ArticleTropical medicine and health2025
Green synthesis of PEGylated iron oxide nanoparticles of Eriobotrya japonica leaves extract in combination with B3, against Plasmodium falciparum 3D7 strain.
Article in Tropical medicine and health, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 1 paper.
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1 citing paper in PubMed.
- Advances in Nanoparticle-Based Vitamin Delivery Systems for Precision Nutrition and Improved Bioavailability.AAPS PharmSciTech · 2026Review
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7 authors.
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Abstract
backgroundPlasmodium falciparum represents the most prevalent and lethal protozoan responsible for malaria in humans. This investigation aims to synthesize iron nanoparticles utilizing the polyethylene glycol (PEG) synthesis approach with an Eriobotrya japonica leaves extract and investigating its anti- P. falciparum activity in the in vitro environment in combination with nicotinamide and comparing its effect with chloroquine.
methodsIron oxide nanoparticles were synthesized using Eriobotrya japonica leaf extract through a green synthesis method. The physicochemical properties of the nanoparticles were analyzed using DLS, FESEM, FTIR, XRD, and MTT assays. During the initial phase, varying concentrations of Japanese parsnip leaf extract, nicotinamide, iron nanoparticles synthesized through the PEGylated green synthesis technique, and chloroquine (as a control pharmacological agent) were individually administered to the culture medium of P. falciparum 3D7. Subsequently, the synergistic IC50 effects of these compounds were evaluated in relation to one another using the FIX RATIO methodology applied to the culture medium.
resultsThe DLS evaluation of iron oxide nanoparticles showed an average hydrodynamic size of 155 nm. The XRD examination exhibited the crystallinity of the particles. SEM images recognized the spherical nature of synthesized Fe
conclusionsThe presence of a synergistic effect was evident across all combinations of plant extract-nicotinamide and iron oxide nanoparticles synthesized through the PEGylated green synthesis approach. Furthermore, the methodologies of green synthesis and PEGylation of iron oxide nanoparticles are deemed effective strategies for enhancing stability, minimizing toxicity, reducing particle size, and facilitating improved precision and efficacy in the application of these entities within biomedical research contexts.
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