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Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy

To develop a pH-sensitive dual targeting magnetic nanocarrier for chemo-phototherapy in cancer treatment, we prepared magnetic graphene oxide (MGO) by depositing Fe(3)O(4) magnetic nanoparticles on graphene oxide (GO) through chemical co-precipitation. MGO was modified with polyethylene glycol (PEG)...

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Autores principales: Lu, Yu-Jen, Lin, Pin-Yi, Huang, Pei-Han, Kuo, Chang-Yi, Shalumon, K.T., Chen, Mao-Yu, Chen, Jyh-Ping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5923523/
https://www.ncbi.nlm.nih.gov/pubmed/29584656
http://dx.doi.org/10.3390/nano8040193
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author Lu, Yu-Jen
Lin, Pin-Yi
Huang, Pei-Han
Kuo, Chang-Yi
Shalumon, K.T.
Chen, Mao-Yu
Chen, Jyh-Ping
author_facet Lu, Yu-Jen
Lin, Pin-Yi
Huang, Pei-Han
Kuo, Chang-Yi
Shalumon, K.T.
Chen, Mao-Yu
Chen, Jyh-Ping
author_sort Lu, Yu-Jen
collection PubMed
description To develop a pH-sensitive dual targeting magnetic nanocarrier for chemo-phototherapy in cancer treatment, we prepared magnetic graphene oxide (MGO) by depositing Fe(3)O(4) magnetic nanoparticles on graphene oxide (GO) through chemical co-precipitation. MGO was modified with polyethylene glycol (PEG) and cetuximab (CET, an epidermal growth factor receptor (EGFR) monoclonal antibody) to obtain MGO-PEG-CET. Since EGFR was highly expressed on the tumor cell surface, MGO-PEG-CET was used for dual targeted delivery an anticancer drug doxorubicin (DOX). The physico-chemical properties of MGO-PEG-CET were fully characterized by dynamic light scattering, transmission electron microscopy, X-ray diffraction, Fourier transform Infrared spectroscopy, thermogravimetric analysis, and superconducting quantum interference device. Drug loading experiments revealed that DOX adsorption followed the Langmuir isotherm with a maximal drug loading capacity of 6.35 mg/mg, while DOX release was pH-dependent with more DOX released at pH 5.5 than pH 7.4. Using quantum-dots labeled nanocarriers and confocal microscopy, intracellular uptakes of MGO-PEG-CET by high EGFR-expressing CT-26 murine colorectal cells was confirmed to be more efficient than MGO. This cellular uptake could be inhibited by pre-incubation with CET, which confirmed the receptor-mediated endocytosis of MGO-PEG-CET. Magnetic targeted killing of CT-26 was demonstrated in vitro through magnetic guidance of MGO-PEG-CET/DOX, while the photothermal effect could be confirmed in vivo and in vitro after exposure of MGO-PEG-CET to near-infrared (NIR) laser light. In addition, the biocompatibility tests indicated MGO-PEG-CET showed no cytotoxicity toward fibroblasts and elicited minimum hemolysis. In vitro cytotoxicity tests showed the half maximal inhibitory concentration (IC50) value of MGO-PEG-CET/DOX toward CT-26 cells was 1.48 µg/mL, which was lower than that of MGO-PEG/DOX (2.64 µg/mL). The IC50 value could be further reduced to 1.17 µg/mL after combining with photothermal therapy by NIR laser light exposure. Using subcutaneously implanted CT-26 cells in BALB/c mice, in vivo anti-tumor studies indicated the relative tumor volumes at day 14 were 12.1 for control (normal saline), 10.1 for DOX, 9.5 for MGO-PEG-CET/DOX, 5.8 for MGO-PEG-CET/DOX + magnet, and 0.42 for MGO-PEG-CET/DOX + magnet + laser. Therefore, the dual targeting MGO-PEG-CET/DOX could be suggested as an effective drug delivery system for anticancer therapy, which showed a 29-fold increase in therapeutic efficacy compared with control by combining chemotherapy with photothermal therapy.
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spelling pubmed-59235232018-05-03 Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy Lu, Yu-Jen Lin, Pin-Yi Huang, Pei-Han Kuo, Chang-Yi Shalumon, K.T. Chen, Mao-Yu Chen, Jyh-Ping Nanomaterials (Basel) Article To develop a pH-sensitive dual targeting magnetic nanocarrier for chemo-phototherapy in cancer treatment, we prepared magnetic graphene oxide (MGO) by depositing Fe(3)O(4) magnetic nanoparticles on graphene oxide (GO) through chemical co-precipitation. MGO was modified with polyethylene glycol (PEG) and cetuximab (CET, an epidermal growth factor receptor (EGFR) monoclonal antibody) to obtain MGO-PEG-CET. Since EGFR was highly expressed on the tumor cell surface, MGO-PEG-CET was used for dual targeted delivery an anticancer drug doxorubicin (DOX). The physico-chemical properties of MGO-PEG-CET were fully characterized by dynamic light scattering, transmission electron microscopy, X-ray diffraction, Fourier transform Infrared spectroscopy, thermogravimetric analysis, and superconducting quantum interference device. Drug loading experiments revealed that DOX adsorption followed the Langmuir isotherm with a maximal drug loading capacity of 6.35 mg/mg, while DOX release was pH-dependent with more DOX released at pH 5.5 than pH 7.4. Using quantum-dots labeled nanocarriers and confocal microscopy, intracellular uptakes of MGO-PEG-CET by high EGFR-expressing CT-26 murine colorectal cells was confirmed to be more efficient than MGO. This cellular uptake could be inhibited by pre-incubation with CET, which confirmed the receptor-mediated endocytosis of MGO-PEG-CET. Magnetic targeted killing of CT-26 was demonstrated in vitro through magnetic guidance of MGO-PEG-CET/DOX, while the photothermal effect could be confirmed in vivo and in vitro after exposure of MGO-PEG-CET to near-infrared (NIR) laser light. In addition, the biocompatibility tests indicated MGO-PEG-CET showed no cytotoxicity toward fibroblasts and elicited minimum hemolysis. In vitro cytotoxicity tests showed the half maximal inhibitory concentration (IC50) value of MGO-PEG-CET/DOX toward CT-26 cells was 1.48 µg/mL, which was lower than that of MGO-PEG/DOX (2.64 µg/mL). The IC50 value could be further reduced to 1.17 µg/mL after combining with photothermal therapy by NIR laser light exposure. Using subcutaneously implanted CT-26 cells in BALB/c mice, in vivo anti-tumor studies indicated the relative tumor volumes at day 14 were 12.1 for control (normal saline), 10.1 for DOX, 9.5 for MGO-PEG-CET/DOX, 5.8 for MGO-PEG-CET/DOX + magnet, and 0.42 for MGO-PEG-CET/DOX + magnet + laser. Therefore, the dual targeting MGO-PEG-CET/DOX could be suggested as an effective drug delivery system for anticancer therapy, which showed a 29-fold increase in therapeutic efficacy compared with control by combining chemotherapy with photothermal therapy. MDPI 2018-03-27 /pmc/articles/PMC5923523/ /pubmed/29584656 http://dx.doi.org/10.3390/nano8040193 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lu, Yu-Jen
Lin, Pin-Yi
Huang, Pei-Han
Kuo, Chang-Yi
Shalumon, K.T.
Chen, Mao-Yu
Chen, Jyh-Ping
Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy
title Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy
title_full Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy
title_fullStr Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy
title_full_unstemmed Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy
title_short Magnetic Graphene Oxide for Dual Targeted Delivery of Doxorubicin and Photothermal Therapy
title_sort magnetic graphene oxide for dual targeted delivery of doxorubicin and photothermal therapy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5923523/
https://www.ncbi.nlm.nih.gov/pubmed/29584656
http://dx.doi.org/10.3390/nano8040193
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