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Multi-target Parallel Processing Approach for Gene-to-structure Determination of the Influenza Polymerase PB2 Subunit
Published on: June 28, 2013
Structure of the nucleocapsid-binding domain from the mumps virus polymerase; an example of protein folding induced
Richard L Kingston1, Leslie S Gay, Walter S Baase
1School of Biological Sciences, University of Auckland, Private Bag 92019, Auckland 1142, New Zealand. rl.kingston@auckland.ac.nz
Abstract:
The human pathogen mumps virus, like all paramyxoviruses, encodes a polymerase responsible for virally directed RNA synthesis. The template for the polymerase is the nucleocapsid, a filamentous protein-RNA complex harboring the viral genome. Interaction of the polymerase and the nucleocapsid is mediated by a small domain tethered to the end of the phosphoprotein (P), one of the polymerase subunits. We report the X-ray crystal structure of this region of mumps virus P (the nucleocapsid-binding domain, or NBD, amino acids 343-391). The mumps P NBD forms a compact bundle of three alpha-helices within the crystal, a fold apparently conserved across the Paramyxovirinae. In solution, however, the domain exists in the molten globule state. This is demonstrated through application of differential scanning calorimetry, circular dichroism spectroscopy, NMR spectroscopy, and dynamic light scattering. While the mumps P NBD is compact and has persistent secondary structure, it lacks a well-defined tertiary structure under normal solution conditions. It can, however, be induced to fold by addition of a stabilizing methylamine cosolute. The domain provides a rare example of a molten globule that can be crystallized. The structure that is stabilized in the crystal represents the fully folded state of the domain, which must be transiently realized during binding to the viral nucleocapsid. While the intermolecular forces that govern the polymerase-nucleocapsid interaction appear to be different in measles, mumps, and Sendai viruses, for each of these viruses, polymerase translocation involves the coupled binding and folding of protein domains. In all cases, we suggest that this will result in a weak-affinity protein complex with a short lifetime, which allows the polymerase to take rapid steps forward.
Insights
The mumps virus phosphoprotein
Area of Science:
- Structural biology
- Virology
- Biochemistry
Background:
- Mumps virus, a paramyxovirus, requires a polymerase for RNA synthesis.
- The viral polymerase interacts with the nucleocapsid, a protein-RNA complex containing the genome.
- This interaction is mediated by a domain on the phosphoprotein (P).
Purpose of the Study:
- To determine the X-ray crystal structure of the mumps virus P nucleocapsid-binding domain (NBD).
- To investigate the solution structure and folding behavior of the mumps P NBD.
- To understand the role of protein domain folding in polymerase-nucleocapsid interactions.
Main Methods:
- X-ray crystallography
- Differential scanning calorimetry
- Circular dichroism spectroscopy
- NMR spectroscopy
- Dynamic light scattering
Main Results:
- The mumps P NBD (amino acids 343-391) forms a stable three-alpha-helix bundle in crystals.
- In solution, the NBD exists as a molten globule with persistent secondary but not well-defined tertiary structure.
- Stabilizing methylamine cosolutes induce folding of the NBD in solution.
- The crystal structure represents the fully folded state, transiently accessed during nucleocapsid binding.
Conclusions:
- The mumps P NBD exhibits a unique molten globule state in solution that can be crystallized.
- Polymerase translocation in paramyxoviruses involves coupled binding and folding of protein domains.
- This mechanism likely facilitates rapid polymerase movement through weak-affinity, short-lived complexes.
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