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Smooth quantile normalization.平滑分位数归一化
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Increased brain expression of GPNMB is associated with genome wide significant risk for Parkinson's disease on chromosome 7p15.3.GPNMB在大脑中的表达增加与7号染色体p15.3区域帕金森病的全基因组显著风险相关。
Neurogenetics. 2017 Jul;18(3):121-133. doi: 10.1007/s10048-017-0514-8. Epub 2017 Apr 8.
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Salmon provides fast and bias-aware quantification of transcript expression.鲑鱼提供快速且无偏倚的转录本表达定量。
Nat Methods. 2017 Apr;14(4):417-419. doi: 10.1038/nmeth.4197. Epub 2017 Mar 6.
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Comprehensive Rare Variant Analysis via Whole-Genome Sequencing to Determine the Molecular Pathology of Inherited Retinal Disease.通过全基因组测序进行综合罕见变异分析以确定遗传性视网膜疾病的分子病理学
Am J Hum Genet. 2017 Jan 5;100(1):75-90. doi: 10.1016/j.ajhg.2016.12.003. Epub 2016 Dec 29.
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The Human Phenotype Ontology in 2017.2017年的人类表型本体论。
Nucleic Acids Res. 2017 Jan 4;45(D1):D865-D876. doi: 10.1093/nar/gkw1039. Epub 2016 Nov 28.
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Enriched retinal ganglion cells derived from human embryonic stem cells.人胚胎干细胞来源的富集视网膜神经节细胞。
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Deletion of DXZ4 on the human inactive X chromosome alters higher-order genome architecture.人类失活X染色体上DXZ4的缺失会改变高阶基因组结构。
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An atlas of gene expression and gene co-regulation in the human retina.人类视网膜中的基因表达与基因共调控图谱。
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Fast and accurate single-cell RNA-seq analysis by clustering of transcript-compatibility counts.通过转录本兼容性计数聚类实现快速准确的单细胞RNA测序分析
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Genome-wide association study identifies 74 loci associated with educational attainment.全基因组关联研究确定了74个与受教育程度相关的基因座。
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通过精确的系统水平基因表达分析和加权相关网络,鉴定区分人眼组织的核心生物学过程。

Identifying core biological processes distinguishing human eye tissues with precise systems-level gene expression analyses and weighted correlation networks.

机构信息

Ophthalmic Genetics and Visual Function Branch, National Eye Institute, National Institutes of Health, Bethesda, MD, USA.

出版信息

Hum Mol Genet. 2018 Oct 1;27(19):3325-3339. doi: 10.1093/hmg/ddy239.

DOI:10.1093/hmg/ddy239
PMID:30239781
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6140774/
Abstract

The human eye is built from several specialized tissues which direct, capture and pre-process information to provide vision. The gene expression of the different eye tissues has been extensively profiled with RNA-seq across numerous studies. Large consortium projects have also used RNA-seq to study gene expression patterning across many different human tissues, minus the eye. There has not been an integrated study of expression patterns from multiple eye tissues compared with other human body tissues. We have collated all publicly available healthy human eye RNA-seq datasets as well as dozens of other tissues. We use this fully integrated dataset to probe the biological processes and pan expression relationships between the cornea, retina, retinal pigment epithelium (RPE)-choroid complex, and the rest of the human tissues with differential expression, clustering and gene ontology term enrichment tools. We also leverage our large collection of retina and RPE-choroid tissues to build the first human weighted gene correlation networks and use them to highlight known biological pathways and eye gene disease enrichment. We also have integrated publicly available single-cell RNA-seq data from mouse retina into our framework for validation and discovery. Finally, we make all these data, analyses and visualizations available via a powerful interactive web application (https://eyeintegration.nei.nih.gov/).

摘要

人类眼睛由几种专门的组织构成,这些组织负责引导、捕捉和预处理信息,以提供视觉。不同眼部组织的基因表达已经在许多研究中通过 RNA-seq 进行了广泛的分析。大型联盟项目也使用 RNA-seq 研究了许多不同人类组织(不包括眼睛)的基因表达模式。目前还没有将多种眼部组织的表达模式与其他人体组织进行综合比较的研究。我们已经整理了所有公开的健康人类眼部 RNA-seq 数据集以及数十种其他组织的数据。我们使用这个完全集成的数据集,通过差异表达、聚类和基因本体论术语富集工具,探究角膜、视网膜、视网膜色素上皮(RPE)-脉络膜复合物与其他人体组织之间的生物学过程和泛表达关系。我们还利用我们大量的视网膜和 RPE-脉络膜组织来构建第一个人类加权基因相关网络,并利用它们来突出已知的生物学途径和眼部基因疾病富集。我们还将来自小鼠视网膜的公开可用的单细胞 RNA-seq 数据整合到我们的框架中进行验证和发现。最后,我们通过一个功能强大的交互式网络应用程序(https://eyeintegration.nei.nih.gov/)提供所有这些数据、分析和可视化。