| Literature DB >> 25369332 |
Heiko Fuchs1, Matthias Theuser2, Wasco Wruck1, James Adjaye3.
Abstract
Human embryonic stem cells and human embryonal carcinoma cells have been studied extensively with respect to the transcription factors (OCT4, SOX2 and NANOG), epigenetic modulators and associated signalling pathways that either promote self-renewal or induce differentiation in these cells. The ACTIVIN/NODAL axis (SMAD2/3) of the TGFß signalling pathway coupled with FGF signalling maintains self-renewal in these cells, whilst the BMP (SMAD1,5,8) axis promotes differentiation. Here we show that miR-27, a somatic-enriched miRNA, is activated upon RNAi-mediated suppression of OCT4 function in human embryonic stem cells. We further demonstrate that miR-27 negatively regulates the expression of the pluripotency-associated ACTIVIN/NODAL axis (SMAD2/3) of the TGFß signalling pathway by targeting ACVR2A, TGFßR1 and SMAD2. Additionally, we have identified a number of pluripotency-associated genes such as NANOG, LIN28, POLR3G and NR5A2 as novel miR-27 targets. Transcriptome analysis revealed that miR-27 over-expression in human embryonal carcinoma cells leads indeed to a significant up-regulation of genes involved in developmental pathways such as TGFß- and WNT-signalling.Entities:
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Year: 2014 PMID: 25369332 PMCID: PMC4219743 DOI: 10.1371/journal.pone.0111637
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1miR-27 directly inhibits a number of genes of the TGFß signalling pathway that promote self-renewal in undifferentiated embryonic stem cells.
(A) Table shows putative miR-27 target genes associated with TGFß-signalling as predicted by Diana Micro-T (DT), MiRanda (miRa), MirWalk (miRW) and TargetScan. (B) Normalized GFP expression (48 hours post transfection) of HEK293 cells co-transfected with EGFP-sensors bearing parts of the 3′-UTR of TGFßR1, ACVR2a, SMAD2 or the 3′-UTR of the empty eGFP-vector (lane 1)together with either miR-27 mimics or a scrambled negative control mimic (neg. con.). All transfections were performed twice in biological triplicates (n = 6). An unpaired two tailed t-test was performed to reveal significant differences (*p<0.05, ** p<0.01, *** p<0.001). (C) Schematic representation of the TGFß-signalling cascade adopted from the KEGGs pathway database (www.genome.jp/kegg/pathway.html).
Figure 2miR-27 directly inhibits a number of genes reported to sustain self-renewal in embryonic stem cells.
(A) Table showing three putative miR-27 target genes predicted by Diana Micro-T (DT), MiRanda (miRa), MirWalk (miRW) and TargetScan that maintain self-renewal. (B) Normalized GFP expression (48 hours post transfection) of HEK293 cells co-transfected with EGFP-sensors bearing parts of the 3′-UTR of LIN28B, NR5A2, POLR3G, NANOG, SOX2 or OCT4 together with either miR-27 mimics or a scrambled negative control mimic (neg. con.). All transfections were performed twice in biological triplicates (n = 6) and GFP expression measured by flow cytometry. An unpaired two tailed t-test was performed to reveal significant differences (** p<0.01). (C) Upper row: Schematic timeline of hESC (H1) undergoing hepatic differentiation. Total RNA was isolated at day zero (undifferentiated H1), three days after endoderm priming (DE) and 14 days after hepatocyte differentiation (HE). Lower row: miR-27 expression was carried out for miR-27a and miR-27b using TaqMan-based PCR on total RNA samples from the above described stages, DE and HE and normalized to the untreated/undifferentiated H1 control.
Figure 3OCT4 knockdown in the hESC line H1 leads to activation of miR-27a and miR-27b expression.
Successful OCT4 knockdown in hESC cells transfected twice with siRNA targeting either OCT4 or EGFP 72 h post transfection and confirmed by real-time PCR (A) and Western Blotting (B). (A) Relative OCT4 and NANOG expression of three biological OCT4 knockdown samples (siOCT4#1-3) normalized to the siGFP knockdown control. (B) Western Blot analysis of OCT4 protein levels carried out for sample (siOCT4#1) and siGFP control sample with densitometric quantification (OCT4/GAPDH) (C) Relative expression of pluripotency-associated genes validated by real-time PCR for sample siOCT4#1 normalized to the siGFP knockdown control. (D) miR-27 expression was carried out using TaqMan-based PCR for all three biological siOCT4 samples and normalized to the siGFP control sample.
Figure 4miR-27 inhibits OCT4 and LIN28 expression at both the transcriptional and translational level in embryonal carcinoma cells (NCCIT).
(A) Analysis of miR-27 expression was carried out for miR-27a and miR-27b using TaqMan-based PCR on total RNA samples isolated from NCCIT cells undergoing RA stimulated neuronal differentiation for seven days or by blocking TGFßR2 with SB431542 for seven days and normalized to the DMSO-treated control. (B) qRT-PCR of selected genes (log2-fold change relative to the negative control) was validated for NCCIT cells transfected once with miR-27 or treated with SB431542 for 48 h. NCCIT cells transfected with a scrambled miRNA mimic was used for normalization. (C) Relative OCT4 and LIN28 expression in NCCIT cells transfected with scrambled negative control miRNA mimics, let-7a, miR-125b, miR-27a, miR-200c or treated with SB431542 for 72 h and validated by qRT-PCR. (D) Western Blot analysis of OCT4 and LIN28 expression in NCCIT cells treated as described in (C). (E) Normalized densitometric-derived ratios of Western Blot presented in (D).
Figure 5Transcriptome analysis of human embryonal carcinoma cells (NCCIT) post transfection with miR-27, let-7, miR-125 or miR-200.
(A) Hierarchical clustering of NCCIT cells transfected either with miRNAs (miR-27, let-7, miR-125, miR-200 or neg. control mimic) or treated with the TGFßR2 inhibitor SB431542 (B) Heat map representing the expression of selected genes relative to the negative control transfection (Detection P-Value <0.01) (C) Venn diagrams representing the overlap of up- and down-regulated genes by let-7 and miR-27 (Detection P-Value <0.01) in comparison to the negative control transfection. (D) Venn diagram representing the overlap of down-regulated genes by miR-27 in comparison to miR-27 target genes predicted by TargetScan (human) V6.2.
List of pathways and associated genes significantly up-regulated 72 h after post-transfection of NCCIT with miR27.
| Term | Count | % | PValue | Benjamini | Genes |
| hsa04350:TGF-beta signaling pathway | 13 | 1.96 | 0.0001 | 0.0133 | BMP2, E2F5, SMAD6, CREBBP, FST, RBL1, SMAD3, ID2, ID1, INHBE, ZFYVE9, LEFTY2, BMPR1A |
| hsa04310:Wnt signaling pathway | 16 | 2.42 | 0.0006 | 0.0386 | WNT5A, FZD8, TBL1XR1, PPP2R5A, CREBBP, PPP3R1, SMAD3, FZD3, DVL1, CTNNB1, CSNK2A2, CSNK2A1, CCND2, JUN, PLCB1, PLCB2 |
| hsa04520:Adherens junction | 11 | 1.66 | 0.0006 | 0.0274 | CSNK2A2, FGFR1, TJP1, CSNK2A1, WASF3, FYN, CREBBP, SMAD3, WASL, SRC, CTNNB1 |
| hsa05200:Pathways in cancer | 26 | 3.93 | 0.0007 | 0.0212 | WNT5A, FGFR1, E2F2, PML, FOXO1, PTEN, GLI3, CTNNB1, PTK2, BCL2, FZD8, BMP2, COL4A1, BCR, CREBBP, SKP2, SMAD3, FZD3, RB1, STAT3, DVL1, LAMA2, LAMA1, ITGA6, JUN, LAMC1 |
| hsa05222:Small cell lung cancer | 11 | 1.66 | 0.0013 | 0.0327 | LAMA2, E2F2, LAMA1, PTK2, COL4A1, ITGA6, BCL2, SKP2, RB1, LAMC1, PTEN |
| hsa04510:Focal adhesion | 18 | 2.72 | 0.0016 | 0.0353 | COL4A1, TLN2, PPP1CB, PTEN, SRC, CTNNB1, LAMA2, LAMA1, PTK2, PDPK1, DOCK1, ITGA6, CCND2, FYN, JUN, BCL2, RAP1A, LAMC1 |
Figure 6Schematic overview of our proposed regulatory network between miR-27 and pluripotency-associated genes.
Genes highlighted in bold, black letters are those validated experimentally to be direct targets of miR-27.
Primers that have been used to generate GFP- miRNA target gene constructs. Restriction sites are highlighted in bold letters.
| Primer | Sequence | Restriction site |
| TGFßR1fwd | atat |
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| TGFßR1rev | atat |
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| ACVR2Afwd | atat |
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| ACVR2Arev | atat |
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| SMAD2-1fwd | atat |
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| SMAD2-1rev | atat |
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| SMAD2-2fwd | atat |
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| SMAD2-2rev | atat |
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| LIN28Bfwd | atat |
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| LIN28Brev | atat |
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| NR5A2fwd | atat |
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| NR5A2rev | tata |
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| POLR3Gfwd | atat |
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| POLR3Grev | atat |
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| NANOGfwd | atat |
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| NANOGrev | atat |
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| OCT4fwd | atat |
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| OCT4rev | atat |
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| SOX2fwd | atat |
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| SOX2rev | atat |
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Primers that have been used for quantitative Real-time PCR.
| Gene name | Forward primer | Reverse primer |
| BMP4 |
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| GAPDH |
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| OCT4 |
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| NANOG |
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| SOX2 |
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| MYC |
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| TP53 |
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| LIN28B |
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