Submitted:
04 November 2025
Posted:
05 November 2025
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Abstract
Keywords:
1. Introduction
2. Dysregulation of snoRNAs in Cancer
2.1. Oncogenic snoRNAs
2.2. Tumor Suppressor snoRNAs
2.3. Context-Dependent Functional Plasticity
| snoRNA | Type | Function | Cancer Type | Primary Mechanism | Validation | Reference |
|---|---|---|---|---|---|---|
| SNORA21 | H/ACA | Oncogene | Colorectal | Hippo/Wnt pathways | In vitro/in vivo | [12] |
| SNORD78 | C/D | Oncogene | Colorectal | Oncoribosome formation | Patient samples | [13] |
| SNORA47 | H/ACA | Oncogene | Breast | EBF3/RPL11/c-Myc axis | Xenografts | [18] |
| SNORA24 | H/ACA | Tumor suppressor | HCC | Translational fidelity | RAS model | [19] |
| SNORD44 | C/D | Tumor suppressor | Colorectal | p53 pathway | Oncolytic virus | [20] |
| SNORD113-1 | C/D | Tumor suppressor | HCC | MAPK/STAT3 inhibition | In vitro/in vivo | [21] |
| SNORA13 | H/ACA | Tumor suppressor | Multiple | Senescence via RPL23/p53 | Cell models | [31] |
| SNORD50A/B | C/D | Context-dependent | Multiple | K-Ras/TRIM21 | Xenografts | [22,23,24] |
| SNORD76 | C/D | Context-dependent | HCC/Glioblastoma | Wnt/Cell cycle | Patient tissues | [26,27,28] |
3. Molecular Mechanisms of snoRNA-Mediated Effects in Cancer
3.1. Ribosomal Dysfunction and Translational Control
3.2. Alternative Splicing Regulation
3.3. Chromatin Remodeling and Epigenetic Regulation
3.4. MicroRNA-like Functions
3.5. Integration with Signaling Networks
3.6. snoRNA-Protein Interactions and Regulatory Complexes

4. snoRNAs as Cancer Biomarkers
4.1. Diagnostic Applications
| Cancer Type | snoRNA Panel | Sample Type | Sensitivity | Specificity | AUC | Reference |
|---|---|---|---|---|---|---|
| Breast | SNORD16, SNORA73B, SCARNA4, SNORD49B | Plasma | 66.5% | 74.4% | N/A | [54] |
| Lung | SNORD78, SNORD37 | Serum exosomes | N/A | N/A | 0.85 | [55] |
| Colorectal | SNORA51 | Fecal | 82% | 89% | 0.91 | [56] |
| Renal cell | SNORD15A, SNORD35B, SNORD60 | Urine sediment | 78% | 85% | 0.88 | [57] |
| HCC | 9-snoRNA signature | Tissue | N/A | N/A | 0.92 | [60] |
4.2. Prognostic Value and Disease Monitoring
| Mechanism | snoRNA Examples | Cancer Effect | Therapeutic Potential | References |
|---|---|---|---|---|
| Ribosomal Dysfunction | ||||
| Aberrant 2’-O-methylation | SNORD78, SNORD60 | Selective oncogene translation | ASO targeting | [13,47] |
| Loss of pseudouridylation | SNORA24 | Reduced translational fidelity | Expression restoration | [19] |
| Oncoribosomes | SNORD16 | IRES-mediated translation | Ribosome inhibitors | [14,15] |
| Post-transcriptional Regulation | ||||
| MicroRNA-like functions | sdRNA-93, SNORA42 | Target mRNA regulation | sdRNA inhibitors | [44,45] |
| Alternative splicing | SNORD44, SNORD115 (HBII-52) | Pro-tumoral isoforms | Splicing modulators | [5,20,36] |
| mRNA stability | SNORD104 | Enhanced PARP1 expression | PARP inhibitors | [40] |
| Chromatin Remodeling | ||||
| PARP1 interaction | SNORA73 | Genomic instability | PARP inhibitors | [38] |
| Histone modification | sdnRNA3 | TAM immunosuppression | Epigenetic therapy | [39] |
| Signaling Networks | ||||
| Oncogenic pathways | SNORA21, SNORD113-1 | Proliferation/survival | Combination therapy | [12,21] |
| Protein interactions | SNORD50A/B | K-Ras activation | Targeted inhibitors | [22,48] |
5. snoRNAs as Therapeutic Targets
6. Conclusions and Perspectives
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