Cazier Hélène, Malgorn Carole, Georgin Dominique, Fresneau Nathalie, Beau Fabrice, Kostarelos Kostas, Bussy Cyrill, Campidelli Stéphane, Pinault Mathieu, Mayne-L'Hermite Martine, Taran Frédéric, Junot Christophe, Fenaille François, Sallustrau Antoine, Colsch Benoit
Université Paris Saclay, CEA, INRAE, Département Médicaments et Technologies pour la Santé (DMTS), SPI, 91191 Gif-sur-Yvette, France.
Université Paris Saclay, CEA, INRAE, Département Médicaments et Technologies pour la Santé (DMTS), SiMos, 91191 Gif-sur-Yvette, France.
Nanoscale. 2023 Mar 16;15(11):5510-5518. doi: 10.1039/d2nr06753f.
Research on graphene based nanomaterials has flourished in the last decade due their unique properties and emerging socio-economic impact. In the context of their potential exploitation for biomedical applications, there is a growing need for the development of more efficient imaging techniques to track the fate of these materials. Herein we propose the first correlative imaging approach based on the combination of radioimaging and mass spectrometry imaging for the detection of Graphene Oxide (GO) labelled with carbon-14 in mice. In this study, C-graphene oxide nanoribbons were produced from the oxidative opening of C-carbon nanotubes, and were then intensively sonicated to provide nano-size C-GO flakes. After Intravenous administration in mice, C-GO distribution was quantified by radioimaging performed on tissue slices. On the same slices, MS-imaging provided a highly resolved distribution map of the nanomaterial based on the detection of specific radical anionic carbon clusters ranging from C2˙ to C9˙ with a base peak at / 72 (C) and 74 (C) under negative laser desorption ionization mass spectrometry (LDI-MS) conditions. This proof of concept approach synergizes the strength of each technique and could be advantageous in the pre-clinical development of future Graphene-based biomedical applications.
在过去十年中,基于石墨烯的纳米材料研究蓬勃发展,这得益于其独特的性质以及日益显现的社会经济影响。在其用于生物医学应用的潜在开发背景下,对开发更高效的成像技术以追踪这些材料的命运的需求日益增长。在此,我们提出了第一种基于放射成像和质谱成像相结合的相关成像方法,用于检测小鼠体内标记有碳 - 14的氧化石墨烯(GO)。在本研究中,C - 氧化石墨烯纳米带由C - 碳纳米管的氧化开口制备而成,然后进行强烈超声处理以提供纳米尺寸的C - GO薄片。在小鼠静脉注射后,通过对组织切片进行放射成像来量化C - GO的分布。在同一切片上,质谱成像基于在负激光解吸电离质谱(LDI - MS)条件下检测从C2˙到C9˙的特定自由基阴离子碳簇,提供了纳米材料的高分辨率分布图,其基峰位于/ 72(C)和74(C)处。这种概念验证方法将每种技术的优势结合起来,可能有利于未来基于石墨烯的生物医学应用的临床前开发。