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微流控方法用于快速标记优化和按需剂量实施。

Microfluidic approach for fast labeling optimization and dose-on-demand implementation.

机构信息

Radiopharmacy Department, Institute of Clinical Physiology, Via Moruzzi 1, 56124 Pisa, Italy.

出版信息

Nucl Med Biol. 2010 Jul;37(5):547-55. doi: 10.1016/j.nucmedbio.2010.03.006. Epub 2010 Apr 24.

Abstract

INTRODUCTION

The diffusion of PET as a pivotal molecular imaging modality has emphasized the need for new positron-emitting radiotracers to be used in diagnostic applications and research. Microfluidic represents an innovative approach, owing to its potential to increase radiochemical productivity in terms of yields, time reduction, precursor consumption and flexible experimental planning.

METHODS

We focused on fluorine-18 labeling and used a microfluidic platform to perform sequential reactions, by using the same batch of (18)F-labeling solution on one or more substrates, during the same experimental session. A solid-phase extraction (SPE) workup procedure was also implemented in the system to provide a repeatable purification step.

RESULTS

We were able to quickly optimize the conditions for labeling of ethyl and propyl ditosylate and of a new cannabinoid type 2 (CB2) receptor agonist, CB41. In all substrates, we obtained good incorporation yields (60% to 85%) in short (<90 s) reaction times. Single dosages of the CB2 ligand were sequentially prepared, upon request, in satisfactory quantities and purity for small animal PET scanning.

CONCLUSION

This work demonstrates the usefulness of a microfluidic-based system for a rapid optimization of temperature, flow rate of reactants and their relative ratio in the labeling of different precursors by using the same (18)F-fluoride batch. This approach was used to obtain in sequence several injectable doses of a novel CB2 ligand, thus providing the proof of principle that microfluidic systems permit a dose-on-demand production of new radiotracers.

摘要

简介

正电子发射断层扫描(PET)的广泛应用凸显了开发新型正电子放射性示踪剂以满足诊断应用和研究需求的必要性。微流控技术具有提高放射性化学产率(包括收率、时间减少、前体消耗和灵活的实验规划)的潜力,因此成为一种创新方法。

方法

我们专注于氟-18 标记,并使用微流控平台通过在同一实验会话中对一个或多个基底使用同一批次(18)F 标记溶液来执行连续反应。该系统还实施了固相萃取(SPE)后处理程序,以提供可重复的纯化步骤。

结果

我们能够快速优化乙基和丙基二对甲苯磺酸酯以及新型大麻素 2 型(CB2)受体激动剂 CB41 的标记条件。在所有基底中,我们都在较短的反应时间(<90 秒)内获得了良好的结合收率(60%至 85%)。根据需要,以令人满意的数量和纯度顺序制备了 CB2 配体的单剂量,可用于小动物 PET 扫描。

结论

这项工作证明了基于微流控的系统在使用相同的(18)F-氟化物批次标记不同前体时,对温度、反应物流速及其相对比例进行快速优化的有用性。该方法用于顺序获得几种可注射剂量的新型 CB2 配体,从而为微流控系统能够按需生产新型放射性示踪剂提供了原理验证。

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