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Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity

Fungal infections have become a significant public health concern due to their increasing recurrence and harmful effects on plants, animals, and humans. Opportunistic pathogens (among others from the genera Candida and Aspergillus) can be present in indoor air, becoming a risk for people with suppre...

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Autores principales: Hernandez, Rafael, Jimenez-Chávez, Arturo, De Vizcaya, Andrea, Lozano-Alvarez, Juan Antonio, Esquivel, Karen, Medina-Ramírez, Iliana E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10343807/
https://www.ncbi.nlm.nih.gov/pubmed/37446416
http://dx.doi.org/10.3390/nano13131900
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author Hernandez, Rafael
Jimenez-Chávez, Arturo
De Vizcaya, Andrea
Lozano-Alvarez, Juan Antonio
Esquivel, Karen
Medina-Ramírez, Iliana E.
author_facet Hernandez, Rafael
Jimenez-Chávez, Arturo
De Vizcaya, Andrea
Lozano-Alvarez, Juan Antonio
Esquivel, Karen
Medina-Ramírez, Iliana E.
author_sort Hernandez, Rafael
collection PubMed
description Fungal infections have become a significant public health concern due to their increasing recurrence and harmful effects on plants, animals, and humans. Opportunistic pathogens (among others from the genera Candida and Aspergillus) can be present in indoor air, becoming a risk for people with suppressed immune systems. Engineered nanomaterials are novel alternatives to traditional antifungal therapy. In this work, copper(I) iodide (CuI) and a copper-doped titanium dioxide—copper(I) iodide (TiO(2)-Cu(2+)/CuI) composite nanomaterials (NMs)—were synthesized and tested as antifungal agents. The materials were synthesized using sol-gel (TiO(2)-Cu(2+)) and co-precipitation (CuI) techniques. The resulting colloids were evaluated as antifungal agents against Candida parapsilosis and Aspergillus niger strains. The NMs were characterized by XRD, HRTEM, AFM, and DLS to evaluate their physicochemical properties. The NMs present a high size dispersion and different geometrical shapes of agglomerates. The antifungal capacity of the NMs by the minimum inhibitory concentration (MIC) and minimum fungicidal concentration (MFC) was below 15 µg/mL against Candida parapsilosis and below 600 µg/mL against Aspergillus niger for both NMs. Holotomography microscopy showed that the NMs could penetrate cell membranes causing cell death through its rupture and reactive oxygen species (ROS) production. Cytotoxicity tests showed that NMs could be safe to use at low concentrations. The synthesized nanomaterials could be potential antifungal agents for biomedical or environmental applications.
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spelling pubmed-103438072023-07-14 Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity Hernandez, Rafael Jimenez-Chávez, Arturo De Vizcaya, Andrea Lozano-Alvarez, Juan Antonio Esquivel, Karen Medina-Ramírez, Iliana E. Nanomaterials (Basel) Article Fungal infections have become a significant public health concern due to their increasing recurrence and harmful effects on plants, animals, and humans. Opportunistic pathogens (among others from the genera Candida and Aspergillus) can be present in indoor air, becoming a risk for people with suppressed immune systems. Engineered nanomaterials are novel alternatives to traditional antifungal therapy. In this work, copper(I) iodide (CuI) and a copper-doped titanium dioxide—copper(I) iodide (TiO(2)-Cu(2+)/CuI) composite nanomaterials (NMs)—were synthesized and tested as antifungal agents. The materials were synthesized using sol-gel (TiO(2)-Cu(2+)) and co-precipitation (CuI) techniques. The resulting colloids were evaluated as antifungal agents against Candida parapsilosis and Aspergillus niger strains. The NMs were characterized by XRD, HRTEM, AFM, and DLS to evaluate their physicochemical properties. The NMs present a high size dispersion and different geometrical shapes of agglomerates. The antifungal capacity of the NMs by the minimum inhibitory concentration (MIC) and minimum fungicidal concentration (MFC) was below 15 µg/mL against Candida parapsilosis and below 600 µg/mL against Aspergillus niger for both NMs. Holotomography microscopy showed that the NMs could penetrate cell membranes causing cell death through its rupture and reactive oxygen species (ROS) production. Cytotoxicity tests showed that NMs could be safe to use at low concentrations. The synthesized nanomaterials could be potential antifungal agents for biomedical or environmental applications. MDPI 2023-06-21 /pmc/articles/PMC10343807/ /pubmed/37446416 http://dx.doi.org/10.3390/nano13131900 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hernandez, Rafael
Jimenez-Chávez, Arturo
De Vizcaya, Andrea
Lozano-Alvarez, Juan Antonio
Esquivel, Karen
Medina-Ramírez, Iliana E.
Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity
title Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity
title_full Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity
title_fullStr Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity
title_full_unstemmed Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity
title_short Synthesis of TiO(2)-Cu(2+)/CuI Nanocomposites and Evaluation of Antifungal and Cytotoxic Activity
title_sort synthesis of tio(2)-cu(2+)/cui nanocomposites and evaluation of antifungal and cytotoxic activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10343807/
https://www.ncbi.nlm.nih.gov/pubmed/37446416
http://dx.doi.org/10.3390/nano13131900
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