The Potential of Different Origin Stem Cells in Modulating Oral Bone Regeneration Processes
Abstract
:1. Introduction
2. Types of Stem Cells Used in Regenerative Medicine
2.1. Embryonic Stem Cells (ESCs)
2.2. Mesenchymal Stem Cells (MSCs)
2.3. Induced Pluripotent Stem Cells (iPSCs)
3. Stem Cells-Based Scaffold-Free Bone Regeneration
4. The Osteogenic Potential of Stem Cells and Its Correlation with Various Pathologies—Focus on Mesenchymal Stem Cells
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Type of Stem Cells | Source | Harvesting Discomfort | Standardization—Study Level | Osteogenic Potential | Self-Renewal Capacity | Costs | Ethical Conflict | Availability | Translational Level | Ref. |
---|---|---|---|---|---|---|---|---|---|---|
ESC | Blastocyst | N/A | + | +++ | +++ | +++ | +++ | + | + | [70,71,72] |
BM-MSC | Bone marrow from iliac crest, jaw, maxilla | +++ | +++ | ++ | + | ++ | ++ | + | ++ | [73] |
PDLSC | Periodontal ligaments (wisdom teeth) | ++ | + | + | +++ | + | + | + | + | [74,75,76] |
DPMSC | Dental pulp from primary or permanent teeth | + | ++ | + | + | + | ++ | + | +++ | [76,77] |
GMSC | Connective tissue from gingiva | + | + | + | ++ | + | +++ | + | ++ | [77,78] |
iPSC | Adult cells, especially gingival fibroblasts | + | + | ++ | + | +++ | ++ | +++ | + | [70,71,72,79,80] |
Condition | Type of Stem Cell | Effect | Ref |
---|---|---|---|
High glucose | PDL-MSC | Suppressed proliferation and differentiation into osteoblasts | [109] |
High glucose | DPSCs | Impaired proliferation and differentiation | [110] |
Inflammation | BM-MSCs | Enhanced capacity | [28] |
Inflammatory conditions | PDLSCs | Impaired osteogenic differentiation | |
Inflammatory conditions | BM-MSCs | Normal osteogenic capacity | |
Inflammation | BM-MSCs coupled with titanium implants | Stimulated bone formation but disorganized tissue | [111] |
Inflammation | DPSCs | Anti-inflammatory effect | [41] |
Inflammation—NFkB expression | DPSCs | Down-regulated NfKB signalling lead to increased osteogenic potential | [112] |
Infection with Porphyromonas gingivalis | PDL-MSC | Osteoblastic differentiation and promotion of pro-inflammatory cytokine production | [113] |
Exposure to lipopolysaccharides | PDL-MSC | Does not affect stem cell markers | [114] |
Bone loss in lupus erythematosus | BMMSCs | Systemic administration reduced Il-17 level and recovered bone loss | [115] |
DPSCs | Recovered bone loss | ||
Autoimmunity | DPSCs | Increased Tregs and decreased TH17; are capable of osteogenic differentiation | [116,117] |
BM-MSCs | Osteogenesis |
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Buduru, S.D.; Gulei, D.; Zimta, A.-A.; Tigu, A.B.; Cenariu, D.; Berindan-Neagoe, I. The Potential of Different Origin Stem Cells in Modulating Oral Bone Regeneration Processes. Cells 2019, 8, 29. https://doi.org/10.3390/cells8010029
Buduru SD, Gulei D, Zimta A-A, Tigu AB, Cenariu D, Berindan-Neagoe I. The Potential of Different Origin Stem Cells in Modulating Oral Bone Regeneration Processes. Cells. 2019; 8(1):29. https://doi.org/10.3390/cells8010029
Chicago/Turabian StyleBuduru, Smaranda Dana, Diana Gulei, Alina-Andreea Zimta, Adrian Bogdan Tigu, Diana Cenariu, and Ioana Berindan-Neagoe. 2019. "The Potential of Different Origin Stem Cells in Modulating Oral Bone Regeneration Processes" Cells 8, no. 1: 29. https://doi.org/10.3390/cells8010029
APA StyleBuduru, S. D., Gulei, D., Zimta, A. -A., Tigu, A. B., Cenariu, D., & Berindan-Neagoe, I. (2019). The Potential of Different Origin Stem Cells in Modulating Oral Bone Regeneration Processes. Cells, 8(1), 29. https://doi.org/10.3390/cells8010029