ZnO based quantum dots for magnetic resonance and fluorescence imaging

Detalhes bibliográficos
Autor(a) principal: Chiavacci, Leila A. [UNESP]
Data de Publicação: 2019
Outros Autores: da Silva, Bruna Lallo [UNESP], Manaia, Eloisa Berbel, Lepeltier, Elise, Benoit, Jean-Pierre, Lemaire, Laurent
Tipo de documento: Artigo de conferência
Idioma: eng
Título da fonte: Repositório Institucional da UNESP
Texto Completo: http://dx.doi.org/10.11159/icnnfc19.107
http://hdl.handle.net/11449/200654
Resumo: Theranostic nanocarriers combine a diagnostic and therapy agent allowing both imaging and treatment. Usually, the diagnostic agents used in theranostics are fluorescent dyes or quantum dots (QDs). In recent years, efforts have been made to develop new nanoprobes to associate magnetic resonance imaging (MRI) to fluorescence imaging (FI) involving QDs containing Gd. The ZnO-based QDs are a good candidate for imaging agent due to their excellent photoluminescence properties and low toxicity; however, studies have shown that ZnO QDs degrade rapidly in biological acid medium. To overcome this limitation of biological use in this work we adopt two strategies: in the first one we have incorpored Gd-doped ZnO QDs in lipidic nanocapsules aiming to protect the QDs of biological degradation. In the second one we have developed and characterized gadolinium-copper-indium-sulfur (GCIS) and ZnS (core/shell) conjugated to ZnO (GCIS/ZnS/ZnO QDs) that exhibit pronounced near-infrared fluorescence and good colloidal stability in different pH ranges [1]. Both Gd-doped ZnO QDs and GCIS/ZnS/ZnO QDs were characterized by XRD and by photoluminescence spectroscopy to evaluate their structure and optical properties. The results showed that the peaks in the XRD of Gd-doped ZnO QDs correspond to ZnO wurtzite hexagonal phase without any formation of Gd2O3 oxide phase, whatever the concentration of Gd3+ ions. The XRD profiles of GCIS/ZnS/ZnO QDs showed the same structure of ZnO and the peaks of the GCIS/ZnS QDs were not detected due to their lower proportion in relation to ZnO. PL spectra of Gd-doped ZnO QDs showed a shift towards the low excitation/emission wavelengths with the increase of Gd content; moreover, a decrease in PL intensity was observed with Gd content. We have investigated the internalization of Gd-doped ZnO QDs into lipidic nanocapsules by J774 murine macrophage-like cells and A549 human lung cancer cells using fluorescence microscopy. Thanks to their visible emission we could shed light their different localization within the cells as a function of incubation time. As expected, PL spectra of GCIS/ZnS/ZnO QDs showed emission in the near infrared region (NIR), differently from Gd-doped ZnO QDs (yellow emission). The results of stability of the systems in biological medium showed that the incorporation of the quantum dots in lipidic nanocapsules increases the ZnO based quantum dots stability.
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spelling ZnO based quantum dots for magnetic resonance and fluorescence imagingTheranostic nanocarriers combine a diagnostic and therapy agent allowing both imaging and treatment. Usually, the diagnostic agents used in theranostics are fluorescent dyes or quantum dots (QDs). In recent years, efforts have been made to develop new nanoprobes to associate magnetic resonance imaging (MRI) to fluorescence imaging (FI) involving QDs containing Gd. The ZnO-based QDs are a good candidate for imaging agent due to their excellent photoluminescence properties and low toxicity; however, studies have shown that ZnO QDs degrade rapidly in biological acid medium. To overcome this limitation of biological use in this work we adopt two strategies: in the first one we have incorpored Gd-doped ZnO QDs in lipidic nanocapsules aiming to protect the QDs of biological degradation. In the second one we have developed and characterized gadolinium-copper-indium-sulfur (GCIS) and ZnS (core/shell) conjugated to ZnO (GCIS/ZnS/ZnO QDs) that exhibit pronounced near-infrared fluorescence and good colloidal stability in different pH ranges [1]. Both Gd-doped ZnO QDs and GCIS/ZnS/ZnO QDs were characterized by XRD and by photoluminescence spectroscopy to evaluate their structure and optical properties. The results showed that the peaks in the XRD of Gd-doped ZnO QDs correspond to ZnO wurtzite hexagonal phase without any formation of Gd2O3 oxide phase, whatever the concentration of Gd3+ ions. The XRD profiles of GCIS/ZnS/ZnO QDs showed the same structure of ZnO and the peaks of the GCIS/ZnS QDs were not detected due to their lower proportion in relation to ZnO. PL spectra of Gd-doped ZnO QDs showed a shift towards the low excitation/emission wavelengths with the increase of Gd content; moreover, a decrease in PL intensity was observed with Gd content. We have investigated the internalization of Gd-doped ZnO QDs into lipidic nanocapsules by J774 murine macrophage-like cells and A549 human lung cancer cells using fluorescence microscopy. Thanks to their visible emission we could shed light their different localization within the cells as a function of incubation time. As expected, PL spectra of GCIS/ZnS/ZnO QDs showed emission in the near infrared region (NIR), differently from Gd-doped ZnO QDs (yellow emission). The results of stability of the systems in biological medium showed that the incorporation of the quantum dots in lipidic nanocapsules increases the ZnO based quantum dots stability.Department of Drugs and Medicines School of Pharmaceutical Sciences São Paulo State University (UNESP)MINT INSERM U1066-CNRS 6021-Université Angers CHU-IBS, 4 rue LarreyInstitut Galien Paris-Sud Univ. Paris-Sud CNRS Université Paris-SaclayDepartment of Drugs and Medicines School of Pharmaceutical Sciences São Paulo State University (UNESP)Universidade Estadual Paulista (Unesp)CHU-IBSUniversité Paris-SaclayChiavacci, Leila A. [UNESP]da Silva, Bruna Lallo [UNESP]Manaia, Eloisa BerbelLepeltier, EliseBenoit, Jean-PierreLemaire, Laurent2020-12-12T02:12:32Z2020-12-12T02:12:32Z2019-01-01info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/conferenceObjecthttp://dx.doi.org/10.11159/icnnfc19.107World Congress on Recent Advances in Nanotechnology.2371-5308http://hdl.handle.net/11449/20065410.11159/icnnfc19.1072-s2.0-85087044321Scopusreponame:Repositório Institucional da UNESPinstname:Universidade Estadual Paulista (UNESP)instacron:UNESPengWorld Congress on Recent Advances in Nanotechnologyinfo:eu-repo/semantics/openAccess2024-06-24T13:47:04Zoai:repositorio.unesp.br:11449/200654Repositório InstitucionalPUBhttp://repositorio.unesp.br/oai/requestopendoar:29462024-08-05T15:12:40.000378Repositório Institucional da UNESP - Universidade Estadual Paulista (UNESP)false
dc.title.none.fl_str_mv ZnO based quantum dots for magnetic resonance and fluorescence imaging
title ZnO based quantum dots for magnetic resonance and fluorescence imaging
spellingShingle ZnO based quantum dots for magnetic resonance and fluorescence imaging
Chiavacci, Leila A. [UNESP]
title_short ZnO based quantum dots for magnetic resonance and fluorescence imaging
title_full ZnO based quantum dots for magnetic resonance and fluorescence imaging
title_fullStr ZnO based quantum dots for magnetic resonance and fluorescence imaging
title_full_unstemmed ZnO based quantum dots for magnetic resonance and fluorescence imaging
title_sort ZnO based quantum dots for magnetic resonance and fluorescence imaging
author Chiavacci, Leila A. [UNESP]
author_facet Chiavacci, Leila A. [UNESP]
da Silva, Bruna Lallo [UNESP]
Manaia, Eloisa Berbel
Lepeltier, Elise
Benoit, Jean-Pierre
Lemaire, Laurent
author_role author
author2 da Silva, Bruna Lallo [UNESP]
Manaia, Eloisa Berbel
Lepeltier, Elise
Benoit, Jean-Pierre
Lemaire, Laurent
author2_role author
author
author
author
author
dc.contributor.none.fl_str_mv Universidade Estadual Paulista (Unesp)
CHU-IBS
Université Paris-Saclay
dc.contributor.author.fl_str_mv Chiavacci, Leila A. [UNESP]
da Silva, Bruna Lallo [UNESP]
Manaia, Eloisa Berbel
Lepeltier, Elise
Benoit, Jean-Pierre
Lemaire, Laurent
description Theranostic nanocarriers combine a diagnostic and therapy agent allowing both imaging and treatment. Usually, the diagnostic agents used in theranostics are fluorescent dyes or quantum dots (QDs). In recent years, efforts have been made to develop new nanoprobes to associate magnetic resonance imaging (MRI) to fluorescence imaging (FI) involving QDs containing Gd. The ZnO-based QDs are a good candidate for imaging agent due to their excellent photoluminescence properties and low toxicity; however, studies have shown that ZnO QDs degrade rapidly in biological acid medium. To overcome this limitation of biological use in this work we adopt two strategies: in the first one we have incorpored Gd-doped ZnO QDs in lipidic nanocapsules aiming to protect the QDs of biological degradation. In the second one we have developed and characterized gadolinium-copper-indium-sulfur (GCIS) and ZnS (core/shell) conjugated to ZnO (GCIS/ZnS/ZnO QDs) that exhibit pronounced near-infrared fluorescence and good colloidal stability in different pH ranges [1]. Both Gd-doped ZnO QDs and GCIS/ZnS/ZnO QDs were characterized by XRD and by photoluminescence spectroscopy to evaluate their structure and optical properties. The results showed that the peaks in the XRD of Gd-doped ZnO QDs correspond to ZnO wurtzite hexagonal phase without any formation of Gd2O3 oxide phase, whatever the concentration of Gd3+ ions. The XRD profiles of GCIS/ZnS/ZnO QDs showed the same structure of ZnO and the peaks of the GCIS/ZnS QDs were not detected due to their lower proportion in relation to ZnO. PL spectra of Gd-doped ZnO QDs showed a shift towards the low excitation/emission wavelengths with the increase of Gd content; moreover, a decrease in PL intensity was observed with Gd content. We have investigated the internalization of Gd-doped ZnO QDs into lipidic nanocapsules by J774 murine macrophage-like cells and A549 human lung cancer cells using fluorescence microscopy. Thanks to their visible emission we could shed light their different localization within the cells as a function of incubation time. As expected, PL spectra of GCIS/ZnS/ZnO QDs showed emission in the near infrared region (NIR), differently from Gd-doped ZnO QDs (yellow emission). The results of stability of the systems in biological medium showed that the incorporation of the quantum dots in lipidic nanocapsules increases the ZnO based quantum dots stability.
publishDate 2019
dc.date.none.fl_str_mv 2019-01-01
2020-12-12T02:12:32Z
2020-12-12T02:12:32Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
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format conferenceObject
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dc.identifier.uri.fl_str_mv http://dx.doi.org/10.11159/icnnfc19.107
World Congress on Recent Advances in Nanotechnology.
2371-5308
http://hdl.handle.net/11449/200654
10.11159/icnnfc19.107
2-s2.0-85087044321
url http://dx.doi.org/10.11159/icnnfc19.107
http://hdl.handle.net/11449/200654
identifier_str_mv World Congress on Recent Advances in Nanotechnology.
2371-5308
10.11159/icnnfc19.107
2-s2.0-85087044321
dc.language.iso.fl_str_mv eng
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dc.relation.none.fl_str_mv World Congress on Recent Advances in Nanotechnology
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reponame:Repositório Institucional da UNESP
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instname_str Universidade Estadual Paulista (UNESP)
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