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Statistical harmonization corrects site effects in functional connectivity measurements from multi-site fMRI data

机译:统计协调可从多部位fMRI数据纠正功能连接性测量中的部位影响

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摘要

Acquiring resting-state functional magnetic resonance imaging (fMRI) datasets at multiple MRI scanners and clinical sites can improve statistical power and generalizability of results. However, multi-site neuroimaging studies have reported considerable non-biological variability in fMRI measurements due to different scanner manufacturers and acquisition protocols. These undesirable sources of variability may limit power to detect effects of interest and may even result in erroneous findings. Until now, there has not been an approach that removes unwanted site effects. In this study, using a relatively large multi-site (4 sites) fMRI dataset, we investigated the impact of site effects on functional connectivity and network measures estimated by widely used connectivity metrics and brain parcellations. The protocols and image acquisition of the dataset used in this study had been homogenized using identical MRI phantom acquisitions from each of the neuroimaging sites, however inter-site acquisition effects were not completely eliminated. Indeed, in the current study we found that the magnitude of site effects depended on the choice of connectivity metric and brain atlas. Therefore, to further remove site effects, we applied ComBat, a harmonization technique previously shown to eliminate site effects in multi-site diffusion tensor imaging (DTI) and cortical thickness studies. In the current work, ComBat successfully removed site effects identified in connectivity and network measures and increased the power to detect age associations when using optimal combinations of connectivity metrics and brain atlases. Our proposed ComBat harmonization approach for fMRI-derived connectivity measures facilitates reliable and efficient analysis of retrospective and prospective multi-site fMRI neuroimaging studies.
机译:在多个MRI扫描仪和临床站点上获取静止状态功能磁共振成像(fMRI)数据集可以提高统计功效和结果的可概括性。然而,由于不同的扫描仪制造商和采集协议,多部位神经影像学研究报告了功能磁共振成像测量中相当大的非生物变异性。这些不希望的可变性来源可能会限制检测感兴趣效应的能力,甚至可能导致错误的发现。到目前为止,还没有一种方法可以消除不需要的站点效果。在这项研究中,我们使用相对较大的多站点(4个站点)fMRI数据集,研究了站点效应对功能连接性和网络度量的影响,这些影响是由广泛使用的连接性度量标准和大脑碎片估计的。本研究中使用的数据集的协议和图像采集已使用来自每个神经影像部位的相同MRI幻像采集进行了均质化,但是并未完全消除部位间采集的影响。确实,在当前的研究中,我们发现部位影响的大小取决于连接性度量标准和大脑图谱的选择。因此,为了进一步消除位点效应,我们应用了ComBat,这是一种先前显示的消除多位点扩散张量成像(DTI)和皮层厚度研究中的位点效应的协调技术。在当前的工作中,ComBat成功地消除了在连接性和网络措施中发现的站点影响,并在使用连接性指标和脑图集的最佳组合时提高了检测年龄关联的能力。我们针对功能性磁共振成像衍生的连通性措施提出的ComBat协调方法有助于对回顾性和前瞻性多部位功能性磁共振成像神经影像学研究进行可靠而有效的分析。

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