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Updated: May 4, 2026

Author Spotlight: Exploring Cytoskeletal Dynamics to Unveil Novel Antibiotics Through Innovative Cell-Based Assays
Published on: April 26, 2024
A structural biology approach enables the development of antimicrobials targeting bacterial immunophilins
Darren W Begley1, David Fox, Dominic Jenner
1Emerald Bio, Bainbridge Island, Washington, USA.
Abstract:
Macrophage infectivity potentiators (Mips) are immunophilin proteins and essential virulence factors for a range of pathogenic organisms. We applied a structural biology approach to characterize a Mip from Burkholderia pseudomallei (BpML1), the causative agent of melioidosis. Crystal structure and nuclear magnetic resonance analyses of BpML1 in complex with known macrocyclics and other derivatives led to the identification of a key chemical scaffold. This scaffold possesses inhibitory potency for BpML1 without the immunosuppressive components of related macrocyclic agents. Biophysical characterization of a compound series with this scaffold allowed binding site specificity in solution and potency determinations for rank ordering the set. The best compounds in this series possessed a low-micromolar affinity for BpML1, bound at the site of enzymatic activity, and inhibited a panel of homologous Mip proteins from other pathogenic bacteria, without demonstrating toxicity in human macrophages. Importantly, the in vitro activity of BpML1 was reduced by these compounds, leading to decreased macrophage infectivity and intracellular growth of Burkholderia pseudomallei. These compounds offer the potential for activity against a new class of antimicrobial targets and present the utility of a structure-based approach for novel antimicrobial drug discovery.
Insights
Researchers identified a novel chemical scaffold targeting macrophage infectivity potentiators (Mips), crucial for bacterial virulence. This scaffold inhibits Mip activity, reducing Burkholderia pseudomallei infectivity and offering a new avenue for antimicrobial drug discovery.
Area of Science:
- Structural biology
- Microbiology
- Drug discovery
Background:
- Macrophage infectivity potentiators (Mips) are essential virulence factors in pathogenic organisms.
- Understanding Mip function is critical for developing new antimicrobial strategies.
Purpose of the Study:
- To characterize the Mip from Burkholderia pseudomallei (BpML1) using structural biology.
- To identify novel inhibitors of BpML1 with potential antimicrobial activity.
Main Methods:
- Crystal structure and nuclear magnetic resonance (NMR) analyses of BpML1.
- Biophysical characterization of compound series targeting BpML1.
- Assays to determine compound potency, binding site specificity, and effects on bacterial infectivity and growth.
Main Results:
- A key chemical scaffold inhibiting BpML1 was identified, lacking immunosuppressive properties.
- The best compounds showed low-micromolar affinity for BpML1, inhibiting its enzymatic activity.
- Compounds reduced BpML1 activity, decreasing Burkholderia pseudomallei macrophage infectivity and intracellular growth without toxicity.
Conclusions:
- The identified scaffold represents a promising new class of antimicrobial agents targeting Mips.
- Structure-based drug discovery is effective for identifying novel antimicrobials.
- Inhibiting Mips offers a viable strategy against pathogenic bacteria like Burkholderia pseudomallei.
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