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自闭症谱系障碍中的非典型动态神经配置及其与基因表达谱的关系。

Atypical dynamic neural configuration in autism spectrum disorder and its relationship to gene expression profiles.

作者信息

Shan Xiaolong, Wang Peng, Yin Qing, Li Youyi, Wang Xiaotian, Feng Yu, Xiao Jinming, Li Lei, Huang Xinyue, Chen Huafu, Duan Xujun

机构信息

The Clinical Hospital of Chengdu Brain Science Institute, School of Life Science and Technology, University of Electronic Science and Technology of China, Chengdu, 611731, PR China.

High-Field Magnetic Resonance Brain Imaging Key Laboratory of Sichuan Province, MOE Key Lab for Neuro information, University of Electronic Science and Technology of China, Chengdu, 611731, PR China.

出版信息

Eur Child Adolesc Psychiatry. 2025 Jan;34(1):169-179. doi: 10.1007/s00787-024-02476-w. Epub 2024 Jun 11.

Abstract

Although it is well recognized that autism spectrum disorder (ASD) is associated with atypical dynamic functional connectivity patterns, the dynamic changes in brain intrinsic activity over each time point and the potential molecular mechanisms associated with atypical dynamic temporal characteristics in ASD remain unclear. Here, we employed the Hidden Markov Model (HMM) to explore the atypical neural configuration at every scanning time point in ASD, based on resting-state functional magnetic resonance imaging (rs-fMRI) data from the Autism Brain Imaging Data Exchange. Subsequently, partial least squares regression and pathway enrichment analysis were employed to explore the potential molecular mechanism associated with atypical neural dynamics in ASD. 8 HMM states were inferred from rs-fMRI data. Compared to typically developing, individuals on the autism spectrum showed atypical state-specific temporal characteristics, including number of states and occurrences, mean life time and transition probability between states. Moreover, these atypical temporal characteristics could predict communication difficulties of ASD, and states assoicated with negative activation in default mode network and frontoparietal network, and positive activation in somatomotor network, ventral attention network, and limbic network, had higher predictive contribution. Furthermore, a total of 321 genes was revealed to be significantly associated with atypical dynamic brain states of ASD, and these genes are mainly enriched in neurodevelopmental pathways. Our study provides new insights into characterizing the atypical neural dynamics from a moment-to-moment perspective, and indicates a linkage between atypical neural configuration and gene expression in ASD.

摘要

虽然人们已经充分认识到自闭症谱系障碍(ASD)与非典型动态功能连接模式有关,但在每个时间点大脑内在活动的动态变化以及与ASD中非典型动态时间特征相关的潜在分子机制仍不清楚。在此,我们基于来自自闭症大脑成像数据交换库的静息态功能磁共振成像(rs-fMRI)数据,采用隐马尔可夫模型(HMM)来探索ASD中每个扫描时间点的非典型神经配置。随后,采用偏最小二乘回归和通路富集分析来探索与ASD中非典型神经动力学相关的潜在分子机制。从rs-fMRI数据中推断出8种HMM状态。与正常发育个体相比,自闭症谱系个体表现出非典型的状态特异性时间特征,包括状态数量和出现次数、平均寿命以及状态之间的转换概率。此外,这些非典型时间特征可以预测ASD的沟通困难,并且与默认模式网络和额顶叶网络中的负激活以及躯体运动网络、腹侧注意网络和边缘网络中的正激活相关的状态具有更高的预测贡献。此外,共发现321个基因与ASD的非典型动态脑状态显著相关,这些基因主要富集在神经发育通路中。我们的研究从逐时刻的角度为表征非典型神经动力学提供了新的见解,并表明了ASD中非典型神经配置与基因表达之间的联系。

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