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通过炔烃-叠氮环加成反应在双肽功能化脂质体表面进行自动化氟-18放射性标记用于正电子发射断层显像(PET)成像。

Automated fluorine-18 radiolabeling via an alkyne-azide cycloaddition reaction on a dual peptide-functionalized liposome surface for PET imaging.

作者信息

Iannone Marco, Kravicz Marcelo, Rainone Paolo, Antoniou Antonia I, Stucchi Stefano, Valtorta Silvia, Amenta Arianna, Turolla Elia Anna, Pellegrino Sara, Passarella Daniele, Vino Elisa, Todde Sergio, Re Francesca, Seneci Pierfausto, Moresco Rosa Maria

机构信息

Tecnomed Foundation, University of Milano-Bicocca, Monza, Italy.

School of Medicine and Surgery, University of Milano-Bicocca, Monza, Italy.

出版信息

Front Pharmacol. 2025 Apr 28;16:1566257. doi: 10.3389/fphar.2025.1566257. eCollection 2025.

Abstract

INTRODUCTION

Labeled nanoparticles can be monitored in the body using positron emission tomography (PET) imaging, providing real-time insights into their pharmacokinetics and biodistribution. In the present work, liposomes are labeled with the radionuclide fluorine-18, exploiting a "surface radiolabeling" approach.

METHODS

Two alkyne-dioleoylphosphatidylethanolamine (DOPE) constructs are embedded within the bulk of the liposome bilayer, which is composed of cholesterol (Ch) and sphingomyelin (SM), and radiolabeling is performed via either a copper(I)-catalyzed cycloaddition "click" reaction (CuAAC) or a cyclooctyne-driven copper-free "click" reaction (CyOctC) modality, using a suitable fluorine-18 labeled azide, obtaining good results in terms of yield, purity, stability, and automation of the entire radiosynthesis process. In addition, radiolabeling is also performed on liposome formulations functionalized with 1) a peptide derived from the receptor-binding domain of apolipoprotein E (mApoE) and 2) a metalloproteinase (MMP)-sensitive lipopeptide (MSLP). The in vivo uptake of these liposomes is evaluated in an orthotopic glioma mouse model (Gli36ΔEGFR cell line) using PET/computed tomography (CT).

RESULTS AND DISCUSSION

The results demonstrate a higher tumor/background ratio, a faster clearance rate, and a lower uptake in healthy brain tissue and peripheral regions for mApoE- and MSLP-functionalized liposomes than for non-functionalized liposomes, prompting further characterization. On the contrary, radiolabeled liposome uptake is higher in the majority of peripheral organs for non-functionalized liposomes. Hence, fluorine-18-labeled liposomes can be reliably used for in vivo PET tracking of multifunctionalized nanoparticles, enabling effective investigation of their potential as drug delivery systems.

摘要

引言

使用正电子发射断层扫描(PET)成像可在体内监测标记的纳米颗粒,从而实时洞察其药代动力学和生物分布。在本研究中,利用“表面放射性标记”方法用放射性核素氟-18标记脂质体。

方法

两种炔基二油酰磷脂酰乙醇胺(DOPE)构建体嵌入由胆固醇(Ch)和鞘磷脂(SM)组成的脂质体双层主体中,使用合适的氟-18标记叠氮化物通过铜(I)催化的环加成“点击”反应(CuAAC)或环辛炔驱动的无铜“点击”反应(CyOctC)方式进行放射性标记,在整个放射性合成过程的产率、纯度、稳定性和自动化方面取得了良好结果。此外,还用1)源自载脂蛋白E受体结合域的肽(mApoE)和2)金属蛋白酶(MMP)敏感脂肽(MSLP)对脂质体制剂进行放射性标记。使用PET/计算机断层扫描(CT)在原位胶质瘤小鼠模型(Gli36ΔEGFR细胞系)中评估这些脂质体的体内摄取情况。

结果与讨论

结果表明,与未功能化的脂质体相比,mApoE和MSLP功能化的脂质体具有更高的肿瘤/背景比、更快的清除率以及在健康脑组织和外周区域的摄取更低,这促使进一步表征。相反,未功能化脂质体在大多数外周器官中的放射性标记脂质体摄取更高。因此,氟-18标记的脂质体可可靠地用于体内PET追踪多功能化纳米颗粒,从而有效研究其作为药物递送系统的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ae1/12066565/468c4bc7a8ac/fphar-16-1566257-g001.jpg

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