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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
Crystal structure of the RNA-dependent RNA polymerase from influenza C virus
Narin Hengrung1,2, Kamel El Omari2, Itziar Serna Martin1
1Sir William Dunn School of Pathology, University of Oxford, South Parks Road, Oxford OX1 3RE, UK.
Abstract:
Negative-sense RNA viruses, such as influenza, encode large, multidomain RNA-dependent RNA polymerases that can both transcribe and replicate the viral RNA genome. In influenza virus, the polymerase (FluPol) is composed of three polypeptides: PB1, PB2 and PA/P3. PB1 houses the polymerase active site, whereas PB2 and PA/P3 contain, respectively, cap-binding and endonuclease domains required for transcription initiation by cap-snatching. Replication occurs through de novo initiation and involves a complementary RNA intermediate. Currently available structures of the influenza A and B virus polymerases include promoter RNA (the 5' and 3' termini of viral genome segments), showing FluPol in transcription pre-initiation states. Here we report the structure of apo-FluPol from an influenza C virus, solved by X-ray crystallography to 3.9 Å, revealing a new 'closed' conformation. The apo-FluPol forms a compact particle with PB1 at its centre, capped on one face by PB2 and clamped between the two globular domains of P3. Notably, this structure is radically different from those of promoter-bound FluPols. The endonuclease domain of P3 and the domains within the carboxy-terminal two-thirds of PB2 are completely rearranged. The cap-binding site is occluded by PB2, resulting in a conformation that is incompatible with transcription initiation. Thus, our structure captures FluPol in a closed, transcription pre-activation state. This reveals the conformation of newly made apo-FluPol in an infected cell, but may also apply to FluPol in the context of a non-transcribing ribonucleoprotein complex. Comparison of the apo-FluPol structure with those of promoter-bound FluPols allows us to propose a mechanism for FluPol activation. Our study demonstrates the remarkable flexibility of influenza virus RNA polymerase, and aids our understanding of the mechanisms controlling transcription and genome replication.
Insights
We determined the structure of influenza C virus RNA polymerase in a novel closed conformation, revealing its pre-activation state. This finding advances understanding of viral RNA transcription and replication mechanisms.
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- Negative-sense RNA viruses utilize RNA-dependent RNA polymerases for transcription and replication.
- Influenza virus polymerase (FluPol) comprises PB1, PB2, and PA/P3 subunits, with specific domains for polymerase activity, cap-binding, and endonuclease function.
- Existing structures show influenza A and B virus polymerases bound to promoter RNA, representing pre-initiation states.
Purpose of the Study:
- To determine the structure of apo-FluPol from influenza C virus.
- To elucidate the conformation of FluPol in a pre-activation state, distinct from promoter-bound states.
- To propose a mechanism for FluPol activation based on structural comparisons.
Main Methods:
- X-ray crystallography was employed to solve the structure of apo-FluPol.
- The structure was determined at a resolution of 3.9 Å.
- Comparative analysis was performed between the apo-FluPol structure and existing promoter-bound FluPol structures.
Main Results:
- A novel 'closed' conformation of apo-FluPol was revealed, with PB1 at the center, PB2 capping one face, and P3 clamping the complex.
- This closed conformation differs significantly from promoter-bound FluPol structures.
- The cap-binding site is occluded, rendering the polymerase incompatible with transcription initiation, indicating a pre-activation state.
Conclusions:
- The determined structure captures apo-FluPol in a closed, transcriptionally inactive state, potentially representing newly synthesized polymerase or polymerase within a non-transcribing complex.
- The structural rearrangements observed highlight the conformational flexibility of influenza virus RNA polymerase.
- This study provides insights into the activation mechanism of FluPol and the regulation of viral RNA transcription and replication.
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