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首页> 外文期刊>The Journal of Nuclear Medicine >Imaging of striatal dopamine D(2) receptors with a PET system for small laboratory animals in comparison with storage phosphor autoradiography: a validation study with (18)F-(N-methyl)benperidol.
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Imaging of striatal dopamine D(2) receptors with a PET system for small laboratory animals in comparison with storage phosphor autoradiography: a validation study with (18)F-(N-methyl)benperidol.

机译:与存储磷光体放射照相相比,小型实验室动物的PET系统对纹状体多巴胺D(2)受体的成像:(18)F-(N-甲基)苯哌啶醇的验证研究。

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摘要

Several groups have developed high-resolution PET systems and shown the feasibility of in vivo studies on small laboratory animals. In this investigation, one of these systems was validated for the performance of receptor imaging studies. For this, the radiotracer concentrations obtained in the same animals with PET and with autoradiography were quantified, and the correspondence between both methods was assessed by means of correlation analysis. METHODS: Striatal radioactivity was measured in 10 Sprague-Dawley rats after injection of 60 +/- 10 MBq of the dopamine D(2) receptor ligand (18)F-(N-methyl)benperidol in 6 time frames of 6 min each. On completion of the scans, animals were killed, and their brains were removed and sectioned using a cryostat microtome. Coronal slices were subjected to storage phosphor autoradiography with BaFBr:Eu(2+)-coated imaging plates. Striatal radioactivity was quantified in both modalities using region-of-interest analysis and activity standards. RESULTS: After partial-volume correction, the median of striatal radioactivity concentration measured with PET was 0.40 MBq/cm(3) (25th percentile, 0.32; 75th percentile, 0.44). Radioactivity concentrations determined by means of storage phosphor autoradiography amounted to 0.42 MBq/cm(3) (25th percentile, 0.24; 75th percentile, 0.51). Correlation of striatal radioactivity values yielded a Pearson correlation coefficient of 0.818 (P = 0.002). Radioactivity accumulation in Harder's glands led to an overestimation of striatal activity concentrations by approximately 5%. The median of striatal radioactivity concentration after spillover correction decreased slightly to 0.38 MBq/cm(3) (25th percentile, 0.30; 75th percentile, 0.43). Correlation of striatal radioactivity values after spillover correction yielded a Pearson correlation coefficient of 0.824 (P = 0.002). CONCLUSION: The results show a significant positive correlation between radioactivity values obtained with PET and storage phosphor autoradiography used as the gold standard. Because we applied a selective dopamine D(2) receptor radioligand and because radioactivity concentrations could be reliably quantified in the target region, we may infer that in vivo receptor binding studies will be possible in small laboratory animals.
机译:几个小组已经开发出高分辨率的PET系统,并显示了对小型实验动物进行体内研究的可行性。在这项研究中,这些系统之一被验证用于受体成像研究。为此,对在同一只动物中使用PET和放射自显影获得的放射性示踪剂浓度进行定量,并通过相关分析评估两种方法之间的对应性。方法:在每6分钟的6个时间范围内注射60 +/- 10 MBq多巴胺D(2)受体配体(18)F-(N-甲基)苯哌啶醇后,在10只Sprague-Dawley大鼠中测量纹状体放射性。扫描完成后,将动物处死,并用低温恒温切片机将其大脑取出并切成薄片。使用BaFBr:Eu(2+)涂层成像板对冠状切片进行存储磷光体放射自显影。使用感兴趣区域分析和活动标准,以两种方式量化纹状体放射性。结果:经过部分体积校正后,用PET测量的纹状体放射性浓度的中位数为0.40 MBq / cm(3)(25%,0.32; 75%,0.44)。通过存储磷光体放射自显影确定的放射性浓度为0.42 MBq / cm(3)(25%,0.24; 75%,0.51)。纹状体放射性值的相关性产生的皮尔逊相关系数为0.818(P = 0.002)。哈德氏腺中的放射性积累导致纹状体活动浓度高估了大约5%。溢出校正后的纹状体放射性浓度中位数略降至0.38 MBq / cm(3)(第25个百分位数,0.30;第75个百分位数,0.43)。溢出校正后的纹状体放射性值的相关性产生的皮尔逊相关系数为0.824(P = 0.002)。结论:结果表明,PET获得的放射性值与用作金标准的存储磷光体放射自显影之间存在显着正相关。因为我们应用了选择性的多巴胺D(2)受体放射性配体,并且因为可以在目标区域可靠地定量放射性浓度,所以我们可以推断出在小型实验动物中可能进行体内受体结合研究。

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