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ApoE Mimetic Peptide COG1410 Kills Mycobacterium smegmatis via Directly Interfering ClpC's ATPase Activity
Chun Wang1, Yun-Yao Ren2, Li-Mei Han1
1Department of Tuberculosis, The Second Hospital of Nanjing, Affiliated to Nanjing University of Chinese Medicine, Nanjing 210003, China.
Abstract:
Antimicrobial peptides (AMPs) hold promise as alternatives to combat bacterial infections, addressing the urgent global threat of antibiotic resistance. COG1410, a synthetic peptide derived from apolipoprotein E, has exhibited potent antimicrobial properties against various bacterial strains, including Mycobacterium smegmatis. However, our study reveals a previously unknown resistance mechanism developed by M. smegmatis against COG1410 involving ClpC. Upon subjecting M. smegmatis to serial passages in the presence of sub-MIC COG1410, resistance emerged. The comparative genomic analysis identified a point mutation in ClpC (S437P), situated within its middle domain, which led to high resistance to COG1410 without compromising bacterial fitness. Complementation of ClpC in mutant restored bacterial sensitivity. In-depth analyses, including transcriptomic profiling and in vitro assays, uncovered that COG1410 interferes with ClpC at both transcriptional and functional levels. COG1410 not only stimulated the ATPase activity of ClpC but also enhanced the proteolytic activity of Clp protease. SPR analysis confirmed that COG1410 directly binds with ClpC. Surprisingly, the identified S437P mutation did not impact their binding affinity. This study sheds light on a unique resistance mechanism against AMPs in mycobacteria, highlighting the pivotal role of ClpC in this process. Unraveling the interplay between COG1410 and ClpC enriches our understanding of AMP-bacterial interactions, offering potential insights for developing innovative strategies to combat antibiotic resistance.
Insights
Mycobacterium smegmatis developed resistance to the antimicrobial peptide COG1410 through a mutation in ClpC. This discovery reveals a novel bacterial defense mechanism against peptide-based therapies, crucial for combating antibiotic resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Drug Discovery
Background:
- Antimicrobial peptides (AMPs) are vital in addressing antibiotic resistance.
- COG1410, a synthetic peptide, shows efficacy against bacterial infections.
- Mycobacterium smegmatis can develop resistance to antimicrobial agents.
Purpose of the Study:
- To investigate the resistance mechanism of Mycobacterium smegmatis against the antimicrobial peptide COG1410.
- To identify the genetic and functional basis of COG1410 resistance in M. smegmatis.
- To elucidate the role of ClpC in the interaction between COG1410 and M. smegmatis.
Main Methods:
- Serial passage of M. smegmatis with sub-inhibitory concentrations of COG1410.
- Comparative genomic analysis to identify mutations.
- ClpC complementation assays.
- Transcriptomic profiling and in vitro biochemical assays.
- Surface Plasmon Resonance (SPR) analysis.
Main Results:
- A point mutation (S437P) in ClpC conferred high resistance to COG1410 without affecting bacterial fitness.
- COG1410 directly binds to ClpC, stimulating its ATPase and enhancing Clp protease activity.
- The S437P mutation did not alter the binding affinity between COG1410 and ClpC.
- Complementation of wild-type ClpC restored COG1410 sensitivity in resistant mutants.
Conclusions:
- Mycobacterium smegmatis employs a novel resistance mechanism against COG1410 involving alterations in ClpC.
- ClpC plays a critical role in mediating resistance to antimicrobial peptides in mycobacteria.
- Understanding this interaction provides insights for developing new strategies against antibiotic-resistant bacteria.
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