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Functional genomics of human brain development and implications for autism spectrum disorders

机译:人脑发育的功能基因组学及其对自闭症谱系障碍的影响

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摘要

Transcription of the inherited DNA sequence into copies of messenger RNA is the most fundamental process by which the genome functions to guide development. Encoded sequence information, inherited epigenetic marks and environmental influences all converge at the level of mRNA gene expression to allow for cell-type-specific, tissue-specific, spatial and temporal patterns of expression. Thus, the transcriptome represents a complex interplay between inherited genomic structure, dynamic experiential demands and external signals. This property makes transcriptome studies uniquely positioned to provide insight into complex genetic–epigenetic–environmental processes such as human brain development, and disorders with non-Mendelian genetic etiologies such as autism spectrum disorders. In this review, we describe recent studies exploring the unique functional genomics profile of the human brain during neurodevelopment. We then highlight two emerging areas of research with great potential to increase our understanding of functional neurogenomics—non-coding RNA expression and gene interaction networks. Finally, we review previous functional genomics studies of autism spectrum disorder in this context, and discuss how investigations at the level of functional genomics are beginning to identify convergent molecular mechanisms underlying this genetically heterogeneous disorder.
机译:将遗传的DNA序列转录成信使RNA的副本是基因组用于指导发育的最基本过程。编码的序列信息,遗传的表观遗传标记和环境影响都在mRNA基因表达的水平上收敛,从而可以表达特定细胞类型,特定组织,时空的模式。因此,转录组代表遗传基因组结构,动态体验需求和外部信号之间的复杂相互作用。这种特性使转录组研究具有独特的地位,可以洞悉复杂的遗传-表观遗传-环境过程,例如人脑发育,以及具有非孟德尔遗传病因的疾病,例如自闭症谱系障碍。在这篇综述中,我们描述了最近的研究,这些研究探索了人类大脑在神经发育过程中独特的功能基因组学特征。然后,我们重点介绍了两个新兴的研究领域,这些领域具有极大的潜力,可以增进我们对功能神经基因组学的理解-非编码RNA表达和基因相互作用网络。最后,我们在此背景下回顾了自闭症谱系障碍的先前功能基因组学研究,并讨论了在功能基因组学水平上的研究如何开始确定这种遗传异质性疾病的聚合分子机制。

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