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Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy

Rationale: Graphene oxide (GO) has shown great promises in biomedical applications, such as drug delivery and thermotherapeutics, owing to its extraordinary physicochemical properties. Nonetheless, current biomedical applications of GO materials are premised on the basis of predesigned functions, an...

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Autores principales: Liu, Yun, Qi, Yu, Yin, Chunyang, Wang, Shunhao, Zhang, Shuping, Xu, An, Chen, Wei, Liu, Sijin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5984285/
https://www.ncbi.nlm.nih.gov/pubmed/29868347
http://dx.doi.org/10.7150/ntno.25719
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author Liu, Yun
Qi, Yu
Yin, Chunyang
Wang, Shunhao
Zhang, Shuping
Xu, An
Chen, Wei
Liu, Sijin
author_facet Liu, Yun
Qi, Yu
Yin, Chunyang
Wang, Shunhao
Zhang, Shuping
Xu, An
Chen, Wei
Liu, Sijin
author_sort Liu, Yun
collection PubMed
description Rationale: Graphene oxide (GO) has shown great promises in biomedical applications, such as drug delivery and thermotherapeutics, owing to its extraordinary physicochemical properties. Nonetheless, current biomedical applications of GO materials are premised on the basis of predesigned functions, and little consideration has been given to the influence of bio-transformation in the physiological environment on the physicochemical properties and predesigned functionalities of these materials. Hence, it is crucial to uncover the possible influence on GO's physicochemical properties and predesigned functionalities for better applications. Methods: Bio-transformed GOs were characterized by X-ray diffraction (XRD) spectra, Raman spectra, X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared transmission (FT-IR) spectra. The morphologies of various GO materials were assessed via transmission electron microscopy (TEM), scanning electron microscopy (SEM) and atomic force microscopy (AFM) images. The photothermal (PTT) performance of different GO materials in vitro and in vivo were measured using 808 nm laser at a power density of 2 W/cm(2). The PTT efficacy was determined using transplanted 4T1 cells-derived breast tumors in mice. Results: Bio-transformation of GO in the lung (a main target organ for GO to localize in vivo) can induce dramatic changes to its physicochemical properties and morphology, and consequently, its performances in biomedical applications. Specifically, GO underwent significant reduction in two simulated lung fluids, Gamble's solution and artificial lysosomal fluid (ALF), as evidenced by the increase of C/O ratio (the ratio of C content to O content) relative to pristine GO. Bio-transformation also altered GO's morphology, characterized by sheet folding and wrinkle formation. Intriguingly, bio-transformation elevated the PTT performance of GO in vitro, and this elevation further facilitated PTT-based tumor-killing efficacy in tumor cells in vitro and in a mouse model with transplanted tumors. Bio-transformation also compromised the interaction between drug with GO, leading to reduced drug adsorption, as tested using doxorubicin (DOX). Conclusions: Transformation in Gamble's solution and ALF resulted in varied degrees of improved performances of GO, due to the differential effects on GO's physicochemical properties. Our findings unveiled an overlooked impact of GO bio-transformation, and unearthed a favorable trait of GO materials in thermotherapeutics and drug delivery in the lung microenvironment.
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spelling pubmed-59842852018-06-04 Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy Liu, Yun Qi, Yu Yin, Chunyang Wang, Shunhao Zhang, Shuping Xu, An Chen, Wei Liu, Sijin Nanotheranostics Research Paper Rationale: Graphene oxide (GO) has shown great promises in biomedical applications, such as drug delivery and thermotherapeutics, owing to its extraordinary physicochemical properties. Nonetheless, current biomedical applications of GO materials are premised on the basis of predesigned functions, and little consideration has been given to the influence of bio-transformation in the physiological environment on the physicochemical properties and predesigned functionalities of these materials. Hence, it is crucial to uncover the possible influence on GO's physicochemical properties and predesigned functionalities for better applications. Methods: Bio-transformed GOs were characterized by X-ray diffraction (XRD) spectra, Raman spectra, X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared transmission (FT-IR) spectra. The morphologies of various GO materials were assessed via transmission electron microscopy (TEM), scanning electron microscopy (SEM) and atomic force microscopy (AFM) images. The photothermal (PTT) performance of different GO materials in vitro and in vivo were measured using 808 nm laser at a power density of 2 W/cm(2). The PTT efficacy was determined using transplanted 4T1 cells-derived breast tumors in mice. Results: Bio-transformation of GO in the lung (a main target organ for GO to localize in vivo) can induce dramatic changes to its physicochemical properties and morphology, and consequently, its performances in biomedical applications. Specifically, GO underwent significant reduction in two simulated lung fluids, Gamble's solution and artificial lysosomal fluid (ALF), as evidenced by the increase of C/O ratio (the ratio of C content to O content) relative to pristine GO. Bio-transformation also altered GO's morphology, characterized by sheet folding and wrinkle formation. Intriguingly, bio-transformation elevated the PTT performance of GO in vitro, and this elevation further facilitated PTT-based tumor-killing efficacy in tumor cells in vitro and in a mouse model with transplanted tumors. Bio-transformation also compromised the interaction between drug with GO, leading to reduced drug adsorption, as tested using doxorubicin (DOX). Conclusions: Transformation in Gamble's solution and ALF resulted in varied degrees of improved performances of GO, due to the differential effects on GO's physicochemical properties. Our findings unveiled an overlooked impact of GO bio-transformation, and unearthed a favorable trait of GO materials in thermotherapeutics and drug delivery in the lung microenvironment. Ivyspring International Publisher 2018-05-20 /pmc/articles/PMC5984285/ /pubmed/29868347 http://dx.doi.org/10.7150/ntno.25719 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Liu, Yun
Qi, Yu
Yin, Chunyang
Wang, Shunhao
Zhang, Shuping
Xu, An
Chen, Wei
Liu, Sijin
Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy
title Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy
title_full Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy
title_fullStr Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy
title_full_unstemmed Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy
title_short Bio-transformation of Graphene Oxide in Lung Fluids Significantly Enhances Its Photothermal Efficacy
title_sort bio-transformation of graphene oxide in lung fluids significantly enhances its photothermal efficacy
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5984285/
https://www.ncbi.nlm.nih.gov/pubmed/29868347
http://dx.doi.org/10.7150/ntno.25719
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