Abstract
Enterovirus 71 (EV71) is a major agent of hand, foot and mouth disease in children that can cause severe central nervous system disease and death. No vaccine or antiviral therapy is available. High-resolution structural analysis of the mature virus and natural empty particles shows that the mature virus is structurally similar to other enteroviruses. In contrast, the empty particles are markedly expanded and resemble elusive enterovirus-uncoating intermediates not previously characterized in atomic detail. Hydrophobic pockets in the EV71 capsid are collapsed in this expanded particle, providing a detailed explanation of the mechanism for receptor-binding triggered virus uncoating. These structures provide a model for enterovirus uncoating in which the VP1 GH loop acts as an adaptor-sensor for cellular receptor attachment, converting heterologous inputs to a generic uncoating mechanism, highlighting new opportunities for therapeutic intervention.
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Acknowledgements
We thank Sinovac Biotech Ltd. and the China National Biotech Group for providing virus samples, R. Gilbert for assistance with analytical ultracentrifugation, R. Esnouf for help with pocket analysis, J. Grimes for various help, especially with VEDA, and A. Kotecha for assistance with Diamond data collection. We also thank the Photon Factory, Japan, and the National Synchrotron Radiation Laboratory (NSRL), China. Work was supported by the National Major Project of Infectious Disease, the Ministry of Science and the Technology 973 Project (grant no. 2007CB914304). D.I.S., E.E.F. and T.S.W. are supported by the UK Medical Research Council, J.R. by the Wellcome Trust and C.P. by the Department for Environment, Food and Rural Affairs (DEFRA, UK).
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J.W., Z.H., W.Y. and X.S. prepared samples; X.W., W.P., X.L., Z.L., J.X., J.R., C.P., G.E., D.A., R.O., T.S.W., E.E.F. and D.I.S. performed research; W.P., X.W., Z.L., J.R., E.E.F. and D.I.S. analyzed data and, with D.J.R. and Z.R., wrote the manuscript, in discussion with J.W., Z.H., W.Y. and X.S.; all authors contributed to experimental design; Z.R. and D.I.S. supervised the project.
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Wang, X., Peng, W., Ren, J. et al. A sensor-adaptor mechanism for enterovirus uncoating from structures of EV71. Nat Struct Mol Biol 19, 424–429 (2012). https://doi.org/10.1038/nsmb.2255
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DOI: https://doi.org/10.1038/nsmb.2255
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