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Updated: Jun 1, 2025

Author Spotlight: Investigating Bacteriophage-Induced Immune Responses in Gnotobiotic Mice
Published on: January 26, 2024
A Phage-Based Approach to Identify Antivirulence Inhibitors of Bacterial Type IV Pili
Tori M Shimozono1, Nancy J Vogelaar2, Megan T O'Hara1
1Department of Biological Sciences, Virginia Tech, Blacksburg, Virginia, USA.
Abstract:
The increasing threat of antibiotic resistance underscores the urgent need for innovative strategies to combat infectious diseases, including the development of antivirulants. Microbial pathogens rely on their virulence factors to initiate and sustain infections. Antivirulants are small molecules designed to target virulence factors, thereby attenuating the virulence of infectious microbes. The bacterial type IV pilus (T4P), an extracellular protein filament that depends on the T4P machinery (T4PM) for its biogenesis, dynamics and function, is a key virulence factor in many significant bacterial pathogens. While the T4PM presents a promising antivirulence target, the systematic identification of inhibitors for its multiple protein constituents remains a considerable challenge. Here we report a novel high-throughput screening (HTS) approach for discovering T4P inhibitors. It uses Pseudomonas aeruginosa, a high-priority pathogen, in combination with its T4P-targeting phage, φKMV. Screening of a library of 2168 compounds using an optimised protocol led to the identification of tuspetinib, based on its deterrence of the lysis of P. aeruginosa by φKMV. Our findings show that tuspetinib also inhibits two additional T4P-targeting phages, while having no effect on a phage that recognises lipopolysaccharides as its receptor. Additionally, tuspetinib impedes T4P-mediated motility in P. aeruginosa and Acinetobacter species without impacting growth or flagellar motility. This bacterium-phage pairing approach is applicable to a broad range of virulence factors that are required for phage infection, paving ways for the development of advanced chemotherapeutics against antibiotic-resistant infections.
Insights
Researchers developed a novel high-throughput screening method to find antivirulence drugs. This approach identified tuspetinib, a compound that inhibits type IV pilus function in bacteria, offering a new strategy against antibiotic resistance.
Area of Science:
- Microbiology
- Drug Discovery
- Bacteriology
Background:
- Antibiotic resistance necessitates novel therapeutic strategies beyond traditional antibiotics.
- Antivirulants target microbial virulence factors, offering a promising alternative to combat infections.
- The bacterial type IV pilus (T4P) is a crucial virulence factor in many pathogens, making its machinery (T4PM) an attractive drug target.
Purpose of the Study:
- To develop a high-throughput screening (HTS) method for identifying inhibitors of the bacterial type IV pilus machinery (T4PM).
- To discover novel antivirulence compounds targeting T4P, a key virulence factor in significant bacterial pathogens.
Main Methods:
- A novel HTS approach was developed using Pseudomonas aeruginosa and its T4P-targeting phage, φKMV.
- A library of 2168 compounds was screened using an optimized protocol.
- Inhibitory activity was assessed by monitoring phage-mediated bacterial lysis and bacterial motility.
Main Results:
- The screening identified tuspetinib as a compound that deters the lysis of P. aeruginosa by φKMV.
- Tuspetinib inhibited two additional T4P-targeting phages but not a phage targeting lipopolysaccharides.
- Tuspetinib effectively impeded T4P-mediated motility in P. aeruginosa and Acinetobacter species without affecting bacterial growth or flagellar motility.
Conclusions:
- The bacterium-phage pairing HTS approach is effective for discovering T4P inhibitors.
- Tuspetinib represents a potential antivirulence therapeutic agent targeting T4P.
- This strategy holds promise for developing novel chemotherapeutics against antibiotic-resistant infections by targeting essential virulence factors.

