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Evaluation of Antimicrobial Activities of Nanoparticles and Nanostructured Surfaces In Vitro
Published on: April 21, 2023
Antimicrobial activities of quaternary phosphonium-type small molecular antibacterial materials against
Jing-Wen Deng1, Si-Wen Deng2, Jin-Huan Chen1
1Department of Otorhinolaryngology, Fujian Medical University Union Hospital, Fuzhou, Fujian, People's Republic of China.
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA) has become a significant public health concern due to its resistance to most antibiotics and its ability to form persistent biofilms, complicating treatment strategies. The need for new and effective antibacterial agents that can overcome these challenges is urgent. In this study, we address this issue by synthesizing and evaluating five quaternary phosphonium-type small molecular antibacterial agents ([MTPP]·I, [ETPP]·I, [ITPP]·I, [BTPP]·I, and [PTPP]·I) against MRSA. Our findings show that as the alkyl chain length of the phosphonium compounds increases, their antibacterial activity significantly improves, with [PTPP]·I exhibiting the highest efficacy. This compound demonstrated a minimum inhibitory concentration (MIC) of 16 µg/mL and was able to sustain bacterial growth inhibition for up to 36 h at the MIC. The study uniquely reveals a positive correlation between alkyl chain length and antibacterial potency, offering a novel insight into the mechanism of quaternary phosphonium salts. Mechanistic studies, including protein leakage assays, reactive oxygen species (ROS) measurement, and scanning electron microscopy (SEM), confirmed that [PTPP]·I targets MRSA by electrostatic interactions with the bacterial membrane, disrupting membrane integrity, inducing content leakage, and triggering ROS burst, ultimately leading to bacterial cell death. Additionally, [PTPP]·I demonstrated a 96.6% inhibition rate against MRSA biofilms and low cytotoxicity (cell viability >97%). This research not only presents a promising candidate for MRSA drug development but also contributes a comprehensive structure-activity-mechanism approach to combat bacterial resistance and biofilm-associated infections. IMPORTANCE The rise of methicillin-resistant Staphylococcus aureus (MRSA) represents a significant threat to global health, largely due to its resistance to many antibiotics and its ability to form durable biofilms. This study presents a novel approach to combating MRSA through the development of a series of quaternary phosphonium-based antibacterial compounds. Among these, the compound with the longest alkyl chain ([PTPP]·I) stands out for its remarkable effectiveness, inhibiting MRSA growth at low concentrations, disrupting biofilms by 96.6%, and demonstrating minimal cytotoxicity to human cells. The research highlights the crucial relationship between alkyl chain length and antibacterial activity, providing a new strategy for designing safer and more potent antimicrobial agents. These compounds target bacterial membranes and overcome resistance mechanisms, offering a promising solution for treating MRSA infections and addressing the broader issue of antibiotic resistance, potentially saving lives and alleviating the global healthcare burden.
Insights
New quaternary phosphonium compounds show potent activity against methicillin-resistant Staphylococcus aureus (MRSA). The compound [PTPP]·I, with the longest alkyl chain, effectively inhibits MRSA growth and biofilms with low toxicity, offering a promising therapeutic strategy.
Area of Science:
- Antimicrobial drug discovery
- Medicinal chemistry
- Bacterial resistance mechanisms
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) poses a significant global health threat due to antibiotic resistance and biofilm formation.
- Existing treatments are often ineffective against persistent MRSA infections.
- Novel antibacterial agents are urgently needed to combat MRSA.
Purpose of the Study:
- To synthesize and evaluate novel quaternary phosphonium-based small molecules as potential antibacterial agents against MRSA.
- To investigate the structure-activity relationship (SAR) of these compounds concerning alkyl chain length.
- To elucidate the mechanism of action of the most potent compound against MRSA.
Main Methods:
- Synthesis of five quaternary phosphonium compounds with varying alkyl chain lengths.
- Determination of Minimum Inhibitory Concentration (MIC) and sustained growth inhibition.
- Mechanistic studies including protein leakage assays, ROS measurement, and Scanning Electron Microscopy (SEM).
- Biofilm inhibition assays and cytotoxicity assessments.
Main Results:
- Antibacterial activity against MRSA increased with increasing alkyl chain length of the phosphonium compounds.
- [PTPP]·I demonstrated the highest efficacy with an MIC of 16 µg/mL and sustained inhibition for 36 hours.
- Mechanistic studies revealed membrane disruption, protein leakage, and ROS generation as key mechanisms of action for [PTPP]·I.
- [PTPP]·I achieved 96.6% MRSA biofilm inhibition with >97% cell viability, indicating low cytotoxicity.
Conclusions:
- Quaternary phosphonium compounds, particularly [PTPP]·I, represent a promising class of novel antibacterial agents against MRSA.
- Alkyl chain length is a critical determinant of antibacterial potency and mechanism.
- This study provides a comprehensive structure-activity-mechanism approach for developing new strategies against antibiotic-resistant bacteria and biofilm infections.
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