青少年认知和大脑结构发育相关的共甲基化网络。

IF 2.8 3区 生物学 Q2 GENETICS & HEREDITY Frontiers in Genetics Pub Date : 2025-01-07 eCollection Date: 2024-01-01 DOI:10.3389/fgene.2024.1451150
Dawn Jensen, Jiayu Chen, Jessica A Turner, Julia M Stephen, Yu-Ping Wang, Tony W Wilson, Vince D Calhoun, Jingyu Liu
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引用次数: 0

摘要

典型的青少年神经发育的特征是灰质(GM)体积减少,髓鞘形成增加(用分数各向异性(FA)测量),认知能力改善。方法:为了了解表观遗传变化,特别是甲基化(DNAm)在这一发育阶段可能涉及的情况,我们研究了认知评估、唾液中的DNAm以及来自9至14岁正常发育青少年的纵向队列的神经影像学数据。我们使用加权基因相关网络分析(WCGNA)提取了具有相关变化模式的甲基化网络。来自这些分析的模块,由共甲基化网络组成,然后与转基因、FA和认知测量一起用于多变量分析,以评估它们与青少年认知改善和大脑发育之间关系的本质。结果:这种共甲基化网络的纵向探索揭示了随着受试者进入青春期,相关表观遗传变化的增加。参与神经系统、钾通道、神经素和神经素通路的共甲基化网络在时间上都是保守的,并且与转基因、FA和认知的成熟模式有关。讨论:我们的研究表明,参与青少年大脑发育的神经元过程中基因DNAm的相关变化既随时间保守,又与典型的认知和大脑成熟有关,揭示了驱动这一发育阶段的可能的表观遗传机制。
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Co-methylation networks associated with cognition and structural brain development during adolescence.

Introduction: Typical adolescent neurodevelopment is marked by decreases in grey matter (GM) volume, increases in myelination, measured by fractional anisotropy (FA), and improvement in cognitive performance.

Methods: To understand how epigenetic changes, methylation (DNAm) in particular, may be involved during this phase of development, we studied cognitive assessments, DNAm from saliva, and neuroimaging data from a longitudinal cohort of normally developing adolescents, aged nine to fourteen. We extracted networks of methylation with patterns of correlated change using a weighted gene correlation network analysis (WCGNA). Modules from these analyses, consisting of co-methylation networks, were then used in multivariate analyses with GM, FA, and cognitive measures to assess the nature of their relationships with cognitive improvement and brain development in adolescence.

Results: This longitudinal exploration of co-methylated networks revealed an increase in correlated epigenetic changes as subjects progressed into adolescence. Co-methylation networks enriched for pathways involved in neuronal systems, potassium channels, neurexins and neuroligins were both conserved across time as well as associated with maturation patterns in GM, FA, and cognition.

Discussion: Our research shows that correlated changes in the DNAm of genes in neuronal processes involved in adolescent brain development that were both conserved across time and related to typical cognitive and brain maturation, revealing possible epigenetic mechanisms driving this stage of development.

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来源期刊
Frontiers in Genetics
Frontiers in Genetics Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
5.50
自引率
8.10%
发文量
3491
审稿时长
14 weeks
期刊介绍: Frontiers in Genetics publishes rigorously peer-reviewed research on genes and genomes relating to all the domains of life, from humans to plants to livestock and other model organisms. Led by an outstanding Editorial Board of the world’s leading experts, this multidisciplinary, open-access journal is at the forefront of communicating cutting-edge research to researchers, academics, clinicians, policy makers and the public. The study of inheritance and the impact of the genome on various biological processes is well documented. However, the majority of discoveries are still to come. A new era is seeing major developments in the function and variability of the genome, the use of genetic and genomic tools and the analysis of the genetic basis of various biological phenomena.
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