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MicroRNA Expression Profiles of Human iPS Cells, Retinal Pigment Epithelium Derived From iPS, and Fetal Retinal Pigment Epithelium
Published on: June 24, 2014
Deciphering the transcriptional circuitry of microRNA genes expressed during human monocytic differentiation
Sebastian Schmeier1, Cameron R MacPherson, Magbubah Essack
1South African National Bioinformatics Institute, University of the Western Cape, Modderdam Road, Bellville, South Africa. sebastian.schmeier@kaust.edu.sa
Background:
Macrophages are immune cells involved in various biological processes including host defence, homeostasis, differentiation, and organogenesis. Disruption of macrophage biology has been linked to increased pathogen infection, inflammation and malignant diseases. Differential gene expression observed in monocytic differentiation is primarily regulated by interacting transcription factors (TFs). Current research suggests that microRNAs (miRNAs) degrade and repress translation of mRNA, but also may target genes involved in differentiation. We focus on getting insights into the transcriptional circuitry regulating miRNA genes expressed during monocytic differentiation.
Results:
We computationally analysed the transcriptional circuitry of miRNA genes during monocytic differentiation using in vitro time-course expression data for TFs and miRNAs. A set of TF-->miRNA associations was derived from predicted TF binding sites in promoter regions of miRNA genes. Time-lagged expression correlation analysis was utilised to evaluate the TF-->miRNA associations. Our analysis identified 12 TFs that potentially play a central role in regulating miRNAs throughout the differentiation process. Six of these 12 TFs (ATF2, E2F3, HOXA4, NFE2L1, SP3, and YY1) have not previously been described to be important for monocytic differentiation. The remaining six TFs are CEBPB, CREB1, ELK1, NFE2L2, RUNX1, and USF2. For several miRNAs (miR-21, miR-155, miR-424, and miR-17-92), we show how their inferred transcriptional regulation impacts monocytic differentiation.
Conclusions:
The study demonstrates that miRNAs and their transcriptional regulatory control are integral molecular mechanisms during differentiation. Furthermore, it is the first study to decipher on a large-scale, how miRNAs are controlled by TFs during human monocytic differentiation. Subsequently, we have identified 12 candidate key controllers of miRNAs during this differentiation process.
Insights
This study reveals key transcription factors (TFs) controlling microRNAs (miRNAs) during monocyte differentiation, identifying 12 crucial regulators, including six novel ones, to understand immune cell development.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- Macrophages are critical immune cells involved in host defense and homeostasis.
- Dysregulated macrophage biology is linked to infections, inflammation, and cancer.
- Transcription factors (TFs) and microRNAs (miRNAs) are key regulators of monocytic differentiation.
Purpose of the Study:
- To investigate the transcriptional circuitry regulating miRNA genes during monocytic differentiation.
- To identify key transcription factors controlling miRNA expression in this process.
Main Methods:
- Computational analysis of in vitro time-course expression data for TFs and miRNAs.
- Prediction of TF binding sites in miRNA gene promoter regions.
- Time-lagged expression correlation analysis to evaluate TF-miRNA associations.
Main Results:
- Identified 12 TFs potentially regulating miRNAs during monocytic differentiation.
- Discovered six novel TFs (ATF2, E2F3, HOXA4, NFE2L1, SP3, YY1) involved in this regulation.
- Demonstrated the impact of inferred TF regulation on specific miRNAs (e.g., miR-21, miR-155) during differentiation.
Conclusions:
- miRNAs and their TF-mediated transcriptional regulation are integral to differentiation.
- This study provides a large-scale deciphering of TF control over miRNAs in human monocytic differentiation.
- Identified 12 candidate key controllers of miRNAs during this critical immune cell process.
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