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Chelate-free metal ion binding and heat-induced radiolabeling of iron oxide nanoparticles

机译:氧化铁纳米粒子的无螯合金属离子结合和热诱导放射性标记

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A novel reaction for chelate-free, heat-induced metal ion binding and radiolabeling of ultra-small paramagnetic iron oxide nanoparticles (USPIOs) has been established. Radiochemical and non-radioactive labeling studies demonstrated that the reaction has a wide chemical scope and is applicable to p-, d- and f-block metal ions with varying ionic sizes and formal oxidation states from 2+ to 4+. Radiolabeling studies found that 89Zr–Feraheme (89Zr–FH or 89Zr–ferumoxytol) can be isolated in 93 ± 3% radiochemical yield (RCY) and >98% radiochemical purity using size-exclusion chromatography. 89Zr–FH was found to be thermodynamically and kinetically stable in vitro using a series of ligand challenge and plasma stability tests, and in vivo using PET/CT imaging and biodistribution studies in mice. Remarkably, ICP-MS and radiochemistry experiments showed that the same reaction conditions used to produce 89Zr–FH can be employed with different radionuclides to yield 64Cu–FH (66 ± 6% RCY) and 111In–FH (91 ± 2% RCY). Electron magnetic resonance studies support a mechanism of binding involving metal ion association with the surface of the magnetite crystal core. Collectively, these data suggest that chelate-free labeling methods can be employed to facilitate clinical translation of a new class of multimodality PET/MRI radiotracers derived from metal-based nanoparticles. Further, this discovery is likely to have broader implications in drug delivery, metal separation science, ecotoxicology of nanoparticles and beyond.
机译:建立了无螯合,热诱导的金属离子结合和超小顺磁性氧化铁纳米粒子(USPIOs)放射性标记的新型反应。放射化学和非放射性标记研究表明,该反应具有广泛的化学范围,适用于离子大小不同且形式氧化态从2+到4+的p-,d-和f-嵌段金属离子。放射性标记研究发现 89 Zr–Feraheme( 89 Zr–FH或 89 < / sup> Zr–ferumoxytol)可以使用尺寸排阻色谱法以93±3%的放射化学产率(RCY)和> 98%的放射化学纯度分离。通过一系列配体挑战和血浆稳定性测试, 89 Zr–FH在体外具有热力学和动力学稳定性,并且 PET / CT成像和小鼠体内生物分布研究的体内研究。值得注意的是,ICP-MS和放射化学实验表明,用于生产 89 Zr–FH的相同反应条件可用于不同的放射性核素,从而产生 64 Cu–FH(66±6%RCY)和 111 In–FH(91±2%RCY)。电子磁共振研究支持结合机制,该结合机制涉及金属离子与磁铁矿晶体核表面的缔合。总体而言,这些数据表明,可以采用无螯合物的标记方法来促进从金属基纳米颗粒衍生的新型新型多模态PET / MRI放射性示踪剂的临床翻译。此外,这一发现可能在药物输送,金属分离科学,纳米颗粒的生态毒理学及其他方面具有更广泛的意义。

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