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Confocal Imaging of Double-Stranded RNA and Pattern Recognition Receptors in Negative-Sense RNA Virus Infection
Published on: January 26, 2019
Isolation and characterization of the positive-sense replicative intermediate of a negative-strand RNA virus
Ashley York1, Narin Hengrung, Frank T Vreede
1Sir William Dunn School of Pathology, University of Oxford, Oxford OX1 3RE, United Kingdom.
Abstract:
Negative-strand RNA viruses represent a significant class of important pathogens that cause substantial morbidity and mortality in human and animal hosts worldwide. A defining feature of these viruses is that their single-stranded RNA genomes are of opposite polarity to messenger RNA and are replicated through a positive-sense intermediate. The replicative intermediate is thought to exist as a complementary ribonucleoprotein (cRNP) complex. However, isolation of such complexes from infected cells has never been accomplished. Here we report the development of an RNA-based affinity-purification strategy for the isolation of cRNPs of influenza A virus from infected cells. This technological advance enabled the structural and functional characterization of this elusive but essential component of the viral RNA replication machine. The cRNP exhibits a filamentous double-helical organization with defined termini, containing the viral RNA-dependent RNA polymerase (RdRp) at one end and a loop structure at the other end. In vitro characterization of cRNP activity yielded mechanistic insights into the workings of this RNA synthesis machine. In particular, we found that cRNPs show activity in vitro only in the presence of added RdRp. Intriguingly, a replication-inactive RdRp mutant was also able to activate cRNP-templated viral RNA synthesis. We propose a model of influenza virus genome replication that relies on the trans-activation of the cRNP-associated RdRp. The described purification strategy should be applicable to other negative-strand RNA viruses and will promote studies into their replication mechanisms.
Insights
Researchers developed a new method to isolate complementary ribonucleoprotein (cRNP) complexes from influenza A virus-infected cells. This breakthrough allows structural and functional studies of the viral RNA replication machinery, revealing its double-helical organization and a novel trans-activation model for genome replication.
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Negative-strand RNA viruses are significant global pathogens.
- Viral RNA replication involves a complementary ribonucleoprotein (cRNP) intermediate, previously unisolated.
- Influenza A virus replication mechanisms require further elucidation.
Purpose of the Study:
- To develop a method for isolating influenza A virus cRNPs.
- To structurally and functionally characterize the isolated cRNPs.
- To gain mechanistic insights into viral RNA replication.
Main Methods:
- Development of an RNA-based affinity-purification strategy.
- Isolation of cRNPs from infected cells.
- In vitro characterization of cRNP activity and RdRp interactions.
Main Results:
- Successful isolation of influenza A virus cRNPs.
- Characterization of cRNPs as filamentous, double-helical structures with defined termini.
- Demonstration of cRNP activity requiring RdRp, including a replication-inactive mutant.
Conclusions:
- Proposed a model for influenza virus genome replication involving trans-activation of cRNP-associated RdRp.
- The purification strategy is applicable to other negative-strand RNA viruses.
- This work advances the understanding of viral RNA replication machinery.
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