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Published on: June 2, 2017
Two-Phase Bactericidal Mechanism of Silver Nanoparticles against Burkholderia pseudomallei
Pawinee Siritongsuk1,2, Nuttaya Hongsing1,2, Saengrawee Thammawithan1
1Department of Biochemistry, Faculty of Science, Khon Kaen University, Khon Kaen, Thailand.
Abstract:
Silver nanoparticles (AgNPs) have a strong antimicrobial activity against a variety of pathogenic bacteria. The killing mechanism of AgNPs involves direct physical membrane destruction and subsequent molecular damage from both AgNPs and released Ag+. Burkholderia pseudomallei is the causative agent of melioidosis, an endemic infectious disease primarily found in northern Australia and Southeast Asia. B. pseudomallei is intrinsically resistant to most common antibiotics. In this study, the antimicrobial activity and mechanism of AgNPs (10-20 nm) against B. pseudomallei were investigated. The MIC and MBC for nine B. pseudomallei strains ranged from 32-48 μg/mL and 96-128 μg/mL, respectively. Concentrations of AgNPs less than 256 μg/mL were not toxic to human red blood cells. AgNPs exhibited a two-phase mechanism: cell death induction and ROS induction. The first phase was a rapid killing step within 5 min, causing the direct damage of the cytoplasmic membrane of the bacterial cells, as observed by a time-kill assay and fluorescence microscopy. During the period of 5-30 min, the cell surface charge was rapidly neutralized from -8.73 and -7.74 to 2.85 and 2.94 mV in two isolates of B. pseudomallei, as revealed by zeta potential measurement. Energy-dispersive X-ray (EDX) spectroscopy showed the silver element deposited on the bacterial membrane, and TEM micrographs of the AgNP-treated B. pseudomallei cells showed severe membrane damage and cytosolic leakage at 1/5 MIC and cell bursting at MBC. During the killing effect the released Ag+ from AgNPs was only 3.9% from the starting AgNPs concentration as observed with ICP-OES experiment. In the second phase, the ROS induction occurred 1-4 hr after the AgNP treatment. Altogether, we provide direct kinetic evidence of the AgNPs killing mechanism, by which cell death is separable from the ROS induction and AgNPs mainly contributes in the killing action. AgNPs may be considered a potential candidate to develop a novel alternative agent for melioidosis treatment with fast action.
Insights
Silver nanoparticles (AgNPs) rapidly kill Burkholderia pseudomallei by damaging its cell membrane, offering a potential new treatment for melioidosis. This fast-acting antimicrobial mechanism is distinct from reactive oxygen species induction.
Area of Science:
- Nanotechnology
- Microbiology
- Infectious Diseases
Background:
- Silver nanoparticles (AgNPs) exhibit broad-spectrum antimicrobial properties.
- Burkholderia pseudomallei causes melioidosis and is resistant to common antibiotics.
- Understanding AgNP antimicrobial mechanisms is crucial for developing new treatments.
Purpose of the Study:
- To investigate the antimicrobial activity of AgNPs against Burkholderia pseudomallei.
- To elucidate the killing mechanism of AgNPs against this pathogen.
- To assess the potential of AgNPs as an alternative therapeutic agent for melioidosis.
Main Methods:
- Minimum Inhibitory Concentration (MIC) and Minimum Bactericidal Concentration (MBC) assays.
- Time-kill assays, zeta potential measurements, and fluorescence microscopy.
- Transmission Electron Microscopy (TEM), Energy-Dispersive X-ray (EDX) spectroscopy, and ICP-OES.
Main Results:
- AgNPs demonstrated significant antimicrobial activity against B. pseudomallei (MIC: 32-48 μg/mL, MBC: 96-128 μg/mL).
- AgNPs induced rapid cell death within 5 minutes via direct cytoplasmic membrane damage and cell bursting.
- A secondary phase of reactive oxygen species (ROS) induction occurred 1-4 hours post-treatment; Ag+ release was minimal.
Conclusions:
- AgNPs possess a potent, rapid, two-phase antimicrobial mechanism against B. pseudomallei, primarily driven by direct membrane damage.
- The fast action and distinct mechanism suggest AgNPs are a promising candidate for novel melioidosis treatments.
- AgNPs showed no toxicity to human red blood cells at effective concentrations.
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