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MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels

Multifunctional nanomaterials combining diagnosis and therapeutic properties have attracted a considerable attention in cancer research. Yet some important challenges are still to be faced, including an optimal coupling between these two types of properties that would be effective within complex bio...

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Autores principales: Shi, Yupeng, Guenneau, Flavien, Wang, Xiaolin, Hélary, Christophe, Coradin, Thibaud
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6170331/
https://www.ncbi.nlm.nih.gov/pubmed/30324085
http://dx.doi.org/10.7150/ntno.28046
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author Shi, Yupeng
Guenneau, Flavien
Wang, Xiaolin
Hélary, Christophe
Coradin, Thibaud
author_facet Shi, Yupeng
Guenneau, Flavien
Wang, Xiaolin
Hélary, Christophe
Coradin, Thibaud
author_sort Shi, Yupeng
collection PubMed
description Multifunctional nanomaterials combining diagnosis and therapeutic properties have attracted a considerable attention in cancer research. Yet some important challenges are still to be faced, including an optimal coupling between these two types of properties that would be effective within complex biological tissues. To address these points, we have prepared novel nanoplatforms associating controlled drug delivery of doxorubicin and Magnetic Resonance Imaging (MRI) contrast-enhancement that exhibit high specificity towards cancer cells compared to normal cells and evaluated them both in 2D cultures and within 3D tissue-like biomimetic matrices. Methods: Nanoplatforms were prepared from hollow silica nanoparticles coated with MnO(2) nanosheets and conjugated with the AS1411 aptamer as a targeting agent. They were fully characterized from a chemical and structural point of view as well as for drug release and MRI signal enhancement. Standard two-dimensional monolayer cultures were performed using HeLa and Normal Human Dermal Fibroblasts (NHDF) cells to testify targeting and cytotoxicity. Cellularized type I collagen-based hydrogels were also used to study nanoparticles behavior in 3D biomimetic environments. Results: The as-established nanoplatforms can enter HeLa cells, leading to the dissociation of the MnO(2) nanosheets into Mn(2+) that enhanced T(1) magnetic resonance signals and concomitantly release doxorubicin, both effects being markedly more significant than in the presence of NHDFs. Moreover, particles functionality and specificity were preserved when the cells were immobilized within type I collagen-based fibrillar hydrogels. Conclusion: The use of MnO(2) nanosheets as glutathione-sensitive coatings of drug loaded nanoparticles together with surface conjugation with a targeting aptamer offers an effective strategy to obtain efficient and specific nanotheranostic systems for cancer research, both in 2D and 3D. The here-described tissue-like models should be easy to implement and could constitute an interesting intermediate validation step for newly-developed theranostic nanoparticles before in vivo evaluation.
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spelling pubmed-61703312018-10-15 MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels Shi, Yupeng Guenneau, Flavien Wang, Xiaolin Hélary, Christophe Coradin, Thibaud Nanotheranostics Research Paper Multifunctional nanomaterials combining diagnosis and therapeutic properties have attracted a considerable attention in cancer research. Yet some important challenges are still to be faced, including an optimal coupling between these two types of properties that would be effective within complex biological tissues. To address these points, we have prepared novel nanoplatforms associating controlled drug delivery of doxorubicin and Magnetic Resonance Imaging (MRI) contrast-enhancement that exhibit high specificity towards cancer cells compared to normal cells and evaluated them both in 2D cultures and within 3D tissue-like biomimetic matrices. Methods: Nanoplatforms were prepared from hollow silica nanoparticles coated with MnO(2) nanosheets and conjugated with the AS1411 aptamer as a targeting agent. They were fully characterized from a chemical and structural point of view as well as for drug release and MRI signal enhancement. Standard two-dimensional monolayer cultures were performed using HeLa and Normal Human Dermal Fibroblasts (NHDF) cells to testify targeting and cytotoxicity. Cellularized type I collagen-based hydrogels were also used to study nanoparticles behavior in 3D biomimetic environments. Results: The as-established nanoplatforms can enter HeLa cells, leading to the dissociation of the MnO(2) nanosheets into Mn(2+) that enhanced T(1) magnetic resonance signals and concomitantly release doxorubicin, both effects being markedly more significant than in the presence of NHDFs. Moreover, particles functionality and specificity were preserved when the cells were immobilized within type I collagen-based fibrillar hydrogels. Conclusion: The use of MnO(2) nanosheets as glutathione-sensitive coatings of drug loaded nanoparticles together with surface conjugation with a targeting aptamer offers an effective strategy to obtain efficient and specific nanotheranostic systems for cancer research, both in 2D and 3D. The here-described tissue-like models should be easy to implement and could constitute an interesting intermediate validation step for newly-developed theranostic nanoparticles before in vivo evaluation. Ivyspring International Publisher 2018-09-21 /pmc/articles/PMC6170331/ /pubmed/30324085 http://dx.doi.org/10.7150/ntno.28046 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
Shi, Yupeng
Guenneau, Flavien
Wang, Xiaolin
Hélary, Christophe
Coradin, Thibaud
MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels
title MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels
title_full MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels
title_fullStr MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels
title_full_unstemmed MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels
title_short MnO(2)-gated Nanoplatforms with Targeted Controlled Drug Release and Contrast-Enhanced MRI Properties: from 2D Cell Culture to 3D Biomimetic Hydrogels
title_sort mno(2)-gated nanoplatforms with targeted controlled drug release and contrast-enhanced mri properties: from 2d cell culture to 3d biomimetic hydrogels
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6170331/
https://www.ncbi.nlm.nih.gov/pubmed/30324085
http://dx.doi.org/10.7150/ntno.28046
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