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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自闭症谱系障碍的影响

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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:将遗传性DNA序列转录成Messenger RNA拷贝是最重要的过程,通过该过程来引导发展。编码序列信息,遗传的表观遗传标记和环境影响全部收敛于mRNA基因表达水平,以允许细胞型特异性,组织特异性,空间和表达的空间模式。因此,转录物组表示遗传基因组结构,动态实验性要求和外部信号之间的复杂相互作用。该属性使转录组研究独特地定位,以提供对诸如人脑发育等复杂遗传学脑遗传 - 环境过程的洞察力,以及诸如自闭症谱系统的非孟德利遗传学病因的疾病。在本次综述中,我们描述了最近的研究在神经发育过程中探索了人脑的独特功能基因组特征。然后,我们突出了两个新兴的研究领域,潜力可以提高我们对功能性神经源组学的理解 - 非编码RNA表达和基因相互作用网络。最后,我们在这种情况下审查了先前的职能基因组学研究了自闭症谱系障碍,并讨论了功能基因组学水平的研究如何开始鉴定这种基因异质疾病的收敛分子机制。

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