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Spatial patterns of genome-wide expression profiles reflect anatomic and fiber connectivity architecture of healthy human brain

机译:全基因组表达谱的空间模式反映了健康人脑的解剖结构和纤维连接结构

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Unraveling the relationship between molecular signatures in the brain and their functional, architectonic, and anatomic correlates is an important neuroscientific goal. It is still not well understood whether the diversity demonstrated by histological studies in the human brain is reflected in the spatial patterning of whole brain transcriptional profiles. Using genome-wide maps of transcriptional distribution of the human brain by the Allen Brain Institute, we test the hypothesis that gene expression profiles are specific to anatomically described brain regions. In this work, we demonstrate that this is indeed the case by showing that gene similarity clusters appear to respect conventional basal-cortical and caudal-rostral gradients. To fully investigate the causes of this observed spatial clustering, we test a connectionist hypothesis that states that the spatial patterning of gene expression in the brain is simply reflective of the fiber tract connectivity between brain regions. We find that although gene expression and structural connectivity are not determined by each other, they do influence each other with a high statistical significance. This implies that spatial diversity of gene expressions is a result of mainly location-specific features but is influenced by neuronal connectivity, such that like cellular species preferentially connects with like cells.
机译:揭示大脑中的分子标记与其功能,构造和解剖学相关性之间的关系是重要的神经科学目标。尚不清楚的是,人脑组织学研究显示的多样性是否反映在全脑转录谱的空间模式中。使用艾伦大脑研究所(Allen Brain Institute)的人类大脑转录分布的全基因组图谱,我们测试了基因表达谱对解剖学描述的大脑区域具有特异性的假设。在这项工作中,我们通过证明基因相似性簇似乎遵循传统的基底皮质和尾部-鼻端梯度来证明确实如此。为了全面研究这种观察到的空间聚集的原因,我们测试了一个连接主义的假设,该假设指出大脑中基因表达的空间模式仅反映了大脑区域之间的纤维束连通性。我们发现,尽管基因表达和结构连接性不是彼此决定的,但它们确实以高统计学意义相互影响。这意味着基因表达的空间多样性主要是特定于位置的特征的结果,但受神经元连通性的影响,因此类似细胞的物种优先与类似细胞的连接。

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