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Target analysis of the experimental measles therapeutic AS-136A
Jeong-Joong Yoon1, Stefanie A Krumm, J Maina Ndungu
1Department of Pediatrics, Emory University School of Medicine and Children's Healthcare of Atlanta, Atlanta, GA 30322, USA.
Abstract:
No effective therapeutic is currently in place for improved case management of severe measles or the rapid control of outbreaks. Through high-throughput screening, we recently identified a novel small-molecule class that potently blocks activity of the measles virus (MeV) RNA-dependent RNA polymerase (RdRp) complex in transient replicon assays. However, the nature of the block in RdRp activity and the physical target of the compound remained elusive. Through real-time reverse transcription-PCR analysis, we demonstrate that the lead compound AS-136A blocks viral RNA synthesis in the context of an infection. Adaptation of different MeV strains to growth in the presence of the compound identified three candidate hot spots for resistance that are located in conserved domains of the viral polymerase (L protein) subunit of the RdRp complex. Rebuilding of individual mutations in RdRp-driven reporter assays and recombinant MeV traced the molecular basis for resistance to specific mutations in L. Mutations responsible for resistance cluster in the immediate vicinity of the proposed catalytic center for phosphodiester bond formation and neighboring conserved domains of L, providing support for effective inhibition of a paramyxovirus RdRp complex through interaction of a nonnucleoside small-molecule inhibitor with the L protein. Resistance mutations are located in regions of L that are fully conserved among viral isolates, and recombinant MeV harboring individual resistance mutations show some delay in the onset of viral growth in vitro. Taken together, these data support the hypothesis that acquiring mutations in these L domains may reduce virus fitness.
Insights
Researchers identified a novel small molecule that inhibits measles virus (MeV) RNA synthesis by targeting the viral polymerase (L protein). Resistance mutations suggest a new therapeutic strategy for measles management and outbreak control.
Area of Science:
- Virology
- Molecular Biology
- Drug Discovery
Background:
- Measles virus (MeV) poses a significant public health challenge with no effective treatments for severe cases or outbreaks.
- High-throughput screening identified a novel small-molecule class inhibiting MeV RNA-dependent RNA polymerase (RdRp) activity.
Purpose of the Study:
- To elucidate the mechanism of action and identify the physical target of a novel small-molecule inhibitor of MeV.
- To investigate the potential of this inhibitor for measles therapeutic development.
Main Methods:
- Real-time reverse transcription-PCR to assess viral RNA synthesis inhibition.
- Measles virus strain adaptation assays to identify resistance mutations.
- Reporter assays and recombinant MeV to confirm resistance mutations in the L protein.
Main Results:
- The lead compound AS-136A effectively blocks MeV RNA synthesis during infection.
- Three resistance hot spots were identified in conserved domains of the MeV L protein.
- Specific mutations in the L protein confer resistance and cluster near the catalytic site.
Conclusions:
- The small molecule AS-136A inhibits MeV RdRp by interacting with the L protein.
- Identified resistance mutations suggest a viable target for antiviral drug development.
- Further research into these L protein domains could lead to improved measles therapies.
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