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使用[123I]表阿普明单光子发射计算机断层扫描(SPET)进行散射校正对纹状体和纹状体外多巴胺D2受体的分区测量的影响

Effect of scatter correction on the compartmental measurement of striatal and extrastriatal dopamine D2 receptors using [123I]epidepride SPET.

作者信息

Fujita Masahiro, Varrone Andrea, Kim Kyeong Min, Watabe Hiroshi, Zoghbi Sami S, Seneca Nicholas, Tipre Dnyanesh, Seibyl John P, Innis Robert B, Iida Hidehiro

机构信息

Department of Psychiatry, Yale University School of Medicine and VA Connecticut Healthcare System, West Haven, CT, USA.

出版信息

Eur J Nucl Med Mol Imaging. 2004 May;31(5):644-54. doi: 10.1007/s00259-003-1431-7. Epub 2004 Jan 17.

DOI:10.1007/s00259-003-1431-7
PMID:14730406
Abstract

Prior studies with anthropomorphic phantoms and single, static in vivo brain images have demonstrated that scatter correction significantly improves the accuracy of regional quantitation of single-photon emission tomography (SPET) brain images. Since the regional distribution of activity changes following a bolus injection of a typical neuroreceptor ligand, we examined the effect of scatter correction on the compartmental modeling of serial dynamic images of striatal and extrastriatal dopamine D(2) receptors using [(123)I]epidepride. Eight healthy human subjects [age 30+/-8 (range 22-46) years] participated in a study with a bolus injection of 373+/-12 (354-389) MBq [(123)I]epidepride and data acquisition over a period of 14 h. A transmission scan was obtained in each study for attenuation and scatter correction. Distribution volumes were calculated by means of compartmental nonlinear least-squares analysis using metabolite-corrected arterial input function and brain data processed with scatter correction using narrow-beam geometry micro (SC) and without scatter correction using broad-beam micro (NoSC). Effects of SC were markedly different among brain regions. SC increased activities in the putamen and thalamus after 1-1.5 h while it decreased activity during the entire experiment in the temporal cortex and cerebellum. Compared with NoSC, SC significantly increased specific distribution volume in the putamen (58%, P=0.0001) and thalamus (23%, P=0.0297). Compared with NoSC, SC made regional distribution of the specific distribution volume closer to that of [(18)F]fallypride. It is concluded that SC is required for accurate quantification of distribution volumes of receptor ligands in SPET studies.

摘要

先前使用拟人化体模和单一静态活体脑图像的研究表明,散射校正可显著提高单光子发射断层扫描(SPET)脑图像区域定量的准确性。由于在静脉注射典型神经受体配体后活性的区域分布会发生变化,我们使用[(123)I]表丙胺研究了散射校正对纹状体和纹状体外多巴胺D(2)受体系列动态图像的房室模型的影响。八名健康人类受试者[年龄30±8(范围22 - 46)岁]参与了一项研究,静脉注射373±12(354 - 389)MBq[(123)I]表丙胺,并在14小时内进行数据采集。在每项研究中均获得透射扫描以进行衰减和散射校正。通过房室非线性最小二乘法分析计算分布容积,使用代谢物校正的动脉输入函数以及使用窄束几何微散射校正(SC)处理的脑数据和使用宽束微散射校正(NoSC)未进行散射校正的脑数据。散射校正的效果在不同脑区之间明显不同。散射校正在1 - 1.5小时后增加了壳核和丘脑的活性,而在整个实验过程中降低了颞叶皮质和小脑的活性。与NoSC相比,散射校正显著增加了壳核(58%,P = 0.0001)和丘脑(23%,P = 0.0297)的特定分布容积。与NoSC相比,散射校正使特定分布容积的区域分布更接近[(18)F]氟哌利多的分布。得出的结论是,在SPET研究中,准确量化受体配体的分布容积需要进行散射校正。

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本文引用的文献

1
Accelerated image reconstruction using ordered subsets of projection data.利用投影数据的有序子集进行加速图像重建。
IEEE Trans Med Imaging. 1994;13(4):601-9. doi: 10.1109/42.363108.
2
Quantitative accuracy of dopaminergic neurotransmission imaging with (123)I SPECT.用(123)I单光子发射计算机断层扫描进行多巴胺能神经传递成像的定量准确性
J Nucl Med. 2003 Jul;44(7):1184-93.
3
Contribution of scatter and attenuation compensation to SPECT images of nonuniformly distributed brain activities.散射和衰减补偿对非均匀分布脑活动的单光子发射计算机断层扫描(SPECT)图像的贡献。
Impact of the size of the normal database on the performance of the specific binding ratio in dopamine transporter SPECT.
正常数据库大小对多巴胺转运体单光子发射计算机断层扫描中特异性结合率性能的影响。
EJNMMI Phys. 2020 May 20;7(1):34. doi: 10.1186/s40658-020-00304-z.
4
Automatic classification of dopamine transporter SPECT: deep convolutional neural networks can be trained to be robust with respect to variable image characteristics.多巴胺转运体 SPECT 的自动分类:深度卷积神经网络可以通过训练对可变的图像特征具有鲁棒性。
Eur J Nucl Med Mol Imaging. 2019 Dec;46(13):2800-2811. doi: 10.1007/s00259-019-04502-5. Epub 2019 Aug 31.
5
Attenuation and scatter correction in I-123 FP-CIT SPECT do not affect the clinical diagnosis of dopaminergic system neurodegeneration.I-123 FP-CIT单光子发射计算机断层扫描中的衰减和散射校正不影响多巴胺能系统神经变性的临床诊断。
Medicine (Baltimore). 2017 Nov;96(45):e8484. doi: 10.1097/MD.0000000000008484.
6
Calibration of gamma camera systems for a multicentre European ¹²³I-FP-CIT SPECT normal database.用于多中心欧洲 ¹²³I-FP-CIT SPECT 正常数据库的伽马相机系统校准。
Eur J Nucl Med Mol Imaging. 2011 Aug;38(8):1529-40. doi: 10.1007/s00259-011-1801-5. Epub 2011 Apr 6.
7
Experimental determination of the weighting factor for the energy window subtraction-based downscatter correction for I-123 in brain SPECT studies.脑SPECT研究中基于能量窗减法的I-123散射校正加权因子的实验测定
J Med Phys. 2010 Oct;35(4):215-22. doi: 10.4103/0971-6203.71765.
8
Dopamine D2 receptor levels in striatum, thalamus, substantia nigra, limbic regions, and cortex in schizophrenic subjects.精神分裂症患者纹状体、丘脑、黑质、边缘系统区域及皮质中的多巴胺D2受体水平。
Biol Psychiatry. 2009 Jun 15;65(12):1024-31. doi: 10.1016/j.biopsych.2008.12.029. Epub 2009 Feb 28.
9
Measuring SSRI occupancy of SERT using the novel tracer [123I]ADAM: a SPECT validation study.使用新型示踪剂[123I]ADAM测量5-羟色胺再摄取抑制剂对5-羟色胺转运体的占有率:一项单光子发射计算机断层扫描验证研究。
Eur J Nucl Med Mol Imaging. 2005 Nov;32(11):1329-36. doi: 10.1007/s00259-005-1912-y. Epub 2005 Aug 26.
J Nucl Med. 2003 Apr;44(4):512-9.
4
Brain uptake of the acid metabolites of F-18-labeled WAY 100635 analogs.
J Cereb Blood Flow Metab. 2003 Feb;23(2):249-60. doi: 10.1097/01.WCB.0000046145.31247.7A.
5
Optimizing limbic selective D2/D3 receptor occupancy by risperidone: a [123I]-epidepride SPET study.通过利培酮优化边缘系统选择性 D2/D3 受体占有率:一项[123I]-表哌立登单光子发射计算机断层扫描研究。
J Clin Psychopharmacol. 2003 Feb;23(1):5-14. doi: 10.1097/00004714-200302000-00002.
6
Strategies to improve neuroreceptor parameter estimation by linear regression analysis.通过线性回归分析改善神经受体参数估计的策略。
J Cereb Blood Flow Metab. 2002 Oct;22(10):1271-81. doi: 10.1097/01.WCB.0000038000.34930.4E.
7
Brain imaging of 18F-fallypride in normal volunteers: blood analysis, distribution, test-retest studies, and preliminary assessment of sensitivity to aging effects on dopamine D-2/D-3 receptors.正常志愿者的18F-氟哌利多脑成像:血液分析、分布、重测研究以及对多巴胺D2/D3受体衰老效应敏感性的初步评估。
Synapse. 2002 Dec 1;46(3):170-88. doi: 10.1002/syn.10128.
8
Improvement of brain perfusion SPET using iterative reconstruction with scatter and non-uniform attenuation correction.
Eur J Nucl Med. 2000 Sep;27(9):1380-6. doi: 10.1007/s002590000291.
9
Specific binding and laterality of human extrastriatal dopamine D2/D3 receptors in late onset type 1 alcoholic patients.
Neurosci Lett. 2000 Sep 29;292(1):57-9. doi: 10.1016/s0304-3940(00)01423-3.
10
Absolute quantitation of iodine-123 epidepride kinetics using single-photon emission tomography: comparison with carbon-11 epidepride and positron emission tomography.使用单光子发射断层扫描对碘-123 依匹必利动力学进行绝对定量:与碳-11 依匹必利及正电子发射断层扫描的比较。
Eur J Nucl Med. 1999 Dec;26(12):1580-8. doi: 10.1007/s002590050498.