Mesenchymal Stem Cells in Oral and Maxillofacial Surgery: A Systematic Review of Clinical Applications and Regenerative Outcomes
Abstract
:1. Introduction
1.1. Regeneration with Mesenchymal Stem Cells
1.2. Stem Cells: Classification and Biological Properties
1.3. Mesenchymal Stem Cells (MSCs)
1.4. Bone Marrow-Derived Stem Cells (BMSCs)
1.5. Adipose-Derived Stem Cells (ADSCs)
1.6. Stem Cell-Based Approaches in Maxillofacial and Oral Surgery
2. Materials and Methods
2.1. Protocol and Registration
2.2. Search Processing
2.3. Inclusion Criteria
- Focus on stem cell applications in maxillofacial and oral surgery;
- Types of studies: randomized controlled trials, retrospective research, case–control studies, case series, and prospective studies;
- Studies published in English;
- Full-text availability.
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- Participants: Human patients receiving MSC-based regenerative therapies specifically within the field of oral and maxillofacial surgery;
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- Interventions: Application of MSCs derived from various sources (e.g., bone marrow, dental pulp, adipose tissue);
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- Comparison: conventional regenerative approaches or no treatment controls, when applicable;
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- Outcomes: Quantitative and qualitative evaluation of regenerative outcomes, including bone/soft tissue formation, clinical integration, and safety/adverse events;
- -
- Study Design: Prospective and retrospective clinical studies, including RCTs and controlled case series.
2.4. Exclusion Criteria
- Animal studies;
- Studies on unrelated topics;
- Review articles, letters, or commentaries;
- Studies published in languages other than English.
2.5. Data Processing
2.6. Quality Assessment
- Confounding bias;
- Bias related to exposure measurement;
- Bias in participant selection;
- Bias from post-exposure interventions;
- Bias resulting from missing data;
- Bias from outcome measurement;
- Bias in reporting the results.
3. Results
3.1. Study Selection and Methodological Features
3.2. Quality Assessment and Risk of Bias
4. Discussion
5. Limitations
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
Abbreviations
ADSCs | Adipose-derived stem cells |
AMSCs | Autologous mesenchymal stem cells |
BFSCs | Buccal fat pad-derived MSCs |
BMNc | Bone marrow nucleated cells |
BMSCs | Bone marrow stem cells |
CD133+/KDR+ | Cell surface markers for endothelial progenitor cells (CD133 and KDR) |
DMSO | Dimethyl sulfoxide |
EPC | Endothelial progenitor cell |
HA | Hyaluronic acid |
L-PRF | Platelet-rich fibrin |
MPCs | Multopotent progenitor cells |
MSCs | Mesenchymal stem cell |
TMJ | Temporomandibular joint |
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Database | Search String |
---|---|
PubMed | (“stem cells” OR “mesenchymal stem cells” OR “bone marrow-derived stem cells” OR “adipose-derived stem cells”) AND (“maxillofacial” OR “craniofacial” OR “oral surgery”) |
Scopus | (“stem cells” OR “mesenchymal stem cells” OR “bone marrow-derived stem cells” OR “adipose-derived stem cells”) AND (“maxillofacial” OR “craniofacial” OR “oral surgery”) |
Web of Science | (“stem cells” OR “mesenchymal stem cells” OR “bone marrow-derived stem cells” OR “adipose-derived stem cells”) AND (“maxillofacial” OR “craniofacial” OR “oral surgery”) |
Author (Year) | Study Design | Number of Patients | Average Age and Gender | Stem Cells Used | Outcomes |
---|---|---|---|---|---|
De Riu et al., 2018 [111] | RCT | 30 | Not Specified | BMNc | Pain relief, better chewing, increased mouth opening at 6–12 months. |
Isola et al., 2019 [112] | Observational study | 167 | Not specified | Endothelial Progenitor Cells | Lower EPCs linked to worse periodontal disease. |
Castillo-Cardiel et al. (2016) [113] | Randomized clinical trial | 20 (10 per group) | 31.2 ± 6.3 years (study group), 29.7 ± 7.2 years (control group), all male | Autologous MSCs (AMSCs) | Improved bone quality; 36.48% higher ossification at 12 weeks. |
Bajestan et al. (2017) [114] | Randomized controlled clinical trial | 18 (10 with trauma, 8 with cleft palate) | Not specified | Bone marrow-derived MSCs | Less bone gain; 5/10 implant success in stem cell group. |
Yan et al. (2020) [115] | Experimental laboratory study | 10 healthy children (aged 10–15 years) | Not specified | DPSCs isolated from dental pulp tissue of extracted third molars. | Cryopreservation slightly delayed cell outgrowth, no major functional impact. |
Shimizu et al. (2019) [116] | Randomized controlled trial | 29 patients | Patients aged 20+ years | BM-MSCs derived from iliac crest bone marrow | Successful bone regeneration (CT ≥ 400, height > 10 mm). |
Khatri et al., 2017 [117] | Sperimental study | 10 | 9 Female and 5 male | T-MPCs (tonsil-derived mesenchymal progenitor cells) | Tonsils as viable stem cell source for research/clinical use. |
Gjerde et al., 2018 [118] | Clinical trial | 11 patients | 52–79 years | Bone marrow-derived MSCs | New bone formation without adverse effects. |
Khojasteh et al. (2017) [119] | Prospective randomized clinical trial. | Ten patients | Four adult patients (20–29 years old) and six pediatric patients (8–14 years old) 3 female | MSCs derived from the buccal fat pad (BFP) | Enhanced regeneration, reduced resorption with scaffold. |
Cubuk et al. (2022) [120] | Split-mouth RCT | 13 patients | 23.6 ± 4.4 years; 7F, 6M | DPSCs | Both groups improved; no difference with or without DPSCs. |
Redondo et al., 2018 [121] | RCT | 9 patients | 38 ± 5 years (7F, 2M) | Autologous bone-derived mesenchymal stem cells | Bone density increased, no rejection, effective regeneration. |
Kaigler et al., 2015 [122] | RCT | 26 patiens | Not specified | Autologous bone marrow-derived cells enriched with CD90+ stem cells and CD14+ monocytes | Higher bone volume; successful implants; no adverse events. |
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Dipalma, G.; Marinelli, G.; Palumbo, I.; Guglielmo, M.; Riccaldo, L.; Morolla, R.; Inchingolo, F.; Palermo, A.; Inchingolo, A.D.; Inchingolo, A.M. Mesenchymal Stem Cells in Oral and Maxillofacial Surgery: A Systematic Review of Clinical Applications and Regenerative Outcomes. J. Clin. Med. 2025, 14, 3623. https://doi.org/10.3390/jcm14113623
Dipalma G, Marinelli G, Palumbo I, Guglielmo M, Riccaldo L, Morolla R, Inchingolo F, Palermo A, Inchingolo AD, Inchingolo AM. Mesenchymal Stem Cells in Oral and Maxillofacial Surgery: A Systematic Review of Clinical Applications and Regenerative Outcomes. Journal of Clinical Medicine. 2025; 14(11):3623. https://doi.org/10.3390/jcm14113623
Chicago/Turabian StyleDipalma, Gianna, Grazia Marinelli, Irene Palumbo, Mariafrancesca Guglielmo, Lilla Riccaldo, Roberta Morolla, Francesco Inchingolo, Andrea Palermo, Alessio Danilo Inchingolo, and Angelo Michele Inchingolo. 2025. "Mesenchymal Stem Cells in Oral and Maxillofacial Surgery: A Systematic Review of Clinical Applications and Regenerative Outcomes" Journal of Clinical Medicine 14, no. 11: 3623. https://doi.org/10.3390/jcm14113623
APA StyleDipalma, G., Marinelli, G., Palumbo, I., Guglielmo, M., Riccaldo, L., Morolla, R., Inchingolo, F., Palermo, A., Inchingolo, A. D., & Inchingolo, A. M. (2025). Mesenchymal Stem Cells in Oral and Maxillofacial Surgery: A Systematic Review of Clinical Applications and Regenerative Outcomes. Journal of Clinical Medicine, 14(11), 3623. https://doi.org/10.3390/jcm14113623