| Literature DB >> 31547871 |
Fuchun Fang1,2, Kaiying Zhang1, Zhao Chen1, Buling Wu3,4.
Abstract
Odontoblasts are cells that contribute to the formation of the dental pulp complex. The differentiation of dental tissue-derived mesenchymal stem cells into odontoblasts comprises many factors and signaling pathways. Noncoding RNAs (ncRNAs), comprising a substantial part of poly-A tail mature RNAs, are considered "transcriptional noise." Emerging evidence has shown that ncRNAs have key functions in the differentiation of mesenchymal stem cells. In this review, we discussed two major types of ncRNAs, including microRNAs (miRNAs) and long noncoding RNAs (lncRNAs), in terms of their role in the odontogenic differentiation of dental tissue-derived stem cells. Recent findings have demonstrated important functions for miRNAs and lncRNAs in odontogenic differentiation. It is expected that ncRNAs will become promising therapeutic targets for dentin regeneration based on stem cells.Entities:
Keywords: Dental tissue; Long noncoding RNA; Mesenchymal stem cells; MicroRNA; Noncoding RNA; Odontogenic differentiation
Year: 2019 PMID: 31547871 PMCID: PMC6757432 DOI: 10.1186/s13287-019-1411-x
Source DB: PubMed Journal: Stem Cell Res Ther ISSN: 1757-6512 Impact factor: 6.832
Surface markers for dental tissue-derived mesenchymal stem cells
| SHED | DPSCs | SCAP | PDLSCs | DFPCs | GMSCs | MSCs from palatal tissue | ABMSCs | |
|---|---|---|---|---|---|---|---|---|
| STRO-1 | + | + | + | + | + | / | / | / |
| CD13 | + | + | + | + | + | / | / | + |
| CD29 | + | + | + | + | + | + | + | + |
| CD44 | + | + | + | + | + | + | + | + |
| CD73 | + | + | + | + | + | + | + | + |
| CD90 | + | + | + | + | + | + | + | + |
| CD105 | + | + | + | + | + | + | + | + |
| CD146 | + | + | + | + | / | + | / | + |
| CD166 | + | + | + | + | + | + | / | + |
“+” indicates surface markers of cell expression; “/” indicates not reported
Fig. 1Noncoding RNA classification and functions. a The classification of noncoding RNAs based on their functions and length. b Regulatory mechanism of microRNAs. c Regulatory mechanism of long noncoding RNAs. rRNAs, ribosomal RNAs; tRNAs, transfer RNAs; snoRNAs, small nucleolar RNAs; snRNAs, small nuclear RNAs; tmRNAs, transfer messenger RNAs; gRNAs, guide RNAs; ncRNAs, noncoding RNAs; miRNAs, microRNAs; piRNAs, PIWI-interacting RNAs; siRNAs, small interfering RNAs; lncRNAs, long noncoding RNAs
Fig. 2Reported ncRNAs that regulate the odontogenic differentiation of dental tissue-derived stem cells. Green line, promotion; red line, inhibition. DPSCs, dental pulp stem cells; H19, imprinted maternally expressed transcript; SCAPs, stem cells from apical papillae
Fig. 3The regulating mechanisms of ncRNAs that contribute to the odontogenic differentiation of dental tissue-derived stem cells. The green arrow indicates promotion, and the red T indicates inhibition. ALP, alkaline phosphatase; BMP4, bone morphogenetic protein 4; COL-I, collagen type 1; DLX3, distal-less homeobox 3; DNMT3B, DNA methyltransferase 3B; DMP1, dentin matrix acid phosphoprotein 1; DSPP, dentin sialophosphoprotein; H19, imprinted maternally expressed transcript; HES, hairy/enhancer of split; IGF-1, insulin-like growth factor-1; JNK, c-Jun N-terminal kinase; LPS, lipopolysaccharide; MAPKK, mitogen-activated protein kinase kinase; N2ICD, Notch2 intracellular domain; NICD, Notch intracellular domain; OCN, osteocalcin; OPG/RANKL, osteoprotegerin/receptor activator of the nuclear factor-κB ligand; OPN, osteopontin; OSX, osterix; RUNX2, runt-related transcription factor 2; SAHH, S-adenosylhomocysteine hydrolase; SMAD3, SMAD family member 3; SPAG9, sperm-associated antigen 9; STAT3, signal transducer and activator of transcription 3; TGF-β, transforming growth factor-β; TNF-α, tumor necrosis factor-α; TLR-4, Toll-like receptor 4
Noncoding RNAs involved in the odontogenic differentiation of dental tissue-derived mesenchymal stem cells
| ncRNA | Gene ID | Effects | Modes of action | Associated targets or pathways | Cell category | References |
|---|---|---|---|---|---|---|
| lncRNA | H19 (imprinted maternally expressed transcript) | Promotes odontogenic differentiation | (1) H19/SAHH axis | DNMT3B decreases and DLX3 increases | Human DPSCs | Zeng et al. 2018 [ |
| (2) H19/miR-141/SPAG9 axis | p38 and JNK MAPK pathway | Human SCAPs | Li et al. 2019 [ | |||
| lncRNA | DANCR (differentiation antagonizing nonprotein coding RNA) | Blocks odontoblast-like differentiation | GSK-3β and β-catenin suppression | Canonical Wnt/β-catenin signaling pathway | Human DPCs | Chen et al. 2016 [ |
| miRNA | miR-21 | Positively modulates odontoblastic differentiation | (1) Increasing p-STAT3 | A positive feedback loop in the miR-21/STAT3 signaling pathway | Human DPSCs | Xu et al. 2018 [ |
| (2) Increased by p-STAT3 | ||||||
| miRNA | miR-143-5p | Inhibits the differentiation of human DPSCs into odontoblasts | (1) Interacting with RUNX2 3′-UTR | (1) RUNX2 suppression OPG/RANKL signaling pathway | Human DPSCs | Zhan et al. 2018 [ |
| (2) Interacting with the MAPK14 3′-UTR | (2) MAPK14 suppression p38 MAPK signaling pathway | Wang et al. 2019 [ | ||||
| miRNA | miR-140-5p | Inhibits odontogenic differentiation | Interacting with the TLR-4 3′-UTR | LPS/TLR-4 signaling pathway | Human DPSCs | Sun et al. 2017 [ |
| miRNA | miR-223-3p | Promotes odontoblastic differentiation | Interacting with the BMP4 3′-UTR | SMAD3 suppression TGF-β1 signal transduction pathway | Human DPSCs | Huang et al. 2019 [ |
| miRNA | miR-448 | Blocks odontogenic differentiation | Interacting with the MAPK1 3′-UTR | p38 MAPK signaling pathway | Human DPSCs | Yu et al. 2019 [ |
| miRNA | hsa-let-7c | Inhibits the odontogenic differentiation of IGF-1-treated human SCAPs | IGF-1/IGF-1R/hsa-let-7c axis | JNK and p38 MAPK signaling pathways | Human SCAPs | Ma et al. 2016 [ |
| miRNA | miR-34a | Promotes odontogenic differentiation | (1) Interacting with NOTCH2 and HES1 3′-UTR | Crosstalk between miR-34a and Notch signaling | Human SCAPs | Sun et al. 2014 [ |
| (2) Activated by Notch signaling |
ALP alkaline phosphatase, BMP4 bone morphogenetic protein 4, COL-I collagen type 1, DLX3 distal-less homeobox 3, DNMT3B DNA methyltransferase 3B, DMP1 dentin matrix acid phosphoprotein 1, DSPP dentin sialophosphoprotein, GSK-3β glycogen synthase kinase 3, HES hairy/enhancer of split, IGF-1 insulin-like growth factor-1, JNK c-Jun N-terminal kinase, LPS lipopolysaccharide, MAPK mitogen-activated protein kinase, N2ICD Notch2 intracellular domain, NICD Notch intracellular domain, OCN osteocalcin, OPG/RANKL osteoprotegerin/receptor activator of the nuclear factor-κB ligand, OPN osteopontin, OSX osterix, RUNX2 runt-related transcription factor 2, SAHH S-adenosylhomocysteine hydrolase, SMAD3 SMAD family member 3, SPAG9 sperm-associated antigen 9, STAT3 signal transducer and activator of transcription 3, TGF-β transforming growth factor-β, TNF-α tumor necrosis factor-α, TLR-4 Toll-like receptor 4