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PMID: 27050105 Published · ppublish English Journal Article

Brain in situ hybridization maps as a source for reverse-engineering transcriptional regulatory networks: Alzheimer's disease insights.

Gene ·Vol. 586 ·No. 1 ·2016-07-15 ·页码 77-86

Acquaah-Mensah GK, Taylor RC

Abstract

Microarray data have been a valuable resource for identifying transcriptional regulatory relationships among genes. As an example, brain region-specific transcriptional regulatory events have the potential of providing etiological insights into Alzheimer Disease (AD). However, there is often a paucity of suitable brain-region specific expression data obtained via microarrays or other high throughput means. The Allen Brain Atlas in situ hybridization (ISH) data sets (Jones et al., 2009) represent a potentially valuable alternative source of high-throughput brain region-specific gene expression data for such purposes. In this study, Allen Brain Atlas mouse ISH data in the hippocampal fields were extracted, focusing on 508 genes relevant to neurodegeneration. Transcriptional regulatory networks were learned using three high-performing network inference algorithms. Only 17% of regulatory edges from a network reverse-engineered based on brain region-specific ISH data were also found in a network constructed upon gene expression correlations in mouse whole brain microarrays, thus showing the specificity of gene expression within brain sub-regions. Furthermore, the ISH data-based networks were used to identify instructive transcriptional regulatory relationships. Ncor2, Sp3 and Usf2 form a unique three-party regulatory motif, potentially affecting memory formation pathways. Nfe2l1, Egr1 and Usf2 emerge among regulators of genes involved in AD (e.g. Dhcr24, Aplp2, Tia1, Pdrx1, Vdac1, and Syn2). Further, Nfe2l1, Egr1 and Usf2 are sensitive to dietary factors and could be among links between dietary influences and genes in the AD etiology. Thus, this approach of harnessing brain region-specific ISH data represents a rare opportunity for gleaning unique etiological insights for diseases such as AD.

Keywords
Alzheimer's disease Egr1 In situ hybridization Nfe2l1 Sp3 Transcriptional regulatory networks Usf2
MeSH 主题词
Alzheimer Disease/genetics Animals Female Gene Regulatory Networks Hippocampus/metabolism Humans In Situ Hybridization Male Mice Oligonucleotide Array Sequence Analysis Rats Transcription Factors/metabolism
化学物质
Transcription Factors
作者与单位
共 2 位作者,点击展开单位 / ORCID
Acquaah-Mensah George K
Department of Pharmaceutical Sciences, MCPHS University (Massachusetts College of Pharmacy and Health Sciences), Worcester, MA, USA. Electronic address: george.acquaah-mensah@mcphs.edu.
Taylor Ronald C
Computational Biology & Bioinformatics Group, Pacific Northwest National Laboratory (U.S. Department of Energy), Richland, WA, USA.
Article Info
Journal
Gene
Abbr.
Gene
ISSN
1879-0038
Published
2016-07-15
电子出版
2016-00-03
页码
77-86
Language
English
Country/Region
Netherlands
NLM ID
7706761
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