Copyright: ©Author(s) 2026.
World J Stem Cells. Sep 26, 2026; 18(9): 125599
Published online Sep 26, 2026. doi: 10.4252/wjsc.125599
Published online Sep 26, 2026. doi: 10.4252/wjsc.125599
Table 1 RNA-centered mechanisms linked to hepatocellular carcinoma cancer stem cell self-renewal or stem-like phenotypes
| RNA regulator/ma | Class | Primary operation | Proximal target or molecular partner | Convergent pathway/func | Functional evidence captured in manuscript | Evidence level | Ref. |
| Effector dosage/availability | |||||||
| miR-338-3p | miRNA | Dosage/threshold control | SOX4 repression | SOX4-linked stemness | Sphere/stemness and functional phenotypes | Supportive | [45] |
| miR-2117 | miRNA | Dosage/threshold control | SOX2 repression | SOX2-linked CSC expansion and chemoresistance | CSC expansion/chemoresistance assays | Supportive | [46] |
| circ_0000972 | circRNA | Transcript-level competition | miR-96-5p/PFN1 axis | Stemness suppression | Stemness phenotypes; not primary deployment evidence | Supportive | [42] |
| METTL3-SOCS3 | m6A writer axis | Dosage/RNA fate | SOCS3 mRNA; JAK2-STAT3 signaling | STAT3 pathway output | Stemness/tumorigenicity assays | Supportive | [35] |
| SOCS2-AS1 | LncRNA | Dosage/ceRNA-like control | miR-454-3p/CPEB1 | Stemness suppression axis | CSC phenotype assays | Supportive | [28] |
| DIO3OS | LncRNA | Transcript availability/export | NONO-mediated ZEB1 mRNA export | ZEB1 protein availability | RNA export and CSC phenotype assays | Supportive | [18] |
| DUBR | LncRNA | Dosage feedback architecture | miR-520d-5p/CIP2A/E2F1 | NOTCH1-associated stemness | Mechanistic feedback and CSC phenotypes | Supportive | [33] |
| IGF2BP1 | m6A reader/RBP | Transcript persistence | MGAT5 mRNA stability | MGAT5-linked CSC phenotype | m6A-dependent binding and stemness assays | Supportive | [27] |
| RALYL | RNA-binding protein | Transcript persistence | TGF-β2 mRNA stability | PI3K-AKT-STAT3 signaling | Transcript-stability mechanism and CSC phenotypes | Core | [6] |
| LINC01013 | LncRNA | Dosage/ceRNA-like control | miR-6795-5p/FMNL3 | CSC features | CSC phenotype assays | Supportive | [29] |
| MALAT1 | LncRNA | Dosage/ceRNA-like control | miR-375/YAP1 | YAP1-linked CSC expansion | CSC phenotype assays | Supportive | [30] |
| miR-192-5p | miRNA | Metabolic threshold control | GLUT1, PFKFB3, c-MYC | Glycolytic permissiveness | Metabolic and stem-like phenotype assays | Supportive | [24] |
| miR-5188 | miRNA | Dosage/pathway threshold control | FOXO1 repression | β-catenin nuclear accumulation; HBV/HBX-linked context | Target-and-rescue logic; pathway mechanism | Core | [7] |
| miR-613 | miRNA | Dosage/threshold control | SOX9 repression | Stemness suppression | CSC expansion assays | Supportive | [47] |
| miR-26b-5p | miRNA | Marker-associated dosage control | HSPA8 in malignant EpCAM-positive cells | EpCAM-positive malignant compartment | Malignant vs non-malignant EpCAM-positive comparison | Supportive | [21] |
| miR-365 | miRNA | Dosage/threshold control | RAC1 repression | CSC phenotype suppression | CSC phenotype assays | Supportive | [48] |
| THOR | LncRNA | Dosage/pathway output | β-catenin-associated regulation | Wnt-β-catenin-linked CSC expansion | CSC expansion assays | Supportive | [31] |
| miR-302a/d | miRNA | Dosage/pathway threshold control | E2F7/AKT-β-catenin signaling | CSC context signaling | Sphere/tumorigenicity-related assays | Supportive | [23] |
| miR-200b-ZEB1 | miRNA circuit | CSC-state composition | ZEB1 circuit | Marker-defined CSC state redistribution | Marker-state and stemness assays | Supportive | [20] |
| miR-217 | miRNA | Dosage/threshold control | DKK1-dependent Wnt regulation | Wnt-linked stem-like traits | Stem-like phenotype assays | Supportive | [43] |
| miR-500a-3p | miRNA | Dosage/threshold control | SOCS2, SOCS4, PTPN11 | STAT3 signaling | Functional CSC assay and target-rescue logic | Core | [17] |
| MSI2 | RNA-binding protein | RBP-linked dosage control; proximal mechanism unresolved | LIN28A downstream component | CSC self-renewal and tumorigenicity | Functional evidence; direct mRNA stabilization unresolved | Supportive | [26] |
| miR-452 | miRNA | Dosage/threshold control | Sox7 repression | Wnt-β-catenin activation | Stem-like phenotype assays | Supportive | [44] |
| miR-589-5p | miRNA | Marker-associated dosage control | MAP3K8 in CD90-positive cells | CD90-positive compartment dependency | Marker-defined compartment evidence | Supportive | [22] |
| miR-491 | miRNA | Supportive threshold logic | GIT-1/NF-κB/EMT | CSC-like properties | CSC-like phenotype assays | Supportive | [49] |
| ICR | LncRNA | Transcript persistence/RNA-RNA duplex control | ICAM-1 mRNA stability | ICAM-1 + CSC state; PVTT-associated phenotype | Sphere assays, in vivo ICR inhibition, clinical PVTT correlation | Supportive | [25] |
| miR-25 | miRNA | Supportive threshold logic/apoptotic resistance | PTEN-PI3K-AKT-Bad | Apoptotic resistance in CSC context | Treatment/phenotype-linked evidence | Supportive | [50] |
| miR-1246 | miRNA | Dosage/pathway threshold control | AXIN2 and GSK3β repression | β-catenin destruction machinery | Functional CSC evidence and pathway mechanism | Core | [3] |
| miR-4461 | miRNA | Dosage/threshold control | SIRT1 repression | CSC expansion and chemoresistance | CSC expansion/chemoresistance assays | Supportive | [51] |
| Protein output/translational competence | |||||||
| YTHDF1 | m6A reader | Protein output | m6A-modified NOTCH1 mRNA | NOTCH1 output | Patient-derived organoids, conditional mouse systems, mechanistic rescue | Core | [4] |
| METTL16 | RNA methyltrans | Protein output/translational competence | rRNA maturation; ribosome biogenesis; eIF3a | Functional CSC frequency; de novo HCC initiation | Genetic loss and functional CSC assays | Core | [9] |
| ADAR1 | RNA-editing enzyme | Protein output/recoding | GLI1 R701G editing | Hedgehog activity; mitophagy; oxidative phosphorylation | Mechanistic editing evidence plus tumor initiation | Core | [10] |
| SNHG3 | LncRNA | m6A/RBP-linked RNA fate | miR-502-3p; YTHDF3/METTL3; ITGA6 | ITGA6-linked CSC self-renewal | Self-renewal phenotypes and molecular axis | Supportive | [37] |
| ALKBH5-SOX4 | RNA demethylase axis | RNA modification/pathway output | SOX4 demethylation; SHH signaling | Hedgehog/SHH activity | CSC phenotype and mechanism assays | Supportive | [36] |
| METTL3-FZD10 | m6A writer axis | Protein output/receptor-level signaling | FZD10 expression | β-catenin and YAP1 signaling | Mechanistic pathway and functional assays | Core | [5] |
| TRMT6-TRMT61A | tRNA m1A methyltransferase complex | Protein output/tRNA modification | Selected tRNAs; PPARδ translation | Cholesterol synthesis; Hedgehog activation | tRNA modification and CSC-associated output | Core | [38] |
| CPEB1 | RNA-binding protein | Translational accessibility | SIRT1 3′ untranslated region; poly(A)-tail regulation | SIRT1 protein output | Translation-focused mechanism and tumorigenicity phenotypes | Supportive | [32] |
| EIF5A2 | Translation-associated factor | Protein output/translational machinery | c-MYC-miR-29b circuit | CD133-positive HCC stem-like cells | Marker-enriched evidence; weaker than direct translation models | Supportive | [39] |
| Regulatory deployment/Locus access/RBP redistribution | |||||||
| SNORA49 | snoRNA | Regulatory deployment | HNRNPU-ZC3H18 complex; SOX9 promoter access | SOX9/self-renewal transcription | Functional CSC renewal assays; mechanistic complex/Locus evidence | Core | [19] |
| SNORD88B | snoRNA | Regulatory deployment | WRN nucleolar retention; XRCC5-dependent STK4 repression | Hippo attenuation | Liver cancer-initiating cell self-renewal assays | Core | [11] |
| circIPO11 | circRNA | Regulatory deployment/Locus access | TOP1 recruitment to GLI1 promoter | Hedgehog/GLI1 output | Limiting dilution, patient-derived cells, genetic knockout model | Core | [1] |
| LINC00324 | LncRNA | Regulatory deployment/TF association | PU.1 association; FasL expression | CSC-like properties | Functional evidence less extensive than core locus-access models | Supportive | [40] |
| circZKSCAN1 | circRNA | Regulatory deployment/RBP redistribution | FMRP sequestration; CCAR1 mRNA interaction | β-catenin-dependent transcription | RBP competition and stemness assays | Core | [14] |
| HAND2-AS1 | LncRNA | Regulatory deployment/Locus access | INO80 recruitment to BMPR1A promoter | BMP signaling | Functional and locus-access evidence | Core | [12] |
| Lnc-DILC | LncRNA | Regulatory deployment/promoter control | Promoter-associated IL-6 transcription | IL-6-STAT3 circuit | Mechanistic promoter and CSC context evidence | Supportive | [16] |
| LncCAMTA1 | LncRNA | Regulatory deployment/Locus-linked repression | CAMTA1 promoter association | CSC-like properties | Locus-linked and CSC-like phenotype evidence | Supportive | [41] |
| Boundary mechanisms | |||||||
| SNORA74A | snoRNA | Protein persistence/proximity-mediated dosage control | DCAF13-E2F2 interaction; K48-linked E2F2 ubiquitination | NOTCH3 signaling; liver CSC self-renewal | Genetic deletion, self-renewal and hepatocarcinogenesis assays; ASO intervention | Core | [13] |
| circRAPGEF1 | circRNA with m6A-dependent stabilization | Regulatory deployment/RBP redistribution | IGF2BP3 redistribution away from ASS1 mRNA | Aspartate accumulation; S6K-CAD pathway | Mechanistic RNA-RBP competition plus CSC phenotypes | Core | [34] |
| Lnc-β-Catm | LncRNA | Protein persistence/proximity control | EZH2-β-catenin proximity | β-catenin stabilization | Mechanistic proximity and CSC phenotypes | Core | [15] |
| DDX3 | RNA helicase | RNA-helicase-associated, epigenetically mediated control of tumor-suppressive miRNA networks | Tumor-suppressive miRNA repression | CSC phenotypes | Upstream machinery evidence; boundary to miRNA section | Supportive | [52] |
- Citation: Deng Y, Yan L. RNA-centered mechanisms sustaining self-renewal in hepatocellular carcinoma stem cells: Effector dosage, protein output and regulatory deployment. World J Stem Cells 2026; 18(9): 125599
- URL: https://www.wjgnet.com/1948-0210/full/v18/i9/125599.htm
- DOI: https://dx.doi.org/10.4252/wjsc.125599