| Literature DB >> 29888282 |
Jing Zhao1,2, Yan Fu1, Jing Wu3, Juan Li1, Guangjian Huang1, Lunxiu Qin1,2.
Abstract
Liver cancer is the second leading cause of cancer-related death worldwide. The high frequency of recurrence and metastasis is the main reason for poor prognosis. Liver cancer stem cells (CSCs) have unlimited self-renewal, differentiation, and tumor-regenerating capacities. The maintenance of CSCs may account for the refractory features of liver cancer. Despite extensive investigations, the underlying regulatory mechanisms of liver CSCs remain elusive. miRNA and lncRNA, two major classes of the ncRNA family, can exert important roles in various biological processes, and their diverse regulatory mechanisms in CSC maintenance have acquired increasing attention. However, to the best of our knowledge, there is a lack of reviews summarizing these findings. Therefore, we systematically recapitulated the latest studies on miRNAs and lncRNAs in sustaining liver CSCs. Moreover, we highlighted the potential clinical application of these dysregulated ncRNAs as novel diagnostic and prognostic biomarkers and therapeutic targets. This review not only sheds new light to fully understand liver CSCs but also provides valuable clues on targeting ncRNAs to block or eradicate CSCs in cancer treatment.Entities:
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Year: 2018 PMID: 29888282 PMCID: PMC5977062 DOI: 10.1155/2018/8686027
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
miRNAs participate in the regulation of liver CSCs.
| miRNA | Expression | Liver CSC subtype | Targets | Reference |
|---|---|---|---|---|
| miR-181 | ↑ | EpCAM+ | CDX2, GATA6, NLK | [ |
| miR-1246 | ↑ | CD133+ | AXIN2, GSK3 | [ |
| Let7b | ↓ | CD24+CD133+ | FZD4 | [ |
| miR-148a | ↓ | EpCAM+AFP+ | ACVR1 | [ |
| miR-200a | ↓ | Side population |
| [ |
| miR-214 | ↓ | EpCAM+ |
| [ |
| Let-7a | ↓ | Sphere formation | TCF4 | [ |
| miR-25 | ↑ | CD133+ | PTEN/PI3K/AKT/Bad | [ |
| miRNA-21 | ↑ | Side population | PTEN, RECK, PDCD4 | [ |
| miR-612 | ↓ | EpCAM+CD133+ | SP1/Nanog | [ |
| miR-429 | ↑ | EpCAM+ | PBBP4/E2F1/OCT4 | [ |
| miR-145 | ↓ | CD133+ | Oct4 | [ |
| miRNA-200b | ↓ | CD13+CD24+ | BMI1, CD13, CD24 | [ |
| miR-142-3p | ↓ | CD133+ | CD133 | [ |
| miR-424, miR-222, miR-200b, let-7c | ↓ |
| PBX3 | [ |
| miR-122 | ↓ | CD133+ | PDK4 | [ |
| miR-130b | ↑ | CD133+ | TP53INP1 | [ |
| miR-155 | ↑ | CD90+CD133+ | TP53INP1 | [ |
| miR-152 | ↓ | CD133+ | KIT | [ |
| miR-589-5p | ↓ | CD90+ | MAP3K8 | [ |
| miR-150 | ↓ | CD133+ | c-Myb | [ |
| miR-148b | ↓ | Side population | NRP1 | [ |
| miR-137 | ↓ | CD133/44+EpCAM+ | ANT2 | [ |
lncRNAs participate in the regulation of liver CSCs.
| lncRNAs | Expression | Liver CSC subtype | Regulatory partners | Reference |
|---|---|---|---|---|
| lncRNATCF7 | ↑ | CD133+CD13+ | SWI/SNF complex | [ |
| lnc- | ↑ | CD133+CD13+ |
| [ |
| lncRNA-DANCR | ↑ | EpCAM+, CD90+ | CTNNB1 mRNA | [ |
| lnc-DILC | ↓ | EpCAM+ CD24+ OV6+ | IL-6 | [ |
| LncSox4 | ↑ | EpCAM+ CD133+ | STAT3 | [ |
| HULC, MALAT1 | ↑ | CD133+CD44+CD24+ EpCAM+ | TRF2 | [ |
| lnc-CUDR | ↑ | CD133+CD44+CD24+ EpCAM+ | CTCF | [ |
| lnc-CUDR | ↑ | CD133+CD44+CD24+ EpCAM+ | Cyclin D1 | [ |
| lncBRM | ↑ | CD133+CD13+ | BRM | [ |
| Lnc PVT1 | ↑ | Sphere formation | NOP2 | [ |
| lncCAMTA1 | ↑ | CD133+CD13+ | CAMTA1 | [ |
| ICR | ↑ | ICAM-1+ | ICAM-1 mRNA | [ |
| HOTAIR | ↑ | CD133+CD44+CD24+ EpCAM+ | CREB-P300-RNA polII complex | [ |
Figure 1The diverse regulatory mechanisms of ncRNAs on Wnt signaling pathway. (A) Let7b can target and silence FZD4 expression. (B) miR-148a can inhibit the expression of ACVR1 to block the formation of Wnt-FZD-LRP5/6 receptor complex. (C) miR-1246 can directly suppress AXIN2 and GSK3β expression. (D) miR-200a can silence the expression of β-catenin. (E) miR-214 can deplete β-catenin expression. (F) miR-612 can indirectly decrease the nuclear accumulation of β-catenin. (G) miR-181 can enhance TCF activity by decreasing its inhibitor NLK. (H) Let-7a can directly silence TCF4. (I) lnc-β-Catm can lead to the methylation of β-catenin, enhancing the stability of β-catenin protein. (J) lncRNA-DANCR can bind to 3′-UTR of β-catenin to increase its expression by preventing β-catenin from depletion by miR-214 and miR-320a. (K) lnc-TCF7 can recruit SWI/SNF complex to TCF7 promoter and further elevate the activation of TCF7.