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一项探索精神分裂症中神经网络和遗传特征之间差异关联的先导性多元并行独立成分分析研究。

A pilot multivariate parallel ICA study to investigate differential linkage between neural networks and genetic profiles in schizophrenia.

机构信息

Olin Neuropsychiatry Research Center, Institute of Living, 200 Retreat Avenue, Hartford, CT 06106, USA.

出版信息

Neuroimage. 2010 Nov 15;53(3):1007-15. doi: 10.1016/j.neuroimage.2009.11.052. Epub 2009 Nov 26.

Abstract

Understanding genetic influences on both healthy and disordered brain function is a major focus in psychiatric neuroimaging. We utilized task-related imaging findings from an fMRI auditory oddball task known to be robustly associated with abnormal activation in schizophrenia, to investigate genomic factors derived from multiple single nucleotide polymorphisms (SNPs) from genes previously shown to be associated with schizophrenia. Our major aim was to investigate the relationship of these genomic factors to normal/abnormal brain functionality between controls and schizophrenia patients. We studied a Caucasian-only sample of 35 healthy controls and 31 schizophrenia patients. All subjects performed an auditory oddball task, which consists of detecting an infrequent sound within a series of frequent sounds. Each subject was characterized on 24 different SNP markers spanning multiple risk genes previously associated with schizophrenia. We used a recently developed technique named parallel independent component analysis (para-ICA) to analyze this multimodal data set (Liu et al., 2008). The method aims to identify simultaneously independent components of each modality (functional imaging, genetics) and the relationships between them. We detected three fMRI components significantly correlated with two distinct gene components. The fMRI components, along with their significant genetic profile (dominant SNP) correlations were as follows: (1) Inferior frontal-anterior/posterior cingulate-thalamus-caudate with SNPs from Brain derived neurotropic factor (BDNF) and dopamine transporter (DAT) [r=-0.51; p<0.0001], (2) superior/middle temporal gyrus-cingulate-premotor with SLC6A4_PR and SLC6A4_PR_AG (serotonin transporter promoter; 5HTTLPR) [r=0.27; p=0.03], and (3) default mode-fronto-temporal gyrus with Brain derived neurotropic factor and dopamine transporter (BDNF, DAT) [r=-0.25; p=0.04]. Functional components comprised task-relevant regions (including PFC, ACC, STG and MTG) frequently identified as abnormal in schizophrenia. Further, gene-fMRI combinations 1 (Z=1.75; p=0.03), 2 (Z=1.84; p=0.03) and 3 (Z=1.67; p=0.04) listed above showed significant differences between controls and patients, based on their correlated loading coefficients. We demonstrate a framework to identify interactions between "clusters" of brain function and of genetic information. Our results reveal the effect/influence of specific interactions, (perhaps epistastatic in nature), between schizophrenia risk genes on imaging endophenotypes representing attention/working memory and goal directed related brain function, thus establishing a useful methodology to probe multivariate genotype-phenotype relationships.

摘要

理解健康和紊乱的大脑功能的遗传影响是精神神经影像学的一个主要焦点。我们利用 fMRI 听觉异常任务的相关成像发现,该任务与精神分裂症中异常激活密切相关,来研究先前与精神分裂症相关的基因的多个单核苷酸多态性(SNP)的基因组因素。我们的主要目的是研究这些基因组因素与对照组和精神分裂症患者之间的正常/异常大脑功能之间的关系。我们研究了一个仅由 35 名健康对照者和 31 名精神分裂症患者组成的白种人样本。所有受试者都进行了听觉异常任务,该任务包括在一系列高频声音中检测到不常见的声音。每个受试者都具有 24 个不同的 SNP 标记,这些标记跨越了与精神分裂症相关的多个风险基因。我们使用了一种名为平行独立成分分析(para-ICA)的新技术来分析这个多模态数据集(Liu 等人,2008 年)。该方法旨在同时识别每个模态(功能成像、遗传学)的独立成分及其之间的关系。我们检测到三个与两个不同基因成分显著相关的 fMRI 成分。与显著的遗传特征(显性 SNP)相关的 fMRI 成分如下:(1)额叶-前/后扣带回-丘脑-尾状核与脑源性神经营养因子(BDNF)和多巴胺转运体(DAT)的 SNP 相关[r=-0.51;p<0.0001],(2)中颞叶-扣带回-运动前叶与 SLC6A4_PR 和 SLC6A4_PR_AG(血清素转运体启动子;5HTTLPR)相关[r=0.27;p=0.03],以及(3)默认模式-额颞叶与脑源性神经营养因子和多巴胺转运体(BDNF、DAT)相关[r=-0.25;p=0.04]。功能成分包括与精神分裂症中异常相关的任务相关区域(包括 PFC、ACC、STG 和 MTG)。此外,上述组合 1(Z=1.75;p=0.03)、组合 2(Z=1.84;p=0.03)和组合 3(Z=1.67;p=0.04)的基因-fMRI 显示出对照组和患者之间的显著差异,这是基于它们相关的加载系数。我们展示了一种识别大脑功能和遗传信息“簇”之间相互作用的框架。我们的结果揭示了精神分裂症风险基因之间特定相互作用(可能具有上位性)对代表注意力/工作记忆和目标导向相关大脑功能的成像表型的影响/影响,从而建立了一种有用的方法来探测多变量基因型-表型关系。

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