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一项基于数据的精神分裂症工作记忆任务中灰质-功能相关性研究。

A Data-Driven Investigation of Gray Matter-Function Correlations in Schizophrenia during a Working Memory Task.

机构信息

The Mind Research Network Albuquerque, NM, USA.

出版信息

Front Hum Neurosci. 2011 Aug 5;5:71. doi: 10.3389/fnhum.2011.00071. eCollection 2011.

Abstract

The brain is a vastly interconnected organ and methods are needed to investigate its long range structure(S)-function(F) associations to better understand disorders such as schizophrenia that are hypothesized to be due to distributed disconnected brain regions. In previous work we introduced a methodology to reduce the whole brain S-F correlations to a histogram and here we reduce the correlations to brain clusters. The application of our approach to sMRI [gray matter (GM) concentration maps] and functional magnetic resonance imaging data (general linear model activation maps during Encode and Probe epochs of a working memory task) from patients with schizophrenia (SZ, n = 100) and healthy controls (HC, n = 100) presented the following results. In HC the whole brain correlation histograms for GM-Encode and GM-Probe overlap for Low and Medium loads and at High the histograms separate, but in SZ the histograms do not overlap for any of the load levels and Medium load shows the maximum difference. We computed GM-F differential correlation clusters using activation for Probe Medium, and they included regions in the left and right superior temporal gyri, anterior cingulate, cuneus, middle temporal gyrus, and the cerebellum. Inter-cluster GM-Probe correlations for Medium load were positive in HC but negative in SZ. Within group inter-cluster GM-Encode and GM-Probe correlation comparisons show no differences in HC but in SZ differences are evident in the same clusters where HC vs. SZ differences occurred for Probe Medium, indicating that the S-F integrity during Probe is aberrant in SZ. Through a data-driven whole brain analysis approach we find novel brain clusters and show how the S-F differential correlation changes during Probe and Encode at three memory load levels. Structural and functional anomalies have been extensively reported in schizophrenia and here we provide evidences to suggest that evaluating S-F associations can provide important additional information.

摘要

大脑是一个广泛互联的器官,需要方法来研究其长程结构(S)-功能(F)关联,以更好地理解精神分裂症等疾病,这些疾病被假设是由于分布式去连接的脑区引起的。在之前的工作中,我们引入了一种将全脑 S-F 相关系数简化为直方图的方法,这里我们将相关系数简化为脑区。我们的方法应用于精神分裂症患者(SZ,n=100)和健康对照组(HC,n=100)的 sMRI [灰质(GM)浓度图]和功能磁共振成像数据(工作记忆任务期间 Encode 和 Probe 时期的一般线性模型激活图),结果如下。在 HC 中,GM-Encode 和 GM-Probe 的全脑相关直方图在低和中负荷下重叠,而在高负荷下分离,但在 SZ 中,任何负荷水平下的直方图都不重叠,中负荷显示出最大差异。我们使用 Probe Medium 的激活计算了 GM-F 差分相关聚类,它们包括左、右颞上回、前扣带回、楔前叶、颞中回和小脑的区域。HC 中 Medium 负荷的 GM-Probe 之间的簇间相关性为正,而 SZ 中为负。在组内的 GM-Encode 和 GM-Probe 之间的簇间相关性比较中,HC 没有差异,但 SZ 中在同一簇中存在差异,这表明 SZ 在 Probe 期间的 S-F 完整性异常。通过一种数据驱动的全脑分析方法,我们发现了新的脑区,并展示了 S-F 差分相关在三种记忆负荷水平下在 Probe 和 Encode 期间的变化。精神分裂症中广泛报道了结构和功能异常,这里我们提供了证据表明,评估 S-F 关联可以提供重要的附加信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b27/3153862/9ead1ef40644/fnhum-05-00071-g001.jpg

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