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放射性标记的多层包覆金纳米粒子作为潜在的生物相容的 PET/SPECT 示踪剂。

Radiolabeled multi-layered coated gold nanoparticles as potential biocompatible PET/SPECT tracers.

机构信息

Advanced Center for Research and Development in Experimental Medicine "Prof. Ostin C. Mungiu", "Grigore T. Popa" University of Medicine and Pharmacy, Iasi, Romania.

Centre of Advanced Research in Bionanoconjugates and Biopolymers, "Petru Poni" Institute of Macromolecular Chemistry, Iasi, Romania.

出版信息

J Mater Chem B. 2024 Apr 17;12(15):3659-3675. doi: 10.1039/d3tb02654j.

DOI:10.1039/d3tb02654j
PMID:38530751
Abstract

The demand for tailored, disease-adapted, and easily accessible radiopharmaceuticals is one of the most persistent challenges in nuclear imaging precision medicine. The aim of this work was to develop two multimodal radiotracers applicable for both SPECT and PET techniques, which consist of a gold nanoparticle core, a shell involved in radioisotope entrapment, peripherally placed targeting molecules, and biocompatibilizing polymeric sequences. Shell decoration with glucosamine units located in sterically hindered molecular environments is expected to result in nanoparticle accumulation in high-glucose-consuming areas. Gold cores were synthesized using the Turkevich method, followed by citrate substitution with linear PEG α,ω-functionalized with thiol and amine groups. The free amine groups facilitated the binding of branched polyethyleneimine through an epoxy ring-opening reaction by using PEG α,ω-diglycidyl ether as a linker. Afterwards, the glucose-PEG-epoxy prepolymer has been grafted onto the surface of AuPEG-PEI conjugates. Finally, the AuPEG-PEI-GA conjugates were radiolabeled with Tc or Ga. Instant thin-layer chromatography was used to evaluate the radiolabeling yield. The biocompatibility of non-labeled and Tc or Ga labeled nanoparticles was assessed on normal fibroblasts. The Tc complexes remained stable for over 22 hours, while the Ga containing ones revealed a slight decrease in stability after 1 hour.

摘要

定制、适应疾病且易于获取的放射性药物的需求是核医学精准医学中最持久的挑战之一。本工作的目的是开发两种适用于 SPECT 和 PET 技术的多模态放射性示踪剂,它们由金纳米颗粒核心、参与放射性核素捕获的壳、外围靶向分子和生物相容的聚合物序列组成。预期壳上带有位于空间位阻分子环境中的葡糖胺单元的修饰会导致纳米颗粒在高葡萄糖消耗区域积聚。金核采用 Turkevich 方法合成,然后用线性 PEGα、ω-巯基和胺基官能化的柠檬酸取代。游离的胺基通过使用 PEGα、ω-二缩水甘油醚作为连接物通过环氧开环反应促进支化聚乙烯亚胺的结合。然后,将葡萄糖-PEG-环氧预聚物接枝到 AuPEG-PEI 缀合物的表面。最后,用 Tc 或 Ga 标记 AuPEG-PEI-GA 缀合物。瞬时薄层层析用于评估放射性标记产率。在正常成纤维细胞上评估未标记和 Tc 或 Ga 标记纳米颗粒的生物相容性。Tc 配合物在超过 22 小时内保持稳定,而含有 Ga 的配合物在 1 小时后稳定性略有下降。

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