New liposome-radionuclide-chelate combination for tumor targeting and rapid healthy tissue clearance

脂质体 体内 螯合作用 配体(生物化学) 放射性核素治疗 化学 放射性核素 核医学 脾脏 医学 药理学 生物物理学 生物化学 生物 内科学 受体 物理 生物技术 有机化学 量子力学
作者
Izumi O. Umeda,Yusuke Koike,Mayumi Ogata,Emi Kaneko,Shusei Hamamichi,Tomoya Uehara,Kunikazu Moribe,Yasushi Arano,Tadayuki Takahashi,Hirofumi Fujii
出处
期刊:Journal of Controlled Release [Elsevier BV]
卷期号:361: 847-855 被引量:8
标识
DOI:10.1016/j.jconrel.2023.07.060
摘要

Radionuclide imaging and therapy are promising methods for controlling systemic cancers; however, their clinical application has been limited by excessive radionuclide accumulation in healthy tissues. To minimize radionuclide accumulation in non-cancerous tissues while ensuring sufficient build up in tumors, we aimed to develop a method that controlled the in vivo dynamics of radionuclides post-administration. To this end, we describe a novel strategy that combines liposomes, a potent carrier system for drug delivery, with unique radionuclide-ligand complexes based on 111In-ethylenedicysteine. Conventional 111In-ligand-complexes-carrying liposomes delivered substantial amounts of radionuclides to tumors; however, they also accumulated in the liver and spleen. In contrast, 111In-ethylenedicysteine-carrying liposomes greatly reduced non-specific accumulation, while being retained selectively at high doses within tumors. Liposomes were rapidly broken down in the liver, releasing encapsulated 111In-ligand complexes. Among the chelates used, only 111In-ethylenedicysteine could escape from the liver and be excreted in the urine. Instead, most liposomes remained intact in tumors, retaining the radionuclide-ligand complexes within them. Therefore, high tumor accumulation was obtained regardless of the type of 111In-ligand complexes in the liposomes. In vivo single photon emission computed tomography/computed tomography imaging with 111In-ethylenedicysteine-carrying liposomes accurately revealed tumor-selective radionuclide retention with little background. Hence, our new strategy could greatly enhance tumor-to-healthy tissue ratios, improve diagnostic imaging, boost therapeutic efficacy, reduce toxicity to healthy tissues, and facilitate radionuclide imaging and therapy.
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