Natural compounds target the M23B zinc metallopeptidase Mpg to modulate Neisseria gonorrhoeae Type IV pilus
Kathleen R Nicholson1, Shaohui Yin1, Jennifer L Edwards2
1Department of Microbiology-Immunology, Feinberg School of Medicine, Northwestern University, Chicago, Illinois, USA.
Abstract:
Neisseria gonorrhoeae uses the Type IV pilus (T4p) to colonize several sites within humans by adhering to host cells and tissues. Previously, we identified a periplasmic M23B zinc metallopeptidase, Mpg, that is necessary to protect from oxidative and nonoxidative killing and these phenotypes are mediated by Mpg activities on T4p expression. Here, we use a high-throughput, target-based screening approach to identify novel inhibitors of Mpg's enzymatic activity. We identified two natural compounds, punicalagin and chebulinic acid, which inhibit the peptidoglycan-hydrolyzing activity of Mpg in a dose-dependent manner. Moreover, treatment of N. gonorrhoeae with these compounds leads to a concomitant decrease in the number of T4p, similar to an mpg mutant. However, these compounds are not toxic to N. gonorrhoeae. These compounds exhibit activity against Mpg orthologs from other bacterial species. Notably, these natural compounds inhibit N. gonorrhoeae colonization and survival in cell culture models of infection. This work provides the characterization of two natural compounds with activity against N. gonorrhoeae T4p through the Mpg M23B class zinc metallopeptidase.
Importance:
Neisseria gonorrhoeae is a global health burden with high transmission rates and multidrug resistance. N. gonorrhoeae encodes a Type IV pilus (T4p), which is a major colonization and virulence factor. The importance of the T4p in multiple stages of infection makes it an attractive drug target. Previously, we identified an M23B zinc metallopeptidase, Mpg, important for T4p production and T4p-mediated resistance to neutrophil killing. In this study, we identified two natural compounds, punicalagin and chebulinic acid, as novel inhibitors of Mpg's enzymatic activity that thus inhibit T4p expression. These findings identify two potential anti-colonization and anti-virulence compounds and provide a framework to target T4p components for future screens, poising the field to potentially discover additional compounds to combat N. gonorrhoeae infection.
Insights
Two natural compounds, punicalagin and chebulinic acid, inhibit the Mpg enzyme essential for Neisseria gonorrhoeae Type IV pilus production. This discovery offers potential new strategies against gonorrhea infections by targeting bacterial colonization factors.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Neisseria gonorrhoeae utilizes Type IV pilus (T4p) for host cell adhesion and colonization.
- The M23B zinc metallopeptidase, Mpg, is crucial for T4p expression and bacterial resistance to host defenses.
- N. gonorrhoeae poses a significant global health challenge due to high transmission and increasing multidrug resistance.
Purpose of the Study:
- To identify novel inhibitors of Mpg's enzymatic activity using a high-throughput screening approach.
- To evaluate the effect of identified inhibitors on T4p expression and N. gonorrhoeae virulence.
- To explore potential therapeutic strategies targeting T4p production in N. gonorrhoeae infections.
Main Methods:
- High-throughput, target-based screening for Mpg enzymatic inhibitors.
- Dose-dependent inhibition assays for punicalagin and chebulinic acid against Mpg.
- Assessment of T4p expression, bacterial toxicity, and anti-colonization activity in cell culture models.
Main Results:
- Punicalagin and chebulinic acid were identified as potent, non-toxic inhibitors of Mpg's peptidoglycan-hydrolyzing activity.
- Treatment with these compounds reduced T4p levels in N. gonorrhoeae, mimicking an mpg mutant phenotype.
- The natural compounds demonstrated efficacy against Mpg orthologs in other bacterial species and inhibited N. gonorrhoeae colonization and survival in vitro.
Conclusions:
- Punicalagin and chebulinic acid are effective inhibitors of N. gonorrhoeae Mpg, leading to reduced T4p expression.
- These compounds represent promising anti-virulence and anti-colonization agents with potential therapeutic applications.
- The study provides a foundation for targeting T4p biogenesis pathways for novel anti-gonococcal drug discovery.
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