ClpC1-targeting peptide natural products differentially dysregulate the proteome of Mycobacterium tuberculosis
Isabel K Barter1,2, Max J Bedding1,2, Julia Leodolter3
1School of Chemistry, The University of Sydney, Sydney, NSW, Australia.
Abstract:
Targeting the protein quality control system in Mycobacterium tuberculosis represents a promising and underexplored opportunity for antibiotic development. The ClpC1:ClpP1P2 protease is an essential component of the system that mediates both regulatory and stress-related protein degradation. Several non-ribosomal peptide natural products, including ecumicin, ilamycins (rufomycins) and cyclomarins, have been discovered that bind to the ClpC1 chaperone of the complex and exhibit potent antimycobacterial activity, leading to significant interest in the ClpC1:ClpP1P2 system as a bona fide target for the new tuberculosis drugs. In this study, we combine quantitative proteomics, bioinformatics, transcriptomics, CRISPRi knockdown, and targeted biochemical and biophysical assays to dissect the mechanisms of ecumicin, ilamycin and cyclomarin in clinically relevant Mycobacterium tuberculosis. Strikingly, despite exhibiting similar binding modes to ClpC1, each compound induces distinct effects on protein degradation. Notably, ilamycin and ecumicin do not trigger the ClpC2 rescue mechanism that mitigates cyclomarin-induced mycobacterial toxicity. In addition, we identify a novel interaction between ecumicin and stress-response chaperone Hsp20. The differential disruption of ClpC1 substrates, stress-response chaperones, and distinct reshaping of the Mycobacterium tuberculosis proteome by the three natural products, unveils new opportunities for the development of protein quality control-targeted antimycobacterials.
Insights
New tuberculosis drugs targeting the Mycobacterium tuberculosis protein quality control system show promise. Natural products like ecumicin, ilamycins, and cyclomarins disrupt essential proteases differently, offering novel antimicrobial development avenues.
Area of Science:
- Microbiology
- Drug Discovery
- Molecular Biology
Background:
- The protein quality control system in Mycobacterium tuberculosis is a potential target for new antibiotics.
- The ClpC1:ClpP1P2 protease is crucial for degrading regulatory and stress-related proteins.
- Natural products like ecumicin, ilamycins, and cyclomarins inhibit the ClpC1 chaperone, showing antimycobacterial activity.
Purpose of the Study:
- To investigate the distinct mechanisms of action of ecumicin, ilamycin, and cyclomarin against Mycobacterium tuberculosis.
- To understand how these compounds affect protein degradation and the proteome.
- To identify new opportunities for developing tuberculosis drugs targeting the protein quality control system.
Main Methods:
- Quantitative proteomics
- Bioinformatics
- Transcriptomics
- CRISPRi knockdown
- Biochemical and biophysical assays
Main Results:
- Ecumicin, ilamycin, and cyclomarin, despite similar ClpC1 binding, induce different protein degradation effects.
- Ilamycin and ecumicin do not activate the ClpC2 rescue mechanism, unlike cyclomarin.
- A novel interaction between ecumicin and the Hsp20 chaperone was identified.
Conclusions:
- The three natural products differentially disrupt ClpC1 substrates and stress-response chaperones.
- These compounds reshape the Mycobacterium tuberculosis proteome in distinct ways.
- This study reveals new strategies for developing protein quality control-targeted antimycobacterials for tuberculosis.
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