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Biologically-compatible gadolinium(at)(carbon nanostructures) as advanced contrast agents for magnetic resonance imaging.

机译:生物相容性g(at)(碳纳米结构)作为磁共振成像的高级造影剂。

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摘要

Paramagnetic gadolinium-based carbon nanostructures are introduced as a new paradigm in high-performance magnetic resonance imaging (MRI) contrast agent (CA) design. Two Gd C60-based nanomaterials, Gd C60 [C(COOH)2]10 and Gd C60(OH)x are shown to have MRI efficacies (relaxivities) 5 to 20 times larger than any current Gd3+-based CA in clinical use. The first detailed and systematic physicochemical characterization was performed on these materials using the same experimental techniques usually applied to traditional Gd 3+-based CAs.; Water-proton relaxivities were measured for the first time on these materials, as a function of magnetic field (5 x 10-4--9.4 T) to elucidate the different interaction mechanisms and dynamic processes influencing the relaxation behavior. These studies attribute the observed enhanced relaxivities completely to the "outer sphere" proton relaxation mechanism. These "outer sphere" relaxation effects are the largest reported for any Gd3+-based agent without inner-sphere water molecules.; The proton relaxivities displayed a remarkable pH-dependency, increasing dramatically with decreasing pH (pH: 3--12). The increase in relaxivity resulted mainly from aggregation and subsequent three-order-of-magnitude increase in tauR, the rotational correlation time. Water-soluble fullerene materials (such as the neuroprotective fullerene drug, C3) readily cross cell membranes, suggesting an application for these gadofullerenes as the first intracellular, as well as pH-responsive MRI CAs.; Studies performed at 60 MHz in the presence of phosphate-buffered saline (PBS, mice serum pH: 7.4) to mimic physiological conditions demonstrated that the aggregates can be disrupted by addition of salts, leading to a decrease in relaxivity. Biological fluids present a high salt concentration and should strongly modify the behavior of any fullerenes/metallofullerene-based drug in vivo.; Gd C60[C(COOH)2]10 also showed enhanced relaxivity (23% increase) in the presence of the blood protein, human serum albumin (HSA). This result suggests a strong non-covalent interaction between Gd C60[C(COOH)2]10 and HSA leading to slower rotation and a subsequent increase in relaxivity. This also suggests Gd C 60[C(COOH)2]10 as a promising candidate for non-invasive MR angiographic applications to image the "blood pool."; Finally, the various important factors or parameters discussed in this work provide valuable insight that can, in general, be used not only for the development of other carbon nanostructure-based MRI contrast agents, but also for any fullerene-based biomedical application.
机译:顺磁性g基碳纳米结构是高性能磁共振成像(MRI)造影剂(CA)设计中的新范例。两种基于Gd C60的纳米材料Gd C60 [C(COOH)2] 10和Gd C60(OH)x被证明具有比临床上目前任何基于Gd3 +的CA大5至20倍的MRI功效(松弛度)。使用与通常基于传统Gd 3+的CA相同的实验技术,对这些材料进行了首次详细而系统的理化表征。首次在这些材料上测量了水质子弛豫性,作为磁场(5 x 10-4--9.4 T)的函数,以阐明影响弛豫行为的不同相互作用机制和动力学过程。这些研究将观察到的增强的弛豫性完全归因于“外球”质子弛豫机制。对于没有内球水分子的任何基于Gd3 +的试剂,这些“外球”松弛效应是最大的。质子弛豫性表现出显着的pH依赖性,随pH的降低而急剧增加(pH:3--12)。弛豫度的增加主要是由于聚集以及随后tauR(旋转相关时间)的三个数量级的增加所致。水溶性富勒烯材料(例如神经保护性富勒烯药物,C3)容易穿过细胞膜,表明这些g富勒烯是第一个细胞内以及pH响应性MRI CA的应用。在磷酸盐缓冲盐水(PBS,小鼠血清pH:7.4)的存在下于60 MHz进行的模拟生理条件的研究表明,添加盐可破坏聚集体,从而导致松弛度降低。生物流体呈现出高盐浓度,并应在体内强烈改变任何基于富勒烯/金属富勒烯的药物的行为。 Gd C60 [C(COOH)2] 10在血液蛋白,人血清白蛋白(HSA)的存在下也显示出增强的弛豫性(增加23%)。该结果表明,Gd C60 [C(COOH)2] 10与HSA之间存在很强的非共价相互作用,从而导致旋转较慢并随后增加了弛豫度。这也表明Gd C 60 [C(CO(COOH)2] 10]作为无创MR血管造影应用成像“血库”的有希望的候选者。最后,这项工作中讨论的各种重要因素或参数提供了宝贵的见识,这些见解通常可不仅用于开发其他基于碳纳米结构的MRI造影剂,而且还可用于任何基于富勒烯的生物医学应用。

著录项

  • 作者

    Sitharaman, Balaji.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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