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Broth Microdilution In Vitro Screening: An Easy and Fast Method to Detect New Antifungal Compounds
Published on: February 14, 2018
Antifungal potential of silver nanoparticles stabilized with the flavonoid naringenin
Jakeline Luiz Correa1,2, Larissa Kikuchi1,2, Deisiany Gomes Ferreira1,2
1Graduate Program in Health Sciences, State University of Maring, Colombo Avenue, 5790, Maring, PR, Brazil.
Abstract:
Introduction. Fungal infections caused by yeast have increased in recent decades, becoming a major threat to public health.Hypothesis/Gap Statement. Antifungal therapy represents a challenging problem because, in addition to presenting many side effects, fungal resistance has been increasing in recent years. As a result, the search for new therapeutic agents has advanced with the use of new technologies such as nanoparticles (NPs).Aim. Synthesize, characterize and evaluate the antifungal potential of naringenin (NAR)-stabilized silver NPs.Methodology. The biosynthesis of NPs was stabilized using the NAR molecule and an aqueous solution of silver nitrate. The characterization of silver nanoparticles (AgNPs) was performed using different methods, which include UV-visible spectroscopy, powder X-ray diffraction (XRD), transmission electron microscopy, zeta potential measurements and Fourier transform infrared (FTIR) spectroscopy. Antifungal activity was evaluated against clinical isolates of Candida albicans by determining the MIC and the minimum fungicidal concentration (MFC).Results. The AgNP NAR showed a colloidal appearance with an average size of 14.71 nm and zeta potential measured at -33.3 mV, indicating a highly stable suspension. XRD analysis confirmed the crystal structure. FTIR spectra showed the presence of several functional groups of plant compounds, which play an important role in the coating and bioreduction processes. The antifungal activity against C. albicans showed an MIC of 3.55 µg ml-1 and an MFC of 7.1 µg ml-1. According to the growth kinetic assay in 12 h, there was a reduction of ~50% (<3 log10). Furthermore, AgNP NAR did not show mutagenic potential.Conclusion. The AgNP NAR obtained presented ideal characteristics for biomedical applications, good stability and promising antimicrobial activity.
Insights
Naringenin-stabilized silver nanoparticles show potent antifungal activity against Candida albicans. These novel nanoparticles offer a stable and potentially safer alternative for combating rising fungal infections and drug resistance.
Area of Science:
- Biotechnology
- Materials Science
- Mycology
Background:
- Rising incidence of fungal infections and increasing antifungal resistance pose significant public health challenges.
- Conventional antifungal therapies are limited by side effects and emerging resistance.
- Nanoparticles (NPs) offer a promising avenue for developing novel antimicrobial agents.
Purpose of the Study:
- To synthesize and characterize naringenin (NAR)-stabilized silver nanoparticles (AgNPs).
- To evaluate the antifungal potential of these AgNPs against clinical isolates of Candida albicans.
- To assess the stability and safety of the synthesized AgNPs for potential biomedical applications.
Main Methods:
- Biosynthesis of AgNPs using naringenin as a stabilizing agent and silver nitrate solution.
- Characterization via UV-visible spectroscopy, XRD, TEM, zeta potential, and FTIR.
- Antifungal activity assessment by determining Minimum Inhibitory Concentration (MIC) and Minimum Fungicidal Concentration (MFC).
Main Results:
- Synthesized AgNPs exhibited a stable colloidal suspension with an average size of 14.71 nm and a zeta potential of -33.3 mV.
- XRD confirmed the crystal structure, and FTIR indicated successful stabilization by naringenin functional groups.
- AgNPs demonstrated significant antifungal activity against Candida albicans with MIC of 3.55 µg/mL and MFC of 7.1 µg/mL, showing ~50% growth reduction within 12 hours and no mutagenic potential.
Conclusions:
- Naringenin-stabilized silver nanoparticles possess favorable characteristics for biomedical use.
- The synthesized AgNPs exhibit excellent stability and potent antimicrobial activity against Candida albicans.
- This study highlights the potential of naringenin-capped AgNPs as a novel therapeutic strategy against fungal infections.

