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The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite

Malaria represents one of the most common infectious diseases which becoming an impellent public health problem worldwide. Antimalarial classical medications include quinine-based drugs, like chloroquine, and artesunate, a derivative of artemisinin, a molecule found in the plant Artemisia annua. Suc...

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Autores principales: Avitabile, Elisabetta, Senes, Nina, D’Avino, Cristina, Tsamesidis, Ioannis, Pinna, Alessandra, Medici, Serenella, Pantaleo, Antonella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7462267/
https://www.ncbi.nlm.nih.gov/pubmed/32870934
http://dx.doi.org/10.1371/journal.pone.0238532
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author Avitabile, Elisabetta
Senes, Nina
D’Avino, Cristina
Tsamesidis, Ioannis
Pinna, Alessandra
Medici, Serenella
Pantaleo, Antonella
author_facet Avitabile, Elisabetta
Senes, Nina
D’Avino, Cristina
Tsamesidis, Ioannis
Pinna, Alessandra
Medici, Serenella
Pantaleo, Antonella
author_sort Avitabile, Elisabetta
collection PubMed
description Malaria represents one of the most common infectious diseases which becoming an impellent public health problem worldwide. Antimalarial classical medications include quinine-based drugs, like chloroquine, and artesunate, a derivative of artemisinin, a molecule found in the plant Artemisia annua. Such therapeutics are very effective but show heavy side effects like drug resistance. In this study, “green” silver nanoparticles (AgNPs) have been prepared from two Artemisia species (A. abrotanum and A. arborescens), traditionally used in folk medicine as a remedy for different conditions, and their potential antimalarial efficacy have been assessed. AgNPs have been characterized by UV-Vis, dynamic light scattering and zeta potential, FTIR, XRD, TEM and EDX. The structural characterization has demonstrated the spheroidal shape of nanoparticles and dimensions under 50 nm, useful for biomedical studies. Zeta potential analysis have shown the stability and dispersion of green AgNPs in aqueous medium without aggregation. AgNPs hemocompatibility and antimalarial activity have been studied in Plasmodium falciparum cultures in in vitro experiments. The antiplasmodial effect has been assessed using increasing doses of AgNPs (0.6 to 7.5 μg/mL) on parasitized red blood cells (pRBCs). Obtained data showed that the hemocompatibility of AgNPs is related to their synthetic route and depends on the administered dose. A. abrotanum-AgNPs (1) have shown the lowest percentage of hemolytic activity on pRBCs, underlining their hemocompatibility. These results are in accordance with the lower levels of parasitemia observed after A. abrotanum-AgNPs (1) treatment respect to A. arborescens-AgNPs (2), and AgNPs (3) derived from a classical chemical synthesis. Moreover, after 24 and 48 hours of A. abrotanum-AgNPs (1) treatment, the parasite growth was locked in the ring stage, evidencing the effect of these nanoparticles to hinder the maturation of P. falciparum. The anti-malarial activity of A. abrotanum-AgNPs (1) on pRBCs was demonstrated to be higher than that of A. arborescens-AgNPs (2).
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spelling pubmed-74622672020-09-04 The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite Avitabile, Elisabetta Senes, Nina D’Avino, Cristina Tsamesidis, Ioannis Pinna, Alessandra Medici, Serenella Pantaleo, Antonella PLoS One Research Article Malaria represents one of the most common infectious diseases which becoming an impellent public health problem worldwide. Antimalarial classical medications include quinine-based drugs, like chloroquine, and artesunate, a derivative of artemisinin, a molecule found in the plant Artemisia annua. Such therapeutics are very effective but show heavy side effects like drug resistance. In this study, “green” silver nanoparticles (AgNPs) have been prepared from two Artemisia species (A. abrotanum and A. arborescens), traditionally used in folk medicine as a remedy for different conditions, and their potential antimalarial efficacy have been assessed. AgNPs have been characterized by UV-Vis, dynamic light scattering and zeta potential, FTIR, XRD, TEM and EDX. The structural characterization has demonstrated the spheroidal shape of nanoparticles and dimensions under 50 nm, useful for biomedical studies. Zeta potential analysis have shown the stability and dispersion of green AgNPs in aqueous medium without aggregation. AgNPs hemocompatibility and antimalarial activity have been studied in Plasmodium falciparum cultures in in vitro experiments. The antiplasmodial effect has been assessed using increasing doses of AgNPs (0.6 to 7.5 μg/mL) on parasitized red blood cells (pRBCs). Obtained data showed that the hemocompatibility of AgNPs is related to their synthetic route and depends on the administered dose. A. abrotanum-AgNPs (1) have shown the lowest percentage of hemolytic activity on pRBCs, underlining their hemocompatibility. These results are in accordance with the lower levels of parasitemia observed after A. abrotanum-AgNPs (1) treatment respect to A. arborescens-AgNPs (2), and AgNPs (3) derived from a classical chemical synthesis. Moreover, after 24 and 48 hours of A. abrotanum-AgNPs (1) treatment, the parasite growth was locked in the ring stage, evidencing the effect of these nanoparticles to hinder the maturation of P. falciparum. The anti-malarial activity of A. abrotanum-AgNPs (1) on pRBCs was demonstrated to be higher than that of A. arborescens-AgNPs (2). Public Library of Science 2020-09-01 /pmc/articles/PMC7462267/ /pubmed/32870934 http://dx.doi.org/10.1371/journal.pone.0238532 Text en © 2020 Avitabile et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Avitabile, Elisabetta
Senes, Nina
D’Avino, Cristina
Tsamesidis, Ioannis
Pinna, Alessandra
Medici, Serenella
Pantaleo, Antonella
The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite
title The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite
title_full The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite
title_fullStr The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite
title_full_unstemmed The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite
title_short The potential antimalarial efficacy of hemocompatible silver nanoparticles from Artemisia species against P. falciparum parasite
title_sort potential antimalarial efficacy of hemocompatible silver nanoparticles from artemisia species against p. falciparum parasite
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7462267/
https://www.ncbi.nlm.nih.gov/pubmed/32870934
http://dx.doi.org/10.1371/journal.pone.0238532
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