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Updated: Feb 5, 2026

Artificial RNA Polymerase II Elongation Complexes for Dissecting Co-transcriptional RNA Processing Events
Published on: May 13, 2019
Development of an allosteric inhibitor class blocking RNA elongation by the respiratory syncytial virus polymerase
Robert M Cox1, Mart Toots1, Jeong-Joong Yoon1
1From the Institute for Biomedical Sciences, Georgia State University, Atlanta, Georgia 30303.
Insights
Researchers identified a novel compound, AVG-233, that effectively inhibits respiratory syncytial virus (RSV) RNA polymerase. This promising antiviral drug candidate shows nanomolar activity and good oral bioavailability in preclinical studies.
Area of Science:
- Virology
- Medicinal Chemistry
- Drug Discovery
Background:
- Respiratory syncytial virus (RSV) poses a significant health risk, particularly to infants and immunocompromised individuals.
- Current RSV management relies on supportive care, highlighting the urgent need for effective antiviral therapies.
- No vaccines are currently available for RSV prevention.
Purpose of the Study:
- To discover and develop novel antiviral agents targeting RSV.
- To identify chemical scaffolds that inhibit the RSV RNA-dependent RNA polymerase (RdRp) complex.
- To optimize initial hits into advanced drug leads with improved potency and pharmacokinetic properties.
Main Methods:
- High-throughput screening of a 57,000-compound library to identify anti-RSV activity.
- In vitro mechanistic studies to characterize RdRp inhibition and compound mechanism of action.
- Hit-to-lead optimization using 3D-QSAR modeling and in silico pharmacokinetic predictions.
- Preclinical evaluation of AVG-233 in cell-based assays and pharmacokinetic studies in mice.
Main Results:
- A compound class specifically inhibiting RSV RdRp was identified.
- Optimization led to analogs with >20-fold increased potency and selectivity indices >1,000.
- The advanced lead AVG-233 demonstrated nanomolar activity against diverse RSV strains in cell cultures.
- AVG-233 exhibited 34% oral bioavailability and sustained drug levels in mice.
Conclusions:
- AVG-233 is a promising first-in-class lead compound for RSV antiviral therapy.
- The developed optimization strategies successfully improved potency, selectivity, and pharmacokinetic profiles.
- Further development of AVG-233 is warranted for its potential as an effective anti-RSV drug.
Abstract:
Respiratory syncytial virus (RSV) represents a significant health threat to infants and to elderly or immunocompromised individuals. There are currently no vaccines available to prevent RSV infections, and disease management is largely limited to supportive care, making the identification and development of effective antiviral therapeutics against RSV a priority. To identify effective chemical scaffolds for managing RSV disease, we conducted a high-throughput anti-RSV screen of a 57,000-compound library. We identified a hit compound that specifically blocked activity of the RSV RNA-dependent RNA polymerase (RdRp) complex, initially with moderate low-micromolar potency. Mechanistic characterization in an in vitro RSV RdRp assay indicated that representatives of this compound class block elongation of RSV RNA products after initial extension by up to three nucleotides. Synthetic hit-to-lead exploration yielded an informative 3D quantitative structure-activity relationship (3D-QSAR) model and resulted in analogs with more than 20-fold improved potency and selectivity indices (SIs) of >1,000. However, first-generation leads exhibited limited water solubility and poor metabolic stability. A second optimization strategy informed by the 3D-QSAR model combined with in silico pharmacokinetics (PK) predictions yielded an advanced lead, AVG-233, that demonstrated nanomolar activity against both laboratory-adapted RSV strains and clinical RSV isolates. This anti-RSV activity extended to infection of established cell lines and primary human airway cells. PK profiling in mice revealed 34% oral bioavailability of AVG-233 and sustained high drug levels in the circulation after a single oral dose of 20 mg/kg. This promising first-in-class lead warrants further development as an anti-RSV drug.
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