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放射性标记纳米粒子的方法:SPECT 应用(第 1 部分)。

Methods for Radiolabelling Nanoparticles: SPECT Use (Part 1).

机构信息

Nuclear Medicine Unit, Department of Medical-Surgical Sciences and of Translational Medicine, Faculty of Medicine and Psychology, "Sapienza" University of Rome, 00189 Roma, Italy.

Department of Clinical and Molecular Medicine, Faculty of Medicine and Psychology, "Sapienza" University of Rome, 00189 Roma, Italy.

出版信息

Biomolecules. 2022 Oct 20;12(10):1522. doi: 10.3390/biom12101522.


DOI:10.3390/biom12101522
PMID:36291729
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9599158/
Abstract

The use of nanoparticles (NPs) is rapidly increasing in nuclear medicine (NM) for diagnostic and therapeutic purposes. Their wide use is due to their chemical-physical characteristics and possibility to deliver several molecules. NPs can be synthetised by organic and/or inorganic materials and they can have different size, shape, chemical composition, and charge. These factors influence their biodistribution, clearance, and targeting ability in vivo. NPs can be designed to encapsulate inside the core or bind to the surface several molecules, including radionuclides, for different clinical applications. Either diagnostic or therapeutic radioactive NPs can be synthetised, making a so-called theragnostic tool. To date, there are several methods for radiolabelling NPs that vary depending on both the physical and chemical properties of the NPs and on the isotope used. In this review, we analysed and compared different methods for radiolabelling NPs for single-photon emission computed tomography (SPECT) use.

摘要

纳米颗粒(NPs)在核医学(NM)中的应用正迅速增加,用于诊断和治疗目的。它们的广泛使用归因于其化学物理特性和能够传递多种分子的能力。 NPs 可以由有机和/或无机材料合成,并且可以具有不同的大小、形状、化学组成和电荷。这些因素影响它们在体内的分布、清除和靶向能力。 NPs 可以设计为将几种分子(包括放射性核素)封装在核心内部或结合到表面,以用于不同的临床应用。可以合成诊断或治疗放射性 NPs,形成所谓的治疗诊断工具。迄今为止,有几种放射性标记 NPs 的方法,这些方法因 NPs 的物理和化学性质以及所用同位素的不同而有所不同。在这篇综述中,我们分析和比较了用于单光子发射计算机断层扫描(SPECT)的不同 NPs 放射性标记方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8492/9599158/a8768d9cd74e/biomolecules-12-01522-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8492/9599158/a8768d9cd74e/biomolecules-12-01522-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8492/9599158/a8768d9cd74e/biomolecules-12-01522-g001.jpg

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本文引用的文献

[1]
Polymeric nanoparticles and nanomicelles of hydroxychloroquine co-loaded with azithromycin potentiate anti-SARS-CoV-2 effect.

J Nanostructure Chem. 2023

[2]
Anchoring Group-Mediated Radiolabeling of Inorganic Nanoparticles─A Universal Method for Constructing Nuclear Medicine Imaging Nanoprobes.

ACS Appl Mater Interfaces. 2022-2-23

[3]
Microfluidic Methods for Fabrication and Engineering of Nanoparticle Drug Delivery Systems.

ACS Appl Bio Mater. 2020-1-21

[4]
Biodistribution of Mesoporous Carbon Nanoparticles via Technetium-99m Radiolabelling after Oral Administration to Mice.

Nanomaterials (Basel). 2021-11-30

[5]
Recent Progress in Technetium-99m-Labeled Nanoparticles for Molecular Imaging and Cancer Therapy.

Nanomaterials (Basel). 2021-11-10

[6]
Synthesis and Biodistribution of Tc-Labeled PLGA Nanoparticles by Microfluidic Technique.

Pharmaceutics. 2021-10-22

[7]
Anchoring Group Mediated Radiolabeling for Achieving Robust Nanoimaging Probes.

Small. 2021-12

[8]
Green tea essential oil encapsulated chitosan nanoparticles-based radiopharmaceutical as a new trend for solid tumor theranosis.

Int J Biol Macromol. 2021-9-1

[9]
Radiolabelling of nanomaterials for medical imaging and therapy.

Chem Soc Rev. 2021-3-7

[10]
Microwave assisted synthesis of FeO stabilized ZrO nanoparticles - Free radical scavenging, radiolabeling and biodistribution in rabbits.

Life Sci. 2021-4-15

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