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Synthesis Characterization In Vitro Phantom Imaging and Cytotoxicity of A Novel Graphene-Based Multimodal Magnetic Resonance Imaging - X-Ray Computed Tomography Contrast Agent

机译:新型基于石墨烯的多峰磁共振成像的合成表征体外幻像成像和细胞毒性-X射线计算机断层扫描造影剂

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摘要

Graphene nanoplatelets (GNPs), synthesized using potassium permanganate-based oxidation and exfoliation followed by reduction with hydroiodic acid (rGNP-HI), have intercalated manganese ions within the graphene sheets, and upon functionalization with iodine, show excellent potential as biomodal contrast agents for magnetic resonance imaging (MRI) and computed tomography (CT). Structural characterization of rGNP-HI nanoparticles with low- and high-resolution transmission electron microscope (TEM) showed disc-shaped nanoparticles (average diameter, 200 nm, average thickness, 3 nm). Energy dispersive X-ray spectroscopy (EDX) analysis confirmed the presence of intercalated manganese. Raman spectroscopy and X-ray diffraction (XRD) analysis of rGNP-HI confirmed the reduction of oxidized GNPs (O-GNPs), absence of molecular and physically adsorbed iodine, and the functionalization of graphene with iodine as polyiodide complexes (I3 and I5). Manganese and iodine content were quantified as 5.1 ± 0.5 and 10.54 ± 0.87 wt% by inductively-coupled plasma optical emission spectroscopy and ion-selective electrode measurements, respectively. In vitro cytotoxicity analysis, using absorbance (LDH assay) and fluorescence (calcein AM) based assays, performed on NIH3T3 mouse fibroblasts and A498 human kidney epithelial cells, showed CD50 values of rGNP-HI between 179-301 µg/ml, depending on the cell line and the cytotoxicity assay. CT and MRI phantom imaging of rGNP-HI showed high CT (approximately 3200% greater than HI at equimolar iodine concentration) and MRI (approximately 59% greater than equimolar Mn2+ solution) contrast. These results open avenues for further in vivo safety and efficacy studies towards the development of carbon nanostructure-based multimodal MRI-CT contrast agents.
机译:石墨烯纳米片(GNP)是通过高锰酸钾氧化和剥离后再用氢碘酸(rGNP-HI)还原而合成的,在石墨烯片中嵌入了锰离子,并且在用碘进行功能化后,作为生物模态造影剂具有出色的潜力磁共振成像(MRI)和计算机断层扫描(CT)。用低分辨率和高分辨率透射电子显微镜(TEM)对rGNP-HI纳米颗粒进行结构表征显示出盘状纳米颗粒(平均直径200 nm,平均厚度3 nm)。能量色散X射线光谱(EDX)分析证实存在插层锰。 rGNP-HI的拉曼光谱和X射线衍射(XRD)分析证实了氧化GNP(O-GNPs)的减少,不存在分子和物理吸附的碘以及石墨烯与碘作为多碘化物络合物的功能化(I3 -和I5 -)。通过电感耦合等离子体发射光谱和离子选择电极测量,锰和碘的含量分别为5.1±0.5和10.54±0.87 wt%。在基于NIH3T3小鼠成纤维细胞和A498人肾上皮细胞的吸光度(LDH分析)和荧光(钙蛋白AM)分析基础上进行的体外细胞毒性分析显示,rGNP-HI的CD50值介于179-301 µg / ml之间,具体取决于细胞系和细胞毒性测定。 rGNP-HI的CT和MRI幻像成像显示高CT(在等摩尔碘浓度下比HI高约3200%)和MRI(比等摩尔Mn 2 + 溶液约高59%)。这些结果为进一步的体内安全性和功效研究开辟了道路,以开发基于碳纳米结构的多峰MRI-CT造影剂。

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