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提高生物样本中来源于 [18F]-标记嘧啶核苷类似物代谢的 [18F]氟化物的低水平检测和测量。

Improved detection and measurement of low levels of [18F]fluoride metabolized from [18F]-labeled pyrimidine nucleoside analogues in biological samples.

机构信息

Department of Experimental Diagnostic Imaging, The University of Texas M. D. Anderson Cancer Center, Houston, TX 77030, USA.

出版信息

Nucl Med Biol. 2011 Nov;38(8):1129-34. doi: 10.1016/j.nucmedbio.2011.05.008. Epub 2011 Jul 8.

Abstract

INTRODUCTION

It is important to identify all circulating metabolites, including free fluoride, for accurate pharmacokinetic modeling of [(18)F]-labeled radiotracers. We sought to determine the most efficient method to detect and quantify low levels of free [(18)F]fluoride in biological samples.

METHODS

Low levels of [(18)F]fluoride were analyzed using two methods: (A) an ion-exchange cartridge and gamma counting, and (B) radio-HPLC, to compare the detection limits of these two analytical methods. Twenty microliters of [(18)F]fluoride solution was loaded onto an ion-exchange cartridge, then eluted with 20% MeCN/water (5 ml) and radioactivity trapped in the cartridge counted on a gamma counter. [(18)F]Fluoride was also determined in plasma and urine from mice injected with [(18)F]-labeled thymidine analogues using Method A.

RESULTS

The detection sensitivity of Method A was 9.4-fold higher than that of Method B (0.075±0.004 vs. 0.71±0.02 nCi). With Method A, [(18)F]fluoride was determined in plasma for [(18)F]FLT, [(18)F]FMAU, [(18)F]FEAU and N(3)-[(18)F]FPrT as 1.4±0.31% (n=4), 0.17±0.49% (n=3), 4.88±1.62% (n=3) and 12.94±0.48% (n=4), respectively. The amount of [(18)F]fluoride determined in the urine was 11.49±1.60% (n=4) from [(18)F]FLT, 5.36±2.34% (n=3) from [(18)F]FMAU, 13.57±1.96% (n=3) from [(18)F]FEAU and 11.19±1.98% (n=4) from N(3)-[(18)F]FPrT.

CONCLUSION

Low levels of [(18)F]fluoride in biological samples can be detected and quantified using an ion-exchange cartridge and gamma counting. This methodology is simple, accurate and superior to the standard use of radio-HPLC on a C(18) column for metabolite analysis, and it should be useful in pharmacokinetic modeling for animal imaging studies using an [(18)F]-labeled radiotracer and PET.

摘要

简介

为了准确地对 [(18)F]-标记放射性示踪剂进行药代动力学建模,有必要鉴定所有循环代谢物,包括游离氟化物。我们旨在确定检测和定量生物样本中低水平游离 [(18)F]氟化物的最有效方法。

方法

使用两种方法分析低水平的 [(18)F]氟化物:(A)离子交换柱和伽马计数,和 (B)放射性 HPLC,比较这两种分析方法的检测限。将 20μl[(18)F]氟化物溶液加载到离子交换柱上,然后用 20% MeCN/水(5ml)洗脱,将放射性物质捕获在柱上并在伽马计数器上进行计数。使用方法 A 还测定了注射 [(18)F]-标记胸苷类似物的小鼠血浆和尿液中的 [(18)F]氟化物。

结果

方法 A 的检测灵敏度比方法 B 高 9.4 倍(0.075±0.004 比 0.71±0.02nCi)。使用方法 A,[(18)F]FLT、[(18)F]FMAU、[(18)F]FEAU 和 N(3)-[(18)F]FPrT 的血浆中 [(18)F]氟化物分别为 1.4±0.31%(n=4)、0.17±0.49%(n=3)、4.88±1.62%(n=3)和 12.94±0.48%(n=4)。[(18)F]FLT 尿液中 [(18)F]氟化物的量为 11.49±1.60%(n=4),[(18)F]FMAU 尿液中 [(18)F]氟化物的量为 5.36±2.34%(n=3),[(18)F]FEAU 尿液中 [(18)F]氟化物的量为 13.57±1.96%(n=3),N(3)-[(18)F]FPrT 尿液中 [(18)F]氟化物的量为 11.19±1.98%(n=4)。

结论

使用离子交换柱和伽马计数可以检测和定量生物样本中的低水平 [(18)F]氟化物。该方法简单、准确,优于标准使用 C(18)柱上的放射性 HPLC 进行代谢物分析,对于使用 [(18)F]-标记放射性示踪剂和 PET 进行动物成像研究的药代动力学建模应该是有用的。

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