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一种用于静息态功能磁共振成像的定量数据驱动分析框架:关于成年年龄影响的研究

A Quantitative Data-Driven Analysis Framework for Resting-State Functional Magnetic Resonance Imaging: A Study of the Impact of Adult Age.

作者信息

Li Xia, Fischer Håkan, Manzouri Amirhossein, Månsson Kristoffer N T, Li Tie-Qiang

机构信息

Institute of Informatics Engineering, China Jiliang University, Hangzhou, China.

Department of Psychology, Stockholm University, Stockholm, Sweden.

出版信息

Front Neurosci. 2021 Oct 20;15:768418. doi: 10.3389/fnins.2021.768418. eCollection 2021.

Abstract

The objective of this study is to introduce a new quantitative data-driven analysis (QDA) framework for the analysis of resting-state fMRI (R-fMRI) and use it to investigate the effect of adult age on resting-state functional connectivity (RFC). Whole-brain R-fMRI measurements were conducted on a 3T clinical MRI scanner in 227 healthy adult volunteers ( = 227, aged 18-76 years old, male/female = 99/128). With the proposed QDA framework we derived two types of voxel-wise RFC metrics: the connectivity strength index and connectivity density index utilizing the convolutions of the cross-correlation histogram with different kernels. Furthermore, we assessed the negative and positive portions of these metrics separately. With the QDA framework we found age-related declines of RFC metrics in the superior and middle frontal gyri, posterior cingulate cortex (PCC), right insula and inferior parietal lobule of the default mode network (DMN), which resembles previously reported results using other types of RFC data processing methods. Importantly, our new findings complement previously undocumented results in the following aspects: (1) the PCC and right insula are anti-correlated and tend to manifest simultaneously declines of both the negative and positive connectivity strength with subjects' age; (2) separate assessment of the negative and positive RFC metrics provides enhanced sensitivity to the aging effect; and (3) the sensorimotor network depicts enhanced negative connectivity strength with the adult age. The proposed QDA framework can produce threshold-free and voxel-wise RFC metrics from R-fMRI data. The detected adult age effect is largely consistent with previously reported studies using different R-fMRI analysis approaches. Moreover, the separate assessment of the negative and positive contributions to the RFC metrics can enhance the RFC sensitivity and clarify some of the mixed results in the literature regarding to the DMN and sensorimotor network involvement in adult aging.

摘要

本研究的目的是引入一种新的定量数据驱动分析(QDA)框架,用于静息态功能磁共振成像(R-fMRI)分析,并使用该框架研究成年年龄对静息态功能连接(RFC)的影响。在一台3T临床MRI扫描仪上,对227名健康成年志愿者(n = 227,年龄18 - 76岁,男性/女性 = 99/128)进行了全脑R-fMRI测量。利用所提出的QDA框架,我们得出了两种体素水平的RFC指标:连接强度指数和连接密度指数,它们是通过互相关直方图与不同内核的卷积得到的。此外,我们分别评估了这些指标的负向和正向部分。通过QDA框架,我们发现默认模式网络(DMN)的额上回、额中回、后扣带回皮质(PCC)、右侧岛叶和顶下小叶的RFC指标随年龄下降,这与之前使用其他类型RFC数据处理方法报道的结果相似。重要的是,我们的新发现从以下几个方面补充了之前未记录的结果:(1)PCC和右侧岛叶呈反相关,并且随着受试者年龄增长,负向和正向连接强度往往同时下降;(2)对负向和正向RFC指标进行单独评估可提高对衰老效应的敏感性;(3)感觉运动网络显示随着成年年龄增长负向连接强度增强。所提出的QDA框架可以从R-fMRI数据中生成无阈值的体素水平RFC指标。检测到的成年年龄效应在很大程度上与之前使用不同R-fMRI分析方法报道的研究结果一致。此外,对RFC指标的负向和正向贡献进行单独评估可以提高RFC敏感性,并澄清文献中关于DMN和感觉运动网络参与成年衰老的一些混合结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b190/8565286/c7f69d8e1001/fnins-15-768418-g001.jpg

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