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磁纳米传感器与其目标之间的组装状态调节了它们的磁弛豫响应。

The assembly state between magnetic nanosensors and their targets orchestrates their magnetic relaxation response.

机构信息

Nanoscience Technology Center, University of Central Florida, 12424 Research Parkway, Suite 400, Orlando, Florida 32826, United States.

出版信息

J Am Chem Soc. 2011 Mar 16;133(10):3668-76. doi: 10.1021/ja1109584. Epub 2011 Feb 22.

Abstract

The target-induced clustering of magnetic nanoparticles is typically used for the identification of clinically relevant targets and events. A decrease in the water proton transverse NMR relaxation time, or T(2), is observed upon clustering, allowing the sensitive and accurate detection of target molecules. We have discovered a new mechanistically unique nanoparticle-target interaction resulting in a T(2) increase and demonstrate herein that this increase, and its associated r(2) relaxivity decrease, are also observed upon the interaction of the nanoparticles with ligands or molecular entities. Small molecules, proteins, and a 15-bp nucleic acid sequence were chemically conjugated to polyacrylic-acid-coated iron oxide nanoparticles, and all decreased the original nanoparticle r(2) value. Further experiments established that the r(2) decrease was inversely proportional to the number of ligands bound to the nanoparticle and the molecular weight of the bound ligand. Additional experiments revealed that the T(2)-increasing mechanism was kinetically faster than the conventional clustering mechanism. Most importantly, under conditions that result in T(2) increases, as little as 5.3 fmol of Bacillus anthracis plasmid DNA (pX01 and pX02), 8 pmol of the cholera toxin B subunit (Ctb), and even a few cancer cells in blood were detected. Transition from the binding to the clustering mechanism was observed in the carbohydrate-, Ctb-, and DNA-sensing systems, simply by increasing the target concentration significantly above the nanoparticle concentration, or using Ctb in its pentameric form as opposed to its monomer. Collectively, these results demonstrate that the molecular architectures resulting from the interaction between magnetic nanosensors and their targets directly govern water proton NMR relaxation. We attribute the observed T(2) increases to the bound target molecules partially obstructing the diffusion of solvent water molecules through the superparamagnetic iron oxide nanoparticles' outer relaxation spheres. Finally, we anticipate that this novel interaction can be incorporated into new clinical and field detection applications, due to its faster kinetics relative to the conventional nanoparticle-clustering assays.

摘要

磁性纳米粒子的靶向聚集通常用于鉴定临床相关的靶标和事件。在聚集时,观察到水质子横向 NMR 弛豫时间(T(2))的降低,从而能够灵敏且准确地检测靶分子。我们发现了一种新的、机制独特的纳米粒子-靶标相互作用,导致 T(2)增加,并且本文证明,这种增加及其相关的 r(2)弛豫率降低也会在纳米粒子与配体或分子实体相互作用时观察到。小分子、蛋白质和 15 个碱基对的核酸序列被化学连接到聚丙烯酸包覆的氧化铁纳米粒子上,所有这些都降低了原始纳米粒子的 r(2)值。进一步的实验确定,r(2)降低与结合到纳米粒子上的配体数量和结合配体的分子量成反比。进一步的实验表明,T(2)增加的机制比传统的聚集机制更快。最重要的是,在导致 T(2)增加的条件下,只需检测到 5.3 fmol 的炭疽杆菌质粒 DNA(pX01 和 pX02)、8 pmol 的霍乱毒素 B 亚基(Ctb),甚至血液中的几个癌细胞。在碳水化合物、Ctb 和 DNA 检测系统中,观察到从结合到聚集机制的转变,只需将靶标浓度显著高于纳米粒子浓度,或者使用五聚体形式的 Ctb 而不是单体形式。总的来说,这些结果表明,磁性纳米传感器与其靶标之间相互作用产生的分子结构直接控制水质子 NMR 弛豫。我们将观察到的 T(2)增加归因于结合的靶标分子部分阻碍了溶剂水分子通过超顺磁性氧化铁纳米粒子的外弛豫球的扩散。最后,我们预计由于其相对于传统的纳米粒子聚集测定法更快的动力学,这种新的相互作用可以被整合到新的临床和现场检测应用中。

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