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Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging

Quantum dots (QDs) and apomorphine were incorporated into liposomes to eliminate uptake by the liver and enhance brain targeting. We describe the preparation, physicochemical characterization, in vivo bioimaging, and brain endothelial cell uptake of the theranostic liposomes. QDs and the drug were m...

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Autores principales: Wen, Chih-Jen, Zhang, Li-Wen, Al-Suwayeh, Saleh A, Yen, Tzu-Chen, Fang, Jia-You
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3356172/
https://www.ncbi.nlm.nih.gov/pubmed/22619515
http://dx.doi.org/10.2147/IJN.S29369
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author Wen, Chih-Jen
Zhang, Li-Wen
Al-Suwayeh, Saleh A
Yen, Tzu-Chen
Fang, Jia-You
author_facet Wen, Chih-Jen
Zhang, Li-Wen
Al-Suwayeh, Saleh A
Yen, Tzu-Chen
Fang, Jia-You
author_sort Wen, Chih-Jen
collection PubMed
description Quantum dots (QDs) and apomorphine were incorporated into liposomes to eliminate uptake by the liver and enhance brain targeting. We describe the preparation, physicochemical characterization, in vivo bioimaging, and brain endothelial cell uptake of the theranostic liposomes. QDs and the drug were mainly located in the bilayer membrane and inner core of the liposomes, respectively. Spherical vesicles with a mean diameter of ~140 nm were formed. QDs were completely encapsulated by the vesicles. Nearly 80% encapsulation percentage was achieved for apomorphine. A greater fluorescence intensity was observed in mouse brains treated with liposomes compared to free QDs. This result was further confirmed by ex vivo imaging of the organs. QD uptake by the heart and liver was reduced by liposomal incorporation. Apomorphine accumulation in the brain increased by 2.4-fold after this incorporation. According to a hyperspectral imaging analysis, multifunctional liposomes but not the aqueous solution carried QDs into the brain. Liposomes were observed to have been efficiently endocytosed into bEND3 cells. The mechanisms involved in the cellular uptake were clathrin- and caveola-mediated endocytosis, which were energy-dependent. To the best of our knowledge, our group is the first to develop liposomes with a QD-drug hybrid for the aim of imaging and treating brain disorders.
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spelling pubmed-33561722012-05-22 Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging Wen, Chih-Jen Zhang, Li-Wen Al-Suwayeh, Saleh A Yen, Tzu-Chen Fang, Jia-You Int J Nanomedicine Original Research Quantum dots (QDs) and apomorphine were incorporated into liposomes to eliminate uptake by the liver and enhance brain targeting. We describe the preparation, physicochemical characterization, in vivo bioimaging, and brain endothelial cell uptake of the theranostic liposomes. QDs and the drug were mainly located in the bilayer membrane and inner core of the liposomes, respectively. Spherical vesicles with a mean diameter of ~140 nm were formed. QDs were completely encapsulated by the vesicles. Nearly 80% encapsulation percentage was achieved for apomorphine. A greater fluorescence intensity was observed in mouse brains treated with liposomes compared to free QDs. This result was further confirmed by ex vivo imaging of the organs. QD uptake by the heart and liver was reduced by liposomal incorporation. Apomorphine accumulation in the brain increased by 2.4-fold after this incorporation. According to a hyperspectral imaging analysis, multifunctional liposomes but not the aqueous solution carried QDs into the brain. Liposomes were observed to have been efficiently endocytosed into bEND3 cells. The mechanisms involved in the cellular uptake were clathrin- and caveola-mediated endocytosis, which were energy-dependent. To the best of our knowledge, our group is the first to develop liposomes with a QD-drug hybrid for the aim of imaging and treating brain disorders. Dove Medical Press 2012 2012-03-26 /pmc/articles/PMC3356172/ /pubmed/22619515 http://dx.doi.org/10.2147/IJN.S29369 Text en © 2012 Wen et al, publisher and licensee Dove Medical Press Ltd. This is an Open Access article which permits unrestricted noncommercial use, provided the original work is properly cited.
spellingShingle Original Research
Wen, Chih-Jen
Zhang, Li-Wen
Al-Suwayeh, Saleh A
Yen, Tzu-Chen
Fang, Jia-You
Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
title Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
title_full Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
title_fullStr Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
title_full_unstemmed Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
title_short Theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
title_sort theranostic liposomes loaded with quantum dots and apomorphine for brain targeting and bioimaging
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3356172/
https://www.ncbi.nlm.nih.gov/pubmed/22619515
http://dx.doi.org/10.2147/IJN.S29369
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