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Bisphosphonate-anchored PEGylation and radiolabeling of superparamagnetic iron oxide:long-circulating nanoparticles for in vivo multimodal (T1 MRI-SPECT) imaging

机译:双膦酸酯锚定的聚乙二醇化和超顺磁性氧化铁的放射性标记:用于体内多峰(T1 MRI-SPECT)成像的长循环纳米粒子

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摘要

The efficient delivery of nanomaterials to specific targets for in vivo biomedical imaging is hindered by rapid sequestration by the reticuloendothelial system (RES) and consequent short circulation times. To overcome these two problems, we have prepared a new stealth PEG polymer conjugate containing a terminal 1,1-bisphosphonate (BP) group for strong and stable binding to the surface of ultrasmall-superparamagnetic oxide nanomaterials (USPIOs). This polymer, PEG(5)-BP, can be used to exchange the hydrophobic surfactants commonly used in the synthesis of USPIOs very efficiently and at room temperature using a simple method in 1 h. The resulting nanoparticles, PEG(5)-BP-USPIOs are stable in water or saline for at least 7 months and display a near-zero ζ-potential at neutral pH. The longitudinal (r(1)) and transverse (r(2)) relaxivities were measured at a clinically relevant magnetic field (3 T), revealing a high r(1) of 9.5 mM(-1) s(-1) and low r(2)/r(1) ratio of 2.97, making these USPIOs attractive as T1-weighted MRI contrast agents at high magnetic fields. The strong T1-effect was demonstrated in vivo, revealing that PEG(5)-BP-USPIOs remain in the bloodstream and enhance its signal 6-fold, allowing the visualization of blood vessels and vascular organs with high spatial definition. Furthermore, the optimal relaxivity properties allow us to inject a dose 4 times lower than with other USPIOs. PEG(5)-BP-USPIOs can also be labeled using a radiolabeled-BP for visualization with single photon emission computed tomography (SPECT), and thus affording dual-modality contrast. The SPECT studies confirmed low RES uptake and long blood circulation times (t(1/2) = 2.97 h). These results demonstrate the potential of PEG(5)-BP-USPIOs for the development of targeted multimodal imaging agents for molecular imaging.
机译:网状内皮系统(RES)的快速隔离和随之而来的短循环时间阻碍了纳米材料向体内生物医学成像特定目标的有效传递。为了克服这两个问题,我们制备了一种新型的隐身PEG聚合物共轭物,其中包含一个末端1,1-双膦酸酯(BP)基团,用于牢固,稳定地结合至超小型超顺磁性氧化物纳米材料(USPIOs)的表面。这种聚合物PEG(5)-BP可用于在1小时内以一种简单的方法非常高效地在室温下交换USPIO合成中常用的疏水性表面活性剂。所得的纳米颗粒PEG(5)-BP-USPIOs在水或盐水中稳定至少7个月,并且在中性pH下显示接近零的ζ电位。纵向(r(1))和横向(r(2))弛豫度是在临床相关磁场(3 T)下测量的,揭示了9.5 mM(-1)s(-1)的高r(1)和r(2)/ r(1)之比低至2.97,使这些USPIO在高磁场下作为T1加权MRI造影剂具有吸引力。在体内证明了强大的T1效应,表明PEG(5)-BP-USPIOs保留在血流中并增强其信号6倍,从而使血管和血管器官的可视化具有很高的空间清晰度。此外,最佳的弛豫特性使我们可以注射比其他USPIO低4倍的剂量。 PEG(5)-BP-USPIOs也可以使用放射性标记的BP进行标记,以便通过单光子发射计算机断层扫描(SPECT)进行可视化,从而提供双峰对比。 SPECT研究证实低RES摄取和长血液循环时间(t(1/2)= 2.97 h)。这些结果证明了PEG(5)-BP-USPIOs潜在的发展分子成像的靶向多峰成像剂。

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