Abstract
The matrix protein (M) of paramyxoviruses plays a key role in determining virion morphology by directing viral assembly and budding. Here, we report the crystal structure of the human metapneumovirus M at 2.8 Å resolution in its native dimeric state. The structure reveals the presence of a high-affinity Ca2+ binding site. Molecular dynamics simulations (MDS) predict a secondary lower-affinity site that correlates well with data from fluorescence-based thermal shift assays. By combining small-angle X-ray scattering with MDS and ensemble analysis, we captured the structure and dynamics of M in solution. Our analysis reveals a large positively charged patch on the protein surface that is involved in membrane interaction. Structural analysis of DOPC-induced polymerization of M into helical filaments using electron microscopy leads to a model of M self-assembly. The conservation of the Ca2+ binding sites suggests a role for calcium in the replication and morphogenesis of pneumoviruses. © 2014 Elsevier Ltd All rights reserved.
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CITATION STYLE
Leyrat, C., Renner, M., Harlos, K., Huiskonen, J. T., & Grimes, J. M. (2014). Structure and self-assembly of the calcium binding matrix protein of human metapneumovirus. Structure, 22(1), 136–148. https://doi.org/10.1016/j.str.2013.10.013
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