Antimicrobial Peptides from Human Microbiome Against Multidrug Efflux Pump of Pseudomonas aeruginosa: a Computational
Viswajit Mulpuru1, Nidhi Mishra2
1Department of Applied Sciences, Indian Institute of Information Technology Allahabad, Prayagraj, India.
Abstract:
The excess use of antibiotics has led to the evolution of multidrug-resistant pathogenic strains causing worldwide havoc. These multidrug-resistant strains require potent inhibitors. Pseudomonas aeruginosa is a lead cause of nosocomial infections and also feature in the critical priority list of the world health organization (WHO) for the development of new antibiotics against their antimicrobial resistance. Antimicrobial peptides (AMPs) found in almost every life form from microorganisms to humans are known to defend their hosts against various pathogens. Owing to the diversity of the human microbiome, in this study, we have identified the cell-penetrating AMPs from the human microbiome and studied their inhibitory activity against the outer membrane protein OprM of the MexAB-OprM, a constitutively expressed multidrug efflux pump of the Ps. aeruginosa. Screening of the AMPs from the human microbiome resulted in the identification of 147 cell-penetrating AMPs (CPAMPs). The virtual screening of these CPAMPs against the OprM protein showed significant inhibitory results with the top docked AMP showing binding affinity exceeding -30 kcal/mol. The molecular dynamic simulation determined the interaction stabilities between the AMPs and the OprM at the binding site. Further, the residue interaction networks (RINs) are analyses to identify the inhibitory patterns. Later, these patterns were confirmed by MM-PBSA analysis suggesting that the AMPs are majorly stabilized by electrostatic interactions at the binding site. Thus, the high binding affinity and insights from the molecular interaction signify that the identified CPAMPs from the human microbiome can be further explored as inhibitory agents against multidrug-resistant Ps. aeruginosa.
Insights
Researchers identified novel cell-penetrating antimicrobial peptides (CPAMPs) from the human microbiome. These CPAMPs show potent inhibitory activity against the multidrug-resistant bacterium Pseudomonas aeruginosa, offering new therapeutic avenues.
Area of Science:
- Microbiology
- Biochemistry
- Computational Biology
Background:
- Excessive antibiotic use drives the emergence of multidrug-resistant pathogens.
- Pseudomonas aeruginosa is a critical priority pathogen due to its antimicrobial resistance.
- Antimicrobial peptides (AMPs) are natural defense molecules against pathogens.
Purpose of the Study:
- To identify cell-penetrating antimicrobial peptides (CPAMPs) from the human microbiome.
- To evaluate the inhibitory potential of identified CPAMPs against Pseudomonas aeruginosa.
- To investigate the molecular mechanisms underlying CPAMP inhibition of the MexAB-OprM efflux pump.
Main Methods:
- Screening of the human microbiome for CPAMPs.
- Virtual screening and molecular docking against the OprM protein.
- Molecular dynamic simulations and residue interaction network (RIN) analysis.
- MM-PBSA analysis to confirm binding interactions.
Main Results:
- Identified 147 CPAMPs from the human microbiome.
- Virtual screening revealed significant inhibitory activity, with top candidates exceeding -30 kcal/mol binding affinity.
- Molecular simulations confirmed stable interactions and identified electrostatic interactions as key stabilizing forces.
Conclusions:
- Human microbiome-derived CPAMPs exhibit high binding affinity and inhibitory potential against the OprM protein.
- These CPAMPs represent promising candidates for developing novel therapeutics against multidrug-resistant Pseudomonas aeruginosa.
- Further exploration of these CPAMPs could lead to effective strategies against challenging bacterial infections.
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