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组块设计研究中针对异质性血氧水平依赖(BOLD)反应的功能磁共振成像(fMRI)分析方法比较

Comparison of fMRI analysis methods for heterogeneous BOLD responses in block design studies.

作者信息

Liu Jia, Duffy Ben A, Bernal-Casas David, Fang Zhongnan, Lee Jin Hyung

机构信息

Department of Neurology & Neurological Sciences, Stanford University, Stanford, CA 94305, USA.

Department of Electrical Engineering, Stanford University, Stanford, CA 94305.

出版信息

Neuroimage. 2017 Feb 15;147:390-408. doi: 10.1016/j.neuroimage.2016.12.045. Epub 2016 Dec 16.

Abstract

A large number of fMRI studies have shown that the temporal dynamics of evoked BOLD responses can be highly heterogeneous. Failing to model heterogeneous responses in statistical analysis can lead to significant errors in signal detection and characterization and alter the neurobiological interpretation. However, to date it is not clear that, out of a large number of options, which methods are robust against variability in the temporal dynamics of BOLD responses in block-design studies. Here, we used rodent optogenetic fMRI data with heterogeneous BOLD responses and simulations guided by experimental data as a means to investigate different analysis methods' performance against heterogeneous BOLD responses. Evaluations are carried out within the general linear model (GLM) framework and consist of standard basis sets as well as independent component analysis (ICA). Analyses show that, in the presence of heterogeneous BOLD responses, conventionally used GLM with a canonical basis set leads to considerable errors in the detection and characterization of BOLD responses. Our results suggest that the 3rd and 4th order gamma basis sets, the 7th to 9th order finite impulse response (FIR) basis sets, the 5th to 9th order B-spline basis sets, and the 2nd to 5th order Fourier basis sets are optimal for good balance between detection and characterization, while the 1st order Fourier basis set (coherence analysis) used in our earlier studies show good detection capability. ICA has mostly good detection and characterization capabilities, but detects a large volume of spurious activation with the control fMRI data.

摘要

大量功能磁共振成像(fMRI)研究表明,诱发的血氧水平依赖(BOLD)反应的时间动态可能具有高度异质性。在统计分析中未能对异质性反应进行建模,可能会导致信号检测和特征描述出现重大误差,并改变神经生物学解释。然而,迄今为止尚不清楚,在众多选项中,哪些方法在组块设计研究中对BOLD反应时间动态的变异性具有鲁棒性。在此,我们使用具有异质性BOLD反应的啮齿动物光遗传学fMRI数据,并以实验数据为指导进行模拟,以此来研究不同分析方法针对异质性BOLD反应的性能。评估在一般线性模型(GLM)框架内进行,包括标准基集以及独立成分分析(ICA)。分析表明,在存在异质性BOLD反应的情况下,使用标准基集的传统GLM会在BOLD反应的检测和特征描述中导致相当大的误差。我们的结果表明,三阶和四阶伽马基集、七阶至九阶有限脉冲响应(FIR)基集、五阶至九阶B样条基集以及二阶至五阶傅里叶基集在检测和特征描述之间具有良好的平衡,是最优的,而我们早期研究中使用的一阶傅里叶基集(相干分析)显示出良好的检测能力。ICA大多具有良好的检测和特征描述能力,但在对照fMRI数据中检测到大量虚假激活。

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