challenging, and the EV71 vaccine does not give useful cross-protection, despite the capsid proteins of the two viruses sharing about 80% sequence identity. The structural details of the expanded forms of the capsids, which possess nonnative antigenicity, are now well understood, but high resolution information for the native antigenic form of CVA16 has been missing. Here, we remedy this with high resolution X-ray structures of both mature and natural empty CVA16 particles and also of empty recombinant viruslike particles of CVA16 produced in insect cells, a potential vaccine antigen. All three structures are unexpanded native particles and antigenically identical. The recombinant particles have recruited a lipid moiety to stabilize the native antigenic state that is different from the one used in a natural virus infection. As expected, the mature CVA16 virus is similar to EV71; however, structural and immunogenic comparisons highlight differences that may have implications for vaccine production.
Importance:
Hand-foot-and-mouth disease is a serious public health threat to children in Asian-Pacific countries, resulting in millions of cases. EV71 and CVA16 are the two dominant causative agents of the disease that, while usually mild, can cause severe neurological complications, leading to hundreds of deaths. EV71 vaccines do not provide protection against CVA16. A CVA16 vaccine or bivalent EV71/CVA16 vaccine is therefore urgently needed. We report atomic structures for the mature CVA16 virus, a natural empty particle, and a recombinant CVA16 virus-like particle that does not contain the viral genome. All three particles have similar structures and identical antigenicity. The recombinant particles, produced in insect cells (a system suitable for making vaccine antigen), are stabilized by recruiting from the insect cells a small molecule that is different from that used by the virus in a normal infection. We present structural and immunogenic comparisons with EV71 to facilitate structure-based drug design and vaccine development.
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