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Antimicrobial Peptide Moricin Inhibits Streptococcus pneumoniae Growth Through Membrane Disruption: Insights From In
Imran Ahmad1,2, Shayan Mohd3, Afsana Begum4
1Department of Biochemistry, King George's Medical University, Lucknow, India.
Abstract:
The rise of multidrug-resistant Streptococcus pneumoniae poses a major public health threat, necessitating novel therapeutic targets. Pneumococcal Surface Adhesin A (PsaA), a conserved surface lipoprotein, plays a key role in manganese acquisition, colonization and virulence. Immunization with PsaA elicits protective immunity, while fragment-based drug design has identified inhibitors disrupting its function. PsaA emerges as a promising molecular target for innovative therapeutic strategies against pneumococcal diseases. Antimicrobial peptides (AMPs) are crucial components of the innate immune system, providing a potent defence mechanism against a broad spectrum of pathogens. Moricin, an AMP initially identified in Bombyx mori, exhibits robust antimicrobial activity against Gram-positive bacteria. This study explores the inhibitory effects of moricin on S. pneumoniae, a significant human pathogen responsible for severe infections such as pneumonia, meningitis and sepsis. In silico analyses, including molecular docking and molecular dynamics simulations, revealed a strong interaction between moricin and the PsaA. In vitro studies corroborated the computational findings, demonstrating a dose-dependent inhibition of S. pneumoniae growth. Moricin induced bacterial membrane disruption, evidenced by increased membrane permeability, release of intracellular contents and altered membrane potential, highlighting the bactericidal mode of action. Furthermore, time-kill kinetics revealed rapid bacterial eradication, underscoring moricin's efficacy. Additionally, toxicity assays on the macrophage BV2 cell line demonstrated that moricin caused no significant structural or organelle damage, emphasizing its biocompatibility and safety. The integration of in silico and in vitro approaches provides comprehensive mechanistic insights into moricin's antimicrobial action and establishes its potential as a safe and effective therapeutic agent against S. pneumoniae.
Insights
Antimicrobial peptide moricin effectively inhibits multidrug-resistant Streptococcus pneumoniae by disrupting bacterial membranes. This study highlights moricin as a safe and potent therapeutic candidate against pneumococcal infections.
Area of Science:
- Microbiology
- Immunology
- Drug Discovery
Background:
- Multidrug-resistant Streptococcus pneumoniae presents a significant public health challenge, driving the need for new therapeutic targets.
- Pneumococcal Surface Adhesin A (PsaA) is crucial for S. pneumoniae colonization and virulence, making it a promising target for novel treatments.
- Antimicrobial peptides (AMPs), like moricin, are key components of innate immunity with broad-spectrum antimicrobial activity.
Purpose of the Study:
- To investigate the antimicrobial effects of moricin against Streptococcus pneumoniae.
- To elucidate the mechanism of action of moricin against S. pneumoniae.
- To assess the safety and biocompatibility of moricin.
Main Methods:
- In silico analyses including molecular docking and molecular dynamics simulations.
- In vitro growth inhibition assays and time-kill kinetics.
- Bacterial membrane integrity and potential assays, alongside cytotoxicity assays on macrophage cell lines.
Main Results:
- Moricin demonstrated a strong interaction with PsaA in silico and dose-dependent inhibition of S. pneumoniae growth in vitro.
- Moricin induced bacterial membrane disruption, leading to increased permeability and altered membrane potential.
- Moricin exhibited rapid bacterial eradication and showed no significant toxicity to macrophage cells.
Conclusions:
- Moricin effectively inhibits Streptococcus pneumoniae growth through bacterial membrane disruption.
- Moricin is a safe and biocompatible therapeutic agent with potential against S. pneumoniae infections.
- The combination of in silico and in vitro methods provides mechanistic insights into moricin's antimicrobial action.
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