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Nitazoxanide Inhibits Pilus Biogenesis by Interfering with Folding of the Usher Protein in the Outer Membrane
Peter Chahales1, Paul S Hoffman2, David G Thanassi3
1Center for Infectious Diseases and Department of Molecular Genetics and Microbiology, Stony Brook University, Stony Brook, New York, USA.
Abstract:
Many bacterial pathogens assemble surface fibers termed pili or fimbriae that facilitate attachment to host cells and colonization of host tissues. The chaperone/usher (CU) pathway is a conserved secretion system that is responsible for the assembly of virulence-associated pili by many different Gram-negative bacteria. Pilus biogenesis by the CU pathway requires a dedicated periplasmic chaperone and an integral outer membrane (OM) assembly and secretion platform termed the usher. Nitazoxanide (NTZ), an antiparasitic drug, was previously shown to inhibit the function of aggregative adherence fimbriae and type 1 pili assembled by the CU pathway in enteroaggregativeEscherichia coli, an important causative agent of diarrhea. We show here that NTZ also inhibits the function of type 1 and P pili from uropathogenicE. coli(UPEC). UPEC is the primary causative agent of urinary tract infections, and type 1 and P pili mediate colonization of the bladder and kidneys, respectively. By analysis of the different stages of the CU pilus biogenesis pathway, we show that treatment of bacteria with NTZ causes a reduction in the number of usher molecules in the OM, resulting in a loss of pilus assembly on the bacterial surface. In addition, we determine that NTZ specifically prevents proper folding of the usher β-barrel domain in the OM. Our findings demonstrate that NTZ is a pilicide with a novel mechanism of action and activity against diverse CU pathways. This suggests that further development of the NTZ scaffold may lead to new antivirulence agents that target the usher to prevent pilus assembly.
Insights
Nitazoxanide (NTZ) inhibits bacterial pili assembly by targeting the usher protein. This drug disrupts usher folding and reduces pilus formation, offering a novel antivirulence strategy against pathogens like E. coli.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Drug Discovery
Background:
- Bacterial pathogens use pili (surface fibers) for host cell attachment and colonization.
- The chaperone/usher (CU) pathway is crucial for assembling these virulence-associated pili in Gram-negative bacteria.
- Nitazoxanide (NTZ) previously inhibited pili in E. coli causing diarrhea.
Purpose of the Study:
- To investigate NTZ's effect on pili from uropathogenic E. coli (UPEC).
- To elucidate the mechanism by which NTZ inhibits CU pathway-mediated pilus biogenesis.
Main Methods:
- Analysis of CU pilus biogenesis stages in UPEC.
- Assessing the impact of NTZ treatment on usher protein levels in the outer membrane.
- Investigating NTZ's effect on usher β-barrel domain folding.
Main Results:
- NTZ inhibits type 1 and P pili assembly in UPEC.
- NTZ treatment reduces usher protein numbers in the bacterial outer membrane.
- NTZ specifically impairs the correct folding of the usher β-barrel domain.
Conclusions:
- NTZ acts as a pilicide with a novel mechanism against diverse CU pathways.
- NTZ's action on the usher suggests potential for developing new antivirulence agents.
- Targeting the usher protein offers a promising strategy to prevent bacterial pilus assembly.
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