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Dive into the research topics where Arnaud Chaix is active.

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Featured researches published by Arnaud Chaix.


Small | 2014

Two‐Photon‐Triggered Drug Delivery via Fluorescent Nanovalves

Jonas G. Croissant; Arnaud Chaix; Olivier Mongin; Miao Wang; Sébastien Clément; Laurence Raehm; Jean-Olivier Durand; Vincent Hugues; Mireille Blanchard-Desce; Marie Maynadier; Audrey Gallud; Magali Gary-Bobo; Marcel Garcia; Jie Lu; Fuyuhiko Tamanoi; Daniel P. Ferris; Derrick Tarn; Jeffrey I. Zink

Mesoporous silica nanoparticles (MSN) are functionalized in the walls with an original fluorophore with a high two-photon absorption cross-section. The pores of the MSN filled with anticancer drug are blocked with a pseudo-rotaxane constituted by an azobenzene stalk and a β-cyclodextrin moiety. After incubation of the nanosystem with MCF-7 breast cancer cells, two-photon irradiation at low power is used to image the cells. At high power, cancer cell killing is observed due to the two-photon-triggered opening of the pores through FRET and the release of the anticancer drug from the MSN.


Advanced Materials | 2014

Two‐Photon Excitation of Porphyrin‐Functionalized Porous Silicon Nanoparticles for Photodynamic Therapy

Emilie Secret; Marie Maynadier; Audrey Gallud; Arnaud Chaix; Elise Bouffard; Magali Gary-Bobo; Nathalie Marcotte; Olivier Mongin; Khaled El Cheikh; Vincent Hugues; Mélanie Auffan; Céline Frochot; Alain Morère; Philippe Maillard; Mireille Blanchard-Desce; Michael J. Sailor; Marcel Garcia; Jean-Olivier Durand; Frédérique Cunin

Porous silicon nanoparticles (pSiNPs) act as a sensitizer for the 2-photon excitation of a pendant porphyrin using NIR laser light, for imaging and photodynamic therapy. Mannose-functionalized pSiNPs can be vectorized to MCF-7 human breast cancer cells through a mannose receptor-mediated endocytosis mechanism to provide a 3-fold enhancement of the 2-photon PDT effect.


Chemical Communications | 2013

Anionic porphyrin-grafted porous silicon nanoparticles for photodynamic therapy

Emilie Secret; Marie Maynadier; Audrey Gallud; Magali Gary-Bobo; Arnaud Chaix; Emmanuel Belamie; Philippe Maillard; Michael J. Sailor; Marcel Garcia; Jean-Olivier Durand; Frédérique Cunin

Non-toxic porous silicon nanoparticles carry porphyrin covalently attached to their surface inside breast cancer cells for a more efficient photodynamic effect.


Small | 2015

Enhanced Two‐Photon Fluorescence Imaging and Therapy of Cancer Cells via Gold@Bridged Silsesquioxane Nanoparticles

Jonas G. Croissant; Marie Maynadier; Olivier Mongin; Vincent Hugues; Mireille Blanchard-Desce; Arnaud Chaix; Xavier Cattoën; Michel Wong Chi Man; Audrey Gallud; Magali Gary-Bobo; Marcel Garcia; Laurence Raehm; Jean-Olivier Durand

A two-photon photosensitizer with four triethoxysilyl groups is synthesized through the click reaction. This photosensitizer allows the design of bridged silsesquioxane (BS) nanoparticles through a sol-gel process; moreover, gold core BS shells or BS nanoparticles decorated with gold nanospheres are synthesized. An enhancement of the two-photon properties is noted with gold and the nanoparticles are efficient for two-photon imaging and two-photon photodynamic therapy of cancer cells.


Journal of Materials Chemistry B | 2016

Ruthenium(II) complex-photosensitized multifunctionalized porous silicon nanoparticles for two-photon near-infrared light responsive imaging and photodynamic cancer therapy

Nikola Ž. Knežević; Vanja Stojanovic; Arnaud Chaix; Elise Bouffard; Khaled El Cheikh; Alain Morère; Marie Maynadier; Gilles Lemercier; Marcel Garcia; Magali Gary-Bobo; Jean-Olivier Durand; Frédérique Cunin

Multifunctionalized porous silicon nanoparticles (pSiNPs), containing the novel Ru(ii) complex-photosensitizer, the polyethylene glycol moiety, and mannose molecules as cancer targeting ligands, are constructed and showcased for application in near infrared (NIR) light-responsive photodynamic therapy (PDT) and imaging of cancer. Exposure to NIR light leads to two-photon excitation of the Ru(ii)-complex which allows efficient simultaneous cancer-imaging and targeted PDT therapy with the functionalized biodegradable pSiNP nanocarriers.


Journal of Materials Chemistry B | 2016

Mesoporous silicon nanoparticles for targeted two-photon theranostics of prostate cancer

Arnaud Chaix; Khaled El Cheikh; Elise Bouffard; Marie Maynadier; Dina Aggad; Vanja Stojanovic; Nikola Knezevic; Marcel Garcia; Philippe Maillard; Alain Morère; Magali Gary-Bobo; Laurence Raehm; Sébastien Richeter; Jean-Olivier Durand; Frédérique Cunin

A novel non-toxic porous silicon nanoparticle grafted with a mannose-6-phosphate analogue and applicable in 2-photon imaging and photodynamic therapy was specifically designed for targeting prostate cancer cells.


Molecular Systems Design & Engineering | 2017

Degradable gold core–mesoporous organosilica shell nanoparticles for two-photon imaging and gemcitabine monophosphate delivery

Saher Rahmani; Arnaud Chaix; Dina Aggad; Phuong Mai Hoang; Basem A. Moosa; Marcel Garcia; Magali Gary-Bobo; Clarence Charnay; Abdulaziz Almalik; Jean-Olivier Durand; Niveen M. Khashab

The synthesis of degradable gold core–mesoporous organosilica shell nanoparticles is described. The nanoparticles were very efficient for two-photon luminescence imaging of cancer cells and for in vitro gemcitabine monophosphate delivery, allowing promising theranostic applications in the nanomedicine field.


Langmuir | 2015

Control of the Pore Texture in Nanoporous Silicon via Chemical Dissolution.

Emilie Secret; Chia-Chen Wu; Arnaud Chaix; Anne Galarneau; Philippe Gonzalez; Didier Cot; Michael J. Sailor; Jacques Jestin; Jean-Marc Zanotti; Frédérique Cunin; Benoit Coasne

The surface and textural properties of porous silicon (pSi) control many of its physical properties essential to its performance in key applications such as optoelectronics, energy storage, luminescence, sensing, and drug delivery. Here, we combine experimental and theoretical tools to demonstrate that the surface roughness at the nanometer scale of pSi can be tuned in a controlled fashion using partial thermal oxidation followed by removal of the resulting silicon oxide layer with hydrofluoric acid (HF) solution. Such a process is shown to smooth the pSi surface by means of nitrogen adsorption, electron microscopy, and small-angle X-ray and neutron scattering. Statistical mechanics Monte Carlo simulations, which are consistent with the experimental data, support the interpretation that the pore surface is initially rough and that the oxidation/oxide removal procedure diminishes the surface roughness while increasing the pore diameter. As a specific example considered in this work, the initial roughness ξ ∼ 3.2 nm of pSi pores having a diameter of 7.6 nm can be decreased to 1.0 nm following the simple procedure above. This study allows envisioning the design of pSi samples with optimal surface properties toward a specific process.


Nanomaterials | 2017

Stealth Biocompatible Si-Based Nanoparticles for Biomedical Applications

Wei Liu; Arnaud Chaix; Magali Gary-Bobo; Bernard Angeletti; Armand Masion; Afitz Da Silva; Morgane Daurat; Laure Lichon; Marcel Garcia; Alain Morère; Khaled El Cheikh; Jean-Olivier Durand; Frédérique Cunin; Mélanie Auffan

A challenge regarding the design of nanocarriers for drug delivery is to prevent their recognition by the immune system. To improve the blood residence time and prevent their capture by organs, nanoparticles can be designed with stealth properties using polymeric coating. In this study, we focused on the influence of surface modification with polyethylene glycol and/or mannose on the stealth behavior of porous silicon nanoparticles (pSiNP, ~200 nm). In vivo biodistribution of pSiNPs formulations were evaluated in mice 5 h after intravenous injection. Results indicated that the distribution in the organs was surface functionalization-dependent. Pristine pSiNPs and PEGylated pSiNPs were distributed mainly in the liver and spleen, while mannose-functionalized pSiNPs escaped capture by the spleen, and had higher blood retention. The most efficient stealth behavior was observed with PEGylated pSiNPs anchored with mannose that were the most excreted in urine at 5 h. The biodegradation kinetics evaluated in vitro were in agreement with these in vivo observations. The biocompatibility of the pristine and functionalized pSiNPs was confirmed in vitro on human cell lines and in vivo by cytotoxic and systemic inflammation investigations, respectively. With their biocompatibility, biodegradability, and stealth properties, the pSiNPs functionalized with mannose and PEG show promising potential for biomedical applications.


Journal of the American Chemical Society | 2018

Trianglamine-Based Supramolecular Organic Framework with Permanent Intrinsic Porosity and Tunable Selectivity

Arnaud Chaix; Georges Mouchaham; Aleksander Shkurenko; Phuong Mai Hoang; Basem A. Moosa; Prashant M. Bhatt; Karim Adil; Khaled N. Salama; Mohamed Eddaoudi; Niveen M. Khashab

Here we introduce for the first time a metal-free trianglamine-based supramolecular organic framework, T-SOF-1, with permanent intrinsic porosity and high affinity to CO2. The capability of tuning the pore aperture dimensions is also demonstrated by molecular guest encapsulation to afford excellent CO2/CH4 separation for natural gas upgrading.

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Marcel Garcia

University of Montpellier

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Jean-Olivier Durand

Centre national de la recherche scientifique

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Frédérique Cunin

École nationale supérieure de chimie de Montpellier

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Marie Maynadier

Centre national de la recherche scientifique

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Audrey Gallud

University of Montpellier

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Alain Morère

Centre national de la recherche scientifique

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Khaled El Cheikh

Centre national de la recherche scientifique

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Emilie Secret

École nationale supérieure de chimie de Montpellier

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