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Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging

This work explores the preparation of luminescent and biomimetic Tb(3+)-doped citrate-functionalized carbonated apatite nanoparticles. These nanoparticles were synthesized employing a citrate-based thermal decomplexing precipitation method, testing a nominal Tb(3+) doping concentration between 0.001...

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Autores principales: Gómez-Morales, Jaime, Fernández-Penas, Raquel, Acebedo-Martínez, Francisco Javier, Romero-Castillo, Ismael, Verdugo-Escamilla, Cristóbal, Choquesillo-Lazarte, Duane, Esposti, Lorenzo Degli, Jiménez-Martínez, Yaiza, Fernández-Sánchez, Jorge Fernando, Iafisco, Michele, Boulaiz, Houria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9032902/
https://www.ncbi.nlm.nih.gov/pubmed/35457965
http://dx.doi.org/10.3390/nano12081257
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author Gómez-Morales, Jaime
Fernández-Penas, Raquel
Acebedo-Martínez, Francisco Javier
Romero-Castillo, Ismael
Verdugo-Escamilla, Cristóbal
Choquesillo-Lazarte, Duane
Esposti, Lorenzo Degli
Jiménez-Martínez, Yaiza
Fernández-Sánchez, Jorge Fernando
Iafisco, Michele
Boulaiz, Houria
author_facet Gómez-Morales, Jaime
Fernández-Penas, Raquel
Acebedo-Martínez, Francisco Javier
Romero-Castillo, Ismael
Verdugo-Escamilla, Cristóbal
Choquesillo-Lazarte, Duane
Esposti, Lorenzo Degli
Jiménez-Martínez, Yaiza
Fernández-Sánchez, Jorge Fernando
Iafisco, Michele
Boulaiz, Houria
author_sort Gómez-Morales, Jaime
collection PubMed
description This work explores the preparation of luminescent and biomimetic Tb(3+)-doped citrate-functionalized carbonated apatite nanoparticles. These nanoparticles were synthesized employing a citrate-based thermal decomplexing precipitation method, testing a nominal Tb(3+) doping concentration between 0.001 M to 0.020 M, and a maturation time from 4 h to 7 days. This approach allowed to prepare apatite nanoparticles as a single hydroxyapatite phase when the used Tb(3+) concentrations were (i) ≤ 0.005 M at all maturation times or (ii) = 0.010 M with 4 h of maturation. At higher Tb(3+) concentrations, amorphous TbPO(4)·nH(2)O formed at short maturation times, while materials consisting of a mixture of carbonated apatite prisms, TbPO(4)·H(2)O (rhabdophane) nanocrystals, and an amorphous phase formed at longer times. The Tb(3+) content of the samples reached a maximum of 21.71 wt%. The relative luminescence intensity revealed an almost linear dependence with Tb(3+) up to a maximum of 850 units. Neither pH, nor ionic strength, nor temperature significantly affected the luminescence properties. All precipitates were cytocompatible against A375, MCF7, and HeLa carcinogenic cells, and also against healthy fibroblast cells. Moreover, the luminescence properties of these nanoparticles allowed to visualize their intracellular cytoplasmic uptake at 12 h of treatment through flow cytometry and fluorescence confocal microscopy (green fluorescence) when incubated with A375 cells. This demonstrates for the first time the potential of these materials as nanophosphors for living cell imaging compatible with flow cytometry and fluorescence confocal microscopy without the need to introduce an additional fluorescence dye. Overall, our results demonstrated that Tb(3+)-doped citrate-functionalized apatite nanoparticles are excellent candidates for bioimaging applications.
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spelling pubmed-90329022022-04-23 Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging Gómez-Morales, Jaime Fernández-Penas, Raquel Acebedo-Martínez, Francisco Javier Romero-Castillo, Ismael Verdugo-Escamilla, Cristóbal Choquesillo-Lazarte, Duane Esposti, Lorenzo Degli Jiménez-Martínez, Yaiza Fernández-Sánchez, Jorge Fernando Iafisco, Michele Boulaiz, Houria Nanomaterials (Basel) Article This work explores the preparation of luminescent and biomimetic Tb(3+)-doped citrate-functionalized carbonated apatite nanoparticles. These nanoparticles were synthesized employing a citrate-based thermal decomplexing precipitation method, testing a nominal Tb(3+) doping concentration between 0.001 M to 0.020 M, and a maturation time from 4 h to 7 days. This approach allowed to prepare apatite nanoparticles as a single hydroxyapatite phase when the used Tb(3+) concentrations were (i) ≤ 0.005 M at all maturation times or (ii) = 0.010 M with 4 h of maturation. At higher Tb(3+) concentrations, amorphous TbPO(4)·nH(2)O formed at short maturation times, while materials consisting of a mixture of carbonated apatite prisms, TbPO(4)·H(2)O (rhabdophane) nanocrystals, and an amorphous phase formed at longer times. The Tb(3+) content of the samples reached a maximum of 21.71 wt%. The relative luminescence intensity revealed an almost linear dependence with Tb(3+) up to a maximum of 850 units. Neither pH, nor ionic strength, nor temperature significantly affected the luminescence properties. All precipitates were cytocompatible against A375, MCF7, and HeLa carcinogenic cells, and also against healthy fibroblast cells. Moreover, the luminescence properties of these nanoparticles allowed to visualize their intracellular cytoplasmic uptake at 12 h of treatment through flow cytometry and fluorescence confocal microscopy (green fluorescence) when incubated with A375 cells. This demonstrates for the first time the potential of these materials as nanophosphors for living cell imaging compatible with flow cytometry and fluorescence confocal microscopy without the need to introduce an additional fluorescence dye. Overall, our results demonstrated that Tb(3+)-doped citrate-functionalized apatite nanoparticles are excellent candidates for bioimaging applications. MDPI 2022-04-07 /pmc/articles/PMC9032902/ /pubmed/35457965 http://dx.doi.org/10.3390/nano12081257 Text en © 2022 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
Gómez-Morales, Jaime
Fernández-Penas, Raquel
Acebedo-Martínez, Francisco Javier
Romero-Castillo, Ismael
Verdugo-Escamilla, Cristóbal
Choquesillo-Lazarte, Duane
Esposti, Lorenzo Degli
Jiménez-Martínez, Yaiza
Fernández-Sánchez, Jorge Fernando
Iafisco, Michele
Boulaiz, Houria
Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging
title Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging
title_full Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging
title_fullStr Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging
title_full_unstemmed Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging
title_short Luminescent Citrate-Functionalized Terbium-Substituted Carbonated Apatite Nanomaterials: Structural Aspects, Sensitized Luminescence, Cytocompatibility, and Cell Uptake Imaging
title_sort luminescent citrate-functionalized terbium-substituted carbonated apatite nanomaterials: structural aspects, sensitized luminescence, cytocompatibility, and cell uptake imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9032902/
https://www.ncbi.nlm.nih.gov/pubmed/35457965
http://dx.doi.org/10.3390/nano12081257
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