Magnetic chitosan nanoparticles loaded with Amphotericin B: Synthesis, properties and potentiation of antifungal activity against common human pathogenic fungal strains

Amphotericin B has long been regarded as the gold standard for treating invasive fungal infections despite its toxic potential. The main objective of this research was to develop a novel IONPs@CS-AmB formulation in a cost-effective manner in order to enhance AmB delivery performance, with lowering t...

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Veröffentlicht in:International journal of biological macromolecules 2022-12, Vol.222, p.1619-1631
Hauptverfasser: Zareshahrabadi, Zahra, Khorram, Mohammad, Pakshir, Keyvan, Tamaddon, Ali-Mohammad, Jafari, Mahboobeh, Nouraei, Hasti, Ardekani, Niloofar Torabi, Amirzadeh, Neda, Irajie, Cambyz, Barzegar, Alireza, Iraji, Aida, Zomorodian, Kamiar
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Sprache:eng
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Zusammenfassung:Amphotericin B has long been regarded as the gold standard for treating invasive fungal infections despite its toxic potential. The main objective of this research was to develop a novel IONPs@CS-AmB formulation in a cost-effective manner in order to enhance AmB delivery performance, with lowering the drug's dose and adverse effects. The chitosan-coated iron oxide nanoparticles (IONPs@CS) were synthesized afterward, AmB-loaded IONPs@CS (IONPs@CS-AmB) prepared and characterized by AFM, FT-IR, SEM, EDX, and XRD. Biological activity of the synthesized NPs determined and the cytotoxicity of IONPs@CS-AmB evaluated using the MTT and in vitro hemolysis tests. The IONPs@CS-AmB was synthesized using the coprecipitation method with core-shell structure in size range of 27.70 to ∼70 nm. The FT-IR, XRD and EDX pattern confirmed the successful synthesis of IONPs @CS-AmB. The IONPs@CS-AmB exhibited significant antifungal activity and inhibited the metabolic activity of Candida albicans biofilms. The hemolysis and MTT assays showed that IONPs@CS-AmB is biocompatible with high cell viability when compared to plain AmB and fungizone. The IONPs@CS-AmB is more effective, less toxic and may be a suitable alternative to conventional drug delivery. IONPs@CS-AmB may be a viable candidate for use as a microbial-resistant coating on the surfaces of biomedical devices. [Display omitted] •IONPs@CS-AmB showed significant activity against fungal strains.•Fluorescent microscopy revealed that IONPs@CS-AmB inhibited biofilm formation.•The hemolysis and MTT assays indicated that IONPs@CS-AmB are biocompatible.
ISSN:0141-8130
1879-0003
DOI:10.1016/j.ijbiomac.2022.09.244