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.

Journal of Virology
|August 14, 2015
PubMed

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.
Abstract

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