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Published on: February 23, 2024
Discovery of Small-Molecule VapC1 Nuclease Inhibitors by Virtual Screening and Scaffold Hopping from an Atomic
Hongmao Sun1, Nathan P Coussens1, Carina Danchik1
1National Center for Advancing Translational Sciences (NCATS), 9800 Medical Center Drive, Rockville, Maryland 20850, United States.
Abstract:
Nontypeable Haemophilus influenzae (NTHi) are clinically important Gram-negative bacteria that are responsible for various human mucosal diseases, including otitis media (OM). Recurrent OM caused by NTHi is common, and infections that recur less than 2 weeks following antimicrobial therapy are largely attributable to the recurrence of the same strain of bacteria. Toxin-antitoxin (TA) modules encoded by bacteria enable rapid responses to environmental stresses and are thought to facilitate growth arrest, persistence, and tolerance to antibiotics. The vapBC-1 locus of NTHi encodes a type II TA system, comprising the ribonuclease toxin VapC1 and its cognate antitoxin VapB1. The activity of VapC1 has been linked to the survival of NTHi during antibiotic treatment both in vivo and ex vivo. Therefore, inhibitors of VapC1 might serve as adjuvants to antibiotics, preventing NTHi from entering growth arrest and surviving; however, none have been reported to date. A truncated VapB1 peptide from a crystal structure of the VapBC-1 complex was used to generate pharmacophore queries to facilitate a scaffold hopping approach for the identification of small-molecule VapC1 inhibitors. The National Center for Advancing Translational Sciences small-molecule library was virtually screened using the shape-based method rapid overlay of chemical structures (ROCS), and the top-ranking hits were docked into the VapB1 binding pocket of VapC1. Two hundred virtual screening hits with the best docking scores were selected and tested in a biochemical VapC1 activity assay, which confirmed eight compounds as VapC1 inhibitors. An additional 60 compounds were selected with structural similarities to the confirmed VapC1 inhibitors, of which 20 inhibited VapC1 activity. Intracellular target engagement of five inhibitors was indicated by the destabilization of VapC1 within bacterial cells from a cellular thermal shift assay; however, no impact on bacterial growth was observed. Thus, this virtual screening and scaffold hopping approach enabled the discovery of VapC1 ribonuclease inhibitors that might serve as starting points for preclinical development.
Insights
Researchers identified small molecules that inhibit VapC1, a toxin from Nontypeable Haemophilus influenzae (NTHi). These VapC1 inhibitors could be used with antibiotics to treat recurrent NTHi infections like otitis media.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Drug Discovery
Background:
- Nontypeable Haemophilus influenzae (NTHi) causes mucosal infections, including recurrent otitis media (OM).
- Toxin-antitoxin (TA) systems, like NTHi's VapBC-1, aid bacterial survival during stress and antibiotic treatment.
- VapC1 ribonuclease activity is crucial for NTHi survival during antibiotic exposure, making it a potential therapeutic target.
Purpose of the Study:
- To identify small-molecule inhibitors of the NTHi VapC1 toxin.
- To explore VapC1 inhibitors as potential adjuvants to conventional antibiotics for treating NTHi infections.
Main Methods:
- Utilized a scaffold hopping approach based on the VapBC-1 complex structure to generate pharmacophore queries.
- Performed virtual screening of the National Center for Advancing Translational Sciences small-molecule library using ROCS and molecular docking.
- Biochemical assays and cellular thermal shift assays (CETSA) were used to validate VapC1 inhibition and target engagement.
Main Results:
- Identified eight initial VapC1 inhibitors from virtual screening, with 20 additional inhibitors found through structural similarity searches.
- Confirmed VapC1 inhibition by selected compounds in biochemical assays.
- Demonstrated intracellular target engagement of five inhibitors via CETSA, though no direct impact on bacterial growth was observed.
Conclusions:
- Successfully discovered novel small-molecule inhibitors of the NTHi VapC1 ribonuclease using virtual screening and scaffold hopping.
- These VapC1 inhibitors represent promising starting points for developing new therapeutic strategies against NTHi infections.
- Further development is needed to translate these inhibitors into clinically effective antibiotic adjuvants.
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