Wnt/β-Catenin Pathway and Hydraulic Calcium Silicate-Based Cements: A Narrative Review
Abstract
1. Introduction
2. Wnt/β-Catenin: Molecular Mechanism
- The Wnt/planar cell polarity (PCP) pathway, which is vital for coordinating cell polarity, directed migration, and tissues organization during development.
- The Wnt/Ca2+ pathway, which modulates intracellular calcium levels and activates downstream effectors involved in cell motility, adhesion and other calcium-dependent processes.
3. Activators and Inhibitors of the Pathway
4. Wnt Correlation with Dental Development
5. Wnt Signaling in the Oral Cells
6. Wnt Signaling and Hydraulic Calcium Silicate-Based Cements
| Material | Wnt/β-Catenin Modulation | Odontogenic Response | Study Model | Ref. |
|---|---|---|---|---|
| MTA | Upregulated | hDPSCs differentiation | In vitro/In vivo | [85,86] |
| Biodentine | Activated | Reparative dentin formation | In vivo | [87] |
| TheraCal LC | Activated | Dentin bridge formation | In vitro | [88] |
| iRoot FS | Activated | Odontogenic differentiation | In vitro | [90] |
7. Future Perspectives and Limitations
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Regulators | Role in the Pathway | Relevance in Bone/Dental Tissues | Main Action | Study Model | Ref. |
|---|---|---|---|---|---|
| GPC3 (Glypican-3) | Activator | Differentially expressed in dental pulp affected by caries | Can bind Wnt and Frizzled to enhance signaling depending on context | In vitro | [23,24,25] |
| Rspos (R-spondins) | Activator | Indirect relevance to alveolar bone and dental tissue regeneration | Potentiate Wnt/β-catenin signaling pathway by inhibiting Znrf3/Rnf43E3 ligases | In vitro/In vivo | [26,30,31] |
| CK (Casein Kinase) | Dual role context-dependent | CKIIP-1 identified as a negative regulator of MSC osteogenesis; limited data in dental development | Phosphorylates pathway components or promotes β-catenin degradation | In vitro | [32,35] |
| Norrin | Activator | Evidence not reported | Binds Frizzled-4 and LRP5/6 to activate β-catenin signaling in retina | In vitro | [36,38] |
| DKK | Inhibitor | Inhibit bone formation | Binds LRP5/6 and blocks Wnt–Frizzled–LRP complex formation | In vitro/in vivo | [39,40,42] |
| sFRPs (Secreted Frizzled Related-Proteins) | Dual role context-dependent | sFRP5 protective in periodontal tissues; sFRP3 promotes and sFRP4 inhibits osteogenesis in hMSCs | Bind Wnt ligands extracellularly, preventing receptor interaction; can upregulate the stabilization of β-catenin | In vitro/in vivo | [43,45,46] |
| WIF (Wnt Inhibitor Factor) | Inhibitor | Potential influence on bone-related dental processes | Directly binds Wnt proteins to inhibit their signaling | In vitro | [50,51] |
| Cardamonin | Inhibitor | Modulates bone remodeling | Suppresses Wnt/β-catenin signaling pathway via inhibition of nuclear β-catenin accumulation | In vitro/in vivo | [52,53] |
| SOST (Sclerostin) | Inhibitor | Potential impact on alveolar bone density and remodeling | Binds LRP5/6, preventing Wnt-induced receptor activation | In vitro/in vivo | [55,57] |
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Del Giudice, C.; Vito, C.; Spagnuolo, G.; Rengo, C.; Valletta, A.; Menale, C.; Iaculli, F. Wnt/β-Catenin Pathway and Hydraulic Calcium Silicate-Based Cements: A Narrative Review. Dent. J. 2026, 14, 273. https://doi.org/10.3390/dj14050273
Del Giudice C, Vito C, Spagnuolo G, Rengo C, Valletta A, Menale C, Iaculli F. Wnt/β-Catenin Pathway and Hydraulic Calcium Silicate-Based Cements: A Narrative Review. Dentistry Journal. 2026; 14(5):273. https://doi.org/10.3390/dj14050273
Chicago/Turabian StyleDel Giudice, Carmela, Carmen Vito, Gianrico Spagnuolo, Carlo Rengo, Alessandra Valletta, Ciro Menale, and Flavia Iaculli. 2026. "Wnt/β-Catenin Pathway and Hydraulic Calcium Silicate-Based Cements: A Narrative Review" Dentistry Journal 14, no. 5: 273. https://doi.org/10.3390/dj14050273
APA StyleDel Giudice, C., Vito, C., Spagnuolo, G., Rengo, C., Valletta, A., Menale, C., & Iaculli, F. (2026). Wnt/β-Catenin Pathway and Hydraulic Calcium Silicate-Based Cements: A Narrative Review. Dentistry Journal, 14(5), 273. https://doi.org/10.3390/dj14050273

