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令人烦恼的干扰回归:静息态 fMRI 预处理中一种常见方法的光谱失拟会重新引入噪声并掩盖功能连接。

The nuisance of nuisance regression: spectral misspecification in a common approach to resting-state fMRI preprocessing reintroduces noise and obscures functional connectivity.

机构信息

Department of Psychiatry, University of Pittsburgh, USA.

出版信息

Neuroimage. 2013 Nov 15;82:208-25. doi: 10.1016/j.neuroimage.2013.05.116. Epub 2013 Jun 6.

Abstract

Recent resting-state functional connectivity fMRI (RS-fcMRI) research has demonstrated that head motion during fMRI acquisition systematically influences connectivity estimates despite bandpass filtering and nuisance regression, which are intended to reduce such nuisance variability. We provide evidence that the effects of head motion and other nuisance signals are poorly controlled when the fMRI time series are bandpass-filtered but the regressors are unfiltered, resulting in the inadvertent reintroduction of nuisance-related variation into frequencies previously suppressed by the bandpass filter, as well as suboptimal correction for noise signals in the frequencies of interest. This is important because many RS-fcMRI studies, including some focusing on motion-related artifacts, have applied this approach. In two cohorts of individuals (n=117 and 22) who completed resting-state fMRI scans, we found that the bandpass-regress approach consistently overestimated functional connectivity across the brain, typically on the order of r=.10-.35, relative to a simultaneous bandpass filtering and nuisance regression approach. Inflated correlations under the bandpass-regress approach were associated with head motion and cardiac artifacts. Furthermore, distance-related differences in the association of head motion and connectivity estimates were much weaker for the simultaneous filtering approach. We recommend that future RS-fcMRI studies ensure that the frequencies of nuisance regressors and fMRI data match prior to nuisance regression, and we advocate a simultaneous bandpass filtering and nuisance regression strategy that better controls nuisance-related variability.

摘要

最近的静息态功能磁共振成像(RS-fcMRI)研究表明,尽管带通滤波和去噪回归旨在减少这种干扰变异性,但 fMRI 采集过程中的头部运动仍然会系统地影响连接估计。我们提供的证据表明,当 fMRI 时间序列经过带通滤波但回归量未经过滤波时,头部运动和其他干扰信号的影响控制得很差,这导致了与干扰相关的变化被重新引入到带通滤波器之前抑制的频率中,并且对感兴趣频率中的噪声信号的校正也不理想。这很重要,因为许多 RS-fcMRI 研究,包括一些关注与运动相关的伪影的研究,都采用了这种方法。在两个完成静息态 fMRI 扫描的个体队列(n=117 和 22)中,我们发现与同时进行带通滤波和去噪回归的方法相比,带通-回归方法通常会高估整个大脑的功能连接,其幅度通常在 r=.10-.35 之间。带通-回归方法下的膨胀相关性与头部运动和心脏伪影有关。此外,对于同时滤波方法,头部运动和连接估计之间的相关性的距离相关差异要小得多。我们建议未来的 RS-fcMRI 研究确保在进行去噪回归之前,干扰回归量和 fMRI 数据的频率相匹配,并且我们提倡采用同时进行带通滤波和去噪回归的策略,以更好地控制与干扰相关的变异性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ba9/3759585/cbbdd2202a95/nihms-492938-f0001.jpg

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