Chen Lei, Gao Yun, Ge Jianxian, Zhou Yi, Yang Zhe, Li Cang, Huang Baoxing, Lu Kuan, Kou Dandan, Zhou Dandan, Chen Can, Wang Sixia, Wu Shuwang, Zeng Jianfeng, Huang Gang, Gao Mingyuan
Center for Molecular Imaging and Nuclear Medicine, State Key Laboratory of Radiation Medicine and Protection, School for Radiological and Interdisciplinary Sciences (RAD-X), Soochow University, Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions, Suzhou 215123, China.
Shanghai Key Laboratory of Molecular Imaging, Shanghai University of Medicine and Health Sciences, Shanghai 201318, China.
Nanoscale. 2023 Feb 23;15(8):3991-3999. doi: 10.1039/d2nr05988f.
Magnetic resonance imaging (MRI)/nuclear medicine imaging (NMI) dual-modality imaging based on radiolabeled nanoparticles has been increasingly exploited for accurate diagnosis of tumor and cardiovascular diseases by virtue of high spatial resolution and high sensitivity. However, significant challenges exist in pursuing truly clinical applications, including massive preparation and rapid radiolabeling of nanoparticles. Herein, we report a clinically translatable kit for the convenient construction of MRI/NMI nanoprobes relying on the flow-synthesis and anchoring group-mediated radiolabeling (LAGMERAL) of iron oxide nanoparticles. First, homogeneous iron oxide nanoparticles with excellent performance were successfully obtained on a large scale by flow synthesis, followed by the surface anchoring of diphosphonate-polyethylene glycol (DP-PEG) to simultaneously render the underlying nanoparticles biocompatible and competent in robust labeling of radioactive metal ions. Moreover, to enable convenient and safe usage in clinics, the DP-PEG modified nanoparticle solution was freeze-dried and sterilized to make a radiolabeling kit followed by careful evaluations of its and performance and applicability. The results showed that Tc labeled nanoprobes are effectively obtained with a labeling yield of over 95% in 30 minutes after simply injecting Na[TcO] solution into the kit. In addition, the FeO nanoparticles sealed in the kit can well stand long-term storage even for 300 days without deteriorating the colloidal stability and radiolabeling yield. Upon intravenous injection of the as-prepared radiolabeled nanoprobes, high-resolution vascular images of mice were obtained by vascular SPECT imaging and magnetic resonance angiography, demonstrating the promising clinical translational value of our radiolabeling kit.
基于放射性标记纳米颗粒的磁共振成像(MRI)/核医学成像(NMI)双模态成像,凭借其高空间分辨率和高灵敏度,在肿瘤和心血管疾病的准确诊断中得到了越来越广泛的应用。然而,在追求真正的临床应用方面仍存在重大挑战,包括纳米颗粒的大规模制备和快速放射性标记。在此,我们报告了一种临床可转化试剂盒,用于方便地构建MRI/NMI纳米探针,该试剂盒依赖于氧化铁纳米颗粒的流动合成和锚定基团介导的放射性标记(LAGMERAL)。首先,通过流动合成成功大规模获得了性能优异的均匀氧化铁纳米颗粒,随后进行二膦酸盐 - 聚乙二醇(DP - PEG)的表面锚定,以使底层纳米颗粒同时具有生物相容性并能够强力标记放射性金属离子。此外,为了在临床中实现方便安全的使用,将DP - PEG修饰的纳米颗粒溶液冻干并灭菌制成放射性标记试剂盒,随后对其性能和适用性进行了仔细评估。结果表明,在将Na[TcO]溶液简单注入试剂盒后30分钟内,可有效获得Tc标记的纳米探针,标记产率超过95%。此外,试剂盒中密封的FeO纳米颗粒即使储存300天也能很好地保持长期稳定性,且不会降低胶体稳定性和放射性标记产率。静脉注射制备好的放射性标记纳米探针后,通过血管SPECT成像和磁共振血管造影获得了小鼠的高分辨率血管图像,证明了我们的放射性标记试剂盒具有良好的临床转化价值。