Structural and biochemical basis for development of influenza virus inhibitors targeting the PA endonuclease
Rebecca M DuBois1, P Jake Slavish, Brandi M Baughman
1Department of Structural Biology, St. Jude Children's Research Hospital, Memphis, Tennessee, USA.
Abstract:
Emerging influenza viruses are a serious threat to human health because of their pandemic potential. A promising target for the development of novel anti-influenza therapeutics is the PA protein, whose endonuclease activity is essential for viral replication. Translation of viral mRNAs by the host ribosome requires mRNA capping for recognition and binding, and the necessary mRNA caps are cleaved or "snatched" from host pre-mRNAs by the PA endonuclease. The structure-based development of inhibitors that target PA endonuclease is now possible with the recent crystal structure of the PA catalytic domain. In this study, we sought to understand the molecular mechanism of inhibition by several compounds that are known or predicted to block endonuclease-dependent polymerase activity. Using an in vitro endonuclease activity assay, we show that these compounds block the enzymatic activity of the isolated PA endonuclease domain. Using X-ray crystallography, we show how these inhibitors coordinate the two-metal endonuclease active site and engage the active site residues. Two structures also reveal an induced-fit mode of inhibitor binding. The structures allow a molecular understanding of the structure-activity relationship of several known influenza inhibitors and the mechanism of drug resistance by a PA mutation. Taken together, our data reveal new strategies for structure-based design and optimization of PA endonuclease inhibitors.
Insights
Novel therapeutics targeting the influenza PA protein
Area of Science:
- Virology
- Structural Biology
- Drug Discovery
Background:
- Emerging influenza viruses pose a significant pandemic threat.
- The PA protein's endonuclease activity is crucial for viral replication.
- PA endonuclease snatches mRNA caps from host pre-mRNAs, essential for viral translation.
Purpose of the Study:
- To understand the molecular mechanism of PA endonuclease inhibition.
- To investigate structure-activity relationships of known influenza inhibitors.
- To explore strategies for developing novel anti-influenza therapeutics.
Main Methods:
- In vitro endonuclease activity assays.
- X-ray crystallography of PA endonuclease-inhibitor complexes.
- Analysis of inhibitor binding modes and active site interactions.
Main Results:
- Compounds tested effectively blocked PA endonuclease activity.
- X-ray structures revealed how inhibitors coordinate the active site metals and residues.
- Two structures demonstrated an induced-fit binding mechanism.
- Structure-activity relationships and drug resistance mechanisms were elucidated.
Conclusions:
- Detailed molecular insights into PA endonuclease inhibition were achieved.
- Understanding inhibitor binding and resistance provides a basis for new drug design.
- This study offers new strategies for optimizing PA endonuclease inhibitors.
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