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Investigation of In Vivo Targeting Kinetics of αvβ3-Specific Superparamagnetic Nanoprobes by Time-Resolved MRI

机译:时间分辨核磁共振成像研究αvβ3特异性超顺磁性纳米探针的体内靶向动力学

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摘要

Nanoparticulate imaging probes have become an increasingly important arsenal in the visualization of molecular markers for early diagnosis and post-therapy assessment of diseases. Surface functionalization of these nanoparticles has led to the development of a variety of targeted nanoprobes for various imaging modalities (e.g. PET, MRI, optical). Despite these advances, detailed understanding of the nanoparticle targeting kinetics, particularly at the early time points immediately after injection, is still lacking. In this study, we report the combination of a T2*-weighted time-resolved-MRI (TR-MRI) method with ultra-sensitive superparamagnetic polymeric micelle (SPPM) nanoprobes to quantify the targeting kinetics of cyclic (RGDfK) (cRGD)-encoded SPPM to angiogenic endothelium in subcutaneous human tumor xenograft models in mice. TR-MRI analyses of the αvβ3-targeted and non-targeted SPPMs allowed for the subtraction of blood volume and extravascular signal components from the cRGD-SPPM data, resulting in a specific measurement of the accumulation kinetics of nanoprobes in lung, breast and brain cancer preclinical models. In all three models, αvβ3-specific accumulation of SPPM nanoprobes was observed in the first 5 mins after intravenous injection (first order rate constants were in the range of 0.22-0.24 min-1). Similar αvβ3-targeting kinetics was observed for cRGD-SPPM nanoprobes in different tumor xenograft models, consistent with the targeting of mouse angiogenic endothelium despite tumor inoculation from different human cancer cell lines. Results from this study offer new opportunities in the quantitative characterization of the targeting kinetics of cancer-specific nanoparticles to their intended biological targets in an intact animal, which provides fundamental insights on molecular recognition processes in vivo for further development of these nanoprobes.
机译:在分子标记物的可视化中,用于疾病的早期诊断和治疗后评估的纳米颗粒成像探针已成为越来越重要的武器库。这些纳米颗粒的表面功能化导致用于各种成像方式(例如PET,MRI,光学)的各种靶向纳米探针的发展。尽管取得了这些进展,但是仍然缺乏对纳米粒子靶向动力学的详细了解,尤其是在注射后的早期时间点。在这项研究中,我们报告了T2 *加权时间分辨MRI(TR-MRI)方法与超灵敏超顺磁性高分子胶束(SPPM)纳米探针的结合,以量化循环(RGDfK)(cRGD)的靶向动力学在小鼠皮下人类肿瘤异种移植模型中,编码SPPM到血管生成内皮。 TR-MRI分析针对αvβ3的和非目标的SPPM,可以从cRGD-SPPM数据中减去血容量和血管外信号成分,从而可以特异性测量纳米探针在肺癌,乳腺癌和脑癌中的蓄积动力学。临床前模型。在所有三个模型中,在静脉注射后的前5分钟内观察到SPPM纳米探针的αvβ3特异性积累(一级速率常数在0.22-0.24 min -1 范围内)。在不同的肿瘤异种移植模型中,对于cRGD-SPPM纳米探针观察到了相似的αvβ3靶向动力学,尽管从不同的人类癌细胞系中接种了肿瘤,但与小鼠血管生成内皮的靶向一致。这项研究的结果为完整动物中癌症特异性纳米粒子对它们预期的生物学靶标的靶向动力学的定量表征提供了新的机会,这为进一步开发这些纳米探针的体内分子识别过程提供了基本的见识。

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