Research progress in heterogeneity of dental mesenchymal stem cells

Hanqi Fu , Peng Chen , Zuping Wu , Xiangwei Kong , Li Xu , Xinyi Fang , Chi Liao , Xinlei Yu , Qianming Chen , Xiaoyan Chen

International Journal of Oral Science ›› 2026, Vol. 18 ›› Issue (1) : 31

PDF
International Journal of Oral Science ›› 2026, Vol. 18 ›› Issue (1) :31 DOI: 10.1038/s41368-026-00433-8
Review Article
review-article
Research progress in heterogeneity of dental mesenchymal stem cells
Author information +
History +
PDF

Abstract

Dental tissues development involves two distinct cell lineages: mesenchymal cells (derived from the cranial neural crest) and epithelial cells (derived from oral ectoderm and pharyngeal epithelium). Emerging evidence highlights the remarkable functional heterogeneity of cranial neural crest-derived dental mesenchymal stem cells (DMSCs), exhibiting pluripotency, self-renewal, and differentiation capacities. This heterogeneity enables a single DMSC population to generate specialized subpopulations with unique roles in teeth and periodontal tissues formation. Significant progress has been made in characterizing six major types of DMSCs and two populations of closely related cells: Tooth germ progenitor cells (TGPCs) and dental follicle stem cells (DFSCs), critical during early morphogenesis; Stem cells from human exfoliated deciduous teeth (SHEDs) and apical papilla stem cells (SCAPs), pivotal for root development; Dental pulp stem cells (DPSCs), periodontal ligament stem cells (PDLSCs), gingival mesenchymal stem cells (GMSCs) and alveolar bone mesenchymal stem cells (ABMSCs), essential for maintaining and regenerating mature dental tissues. A key breakthrough has unveiled the development and hierarchy of DMSCs by applying new techniques like single-cell RNA sequencing (scRNA-seq). To integrate insights into the development of teeth and periodontal tissues, this review synthesizes current knowledge on both developmental heterogeneity and subpopulation heterogeneity within DMSCs and related cells. These insights not only advance fundamental understanding of the developmental mechanisms of teeth and periodontal tissues, but also establish a promising framework for achieving more efficient tissue regeneration and repair engineering.

Cite this article

Download citation ▾
Hanqi Fu, Peng Chen, Zuping Wu, Xiangwei Kong, Li Xu, Xinyi Fang, Chi Liao, Xinlei Yu, Qianming Chen, Xiaoyan Chen. Research progress in heterogeneity of dental mesenchymal stem cells. International Journal of Oral Science, 2026, 18(1): 31 DOI:10.1038/s41368-026-00433-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Yu T, Klein OD. Molecular and cellular mechanisms of tooth development, homeostasis and repair. Development, 2020, 147: dev184754

[2]

Hosoya A, Shalehin N, Takebe H, Shimo T, Irie K. Sonic Hedgehog Signaling and Tooth Development. Int J. Mol. Sci., 2020, 21: 1587

[3]

Lei T, Zhang X, Du H. Characteristics, Classification, and Application of Derived from Human Teeth. Stem Cells Int., 2021, 2021: 8886854

[4]

Liu J, et al. . Concise reviews: Characteristics and potential applications of human dental tissue-derived mesenchymal stem cells. Stem Cells, 2015, 33: 627-638

[5]

Zhai Q, Dong Z, Wang W, Li B, Jin Y. Dental stem cell and dental tissue regeneration. Front Med, 2019, 13: 152-159

[6]

Jing J, et al. . Spatiotemporal single-cell regulatory atlas reveals neural crest lineage diversification and cellular function during tooth morphogenesis. Nat. Commun., 2022, 13 4803

[7]

Yu T, Volponi AA, Babb R, An Z, Sharpe PT. Stem Cells in Tooth Development, Growth, Repair, and Regeneration. Curr. Top. Dev. Biol., 2015, 115: 187-212

[8]

Hayashi Y, Ohnuma K, Furue MK. Pluripotent Stem Cell Heterogeneity. Adv. Exp. Med Biol., 2019, 1123: 71-94

[9]

Paz AG, Maghaireh H, Mangano FG. Stem Cells in Dentistry: Types of Intra- and Extraoral Tissue-Derived Stem Cells and Clinical Applications. Stem Cells Int., 2018, 2018: 4313610

[10]

Wen L, Tang F. Single-cell sequencing in stem cell biology. Genome Biol., 2016, 17 71

[11]

Al Madhoun A, et al. . Dental Pulp Stem Cells Derived From Adult Human Third Molar Tooth: A Brief Review. Front Cell Dev. Biol., 2021, 9: 717624

[12]

Pagella P, de Vargas Roditi L, Stadlinger B, Moor AE, Mitsiadis TA. A single-cell atlas of human teeth. iScience, 2021, 24: 102405

[13]

Morsczeck C, Reichert TE. Dental stem cells in tooth regeneration and repair in the future. Expert Opin. Biol. Ther., 2018, 18: 187-196

[14]

Zhang X, Liu L. Applications of single cell RNA sequencing to research of stem cells. World J. Stem Cells, 2019, 11: 722-728

[15]

Zhang X, Caetano AJ, Sharpe PT, Volponi AA. Oral stem cells, decoding and mapping the resident cells populations. Biomater. Transl., 2022, 3: 24-30

[16]

Janebodin K, et al. . Isolation and characterization of neural crest-derived stem cells from dental pulp of neonatal mice. PLoS One, 2011, 6: e27526

[17]

Aydin S, Sahin F. Stem Cells Derived from Dental Tissues. Adv. Exp. Med. Biol., 2019, 1144: 123-132

[18]

Lacruz RS, Habelitz S, Wright JT, Paine ML. Dental Enamel Formation and Implications for Oral Health and Disease. Physiol. Rev., 2017, 97: 939-993

[19]

Mohabatpour F, Chen X, Papagerakis S, Papagerakis P. Novel trends, challenges and new perspectives for enamel repair and regeneration to treat dental defects. Biomater. Sci., 2022, 10: 3062-3087

[20]

Pandya M, Diekwisch TGH. Enamel biomimetics-fiction or future of dentistry. Int J. Oral. Sci., 2019, 11: 8

[21]

Ouchi T, Nakagawa T. Mesenchymal stem cell-based tissue regeneration therapies for periodontitis. Regen. Ther., 2020, 14: 72-78

[22]

Sui BD, et al. . Mesenchymal condensation in tooth development and regeneration: a focus on translational aspects of organogenesis. Physiol. Rev., 2023, 103: 1899-1964

[23]

Gu X, et al. . Profiling and functional characterization of long noncoding RNAs during human tooth development. Int J. Oral. Sci., 2025, 17: 38

[24]

Zhao Y, et al. . Single-cell RNA-seq of in vitro expanded cells from cranial neural crest reveals a rare odontogenic sub-population. Cell Prolif., 2024, 57: e13598

[25]

Yalvac ME, et al. . Isolation and characterization of stem cells derived from human third molar tooth germs of young adults: implications in neo-vascularization, osteo-, adipo- and neurogenesis. Pharmacogenomics J., 2010, 10: 105-113

[26]

Guo W, Fan Z, Wang S, Du J. ALK5 is essential for tooth germ differentiation during tooth development. Biotech. Histochem, 2019, 94: 481-490

[27]

Zhang R, et al. . Integrated multi-omics profiling characterizes the crucial role of human dental epithelium during tooth development. Cell Rep., 2025, 44: 115437

[28]

Zhaosong M, Na F, Shuling G, Jiacheng L, Ran W. Heterogeneity affects the differentiation potential of dental follicle stem cells through the TGF-beta signaling pathway. Bioengineered, 2021, 12: 12294-12307

[29]

Zeng L, et al. . Runx2 and Nell-1 in dental follicle progenitor cells regulate bone remodeling and tooth eruption. Stem Cell Res. Ther., 2022, 13: 486

[30]

Bi R, et al. . Function of Dental Follicle Progenitor/Stem Cells and Their Potential in Regenerative Medicine: From Mechanisms to Applications. Biomolecules, 2021, 11: 997

[31]

Morsczeck C, et al. . Isolation of precursor cells (PCs) from human dental follicle of wisdom teeth. Matrix Biol., 2005, 24: 155-165

[32]

Lima RL, et al. . Human dental follicle cells express embryonic, mesenchymal and neural stem cells markers. Arch. Oral. Biol., 2017, 73: 121-128

[33]

Nagata M, English JD, Ono N, Ono W. Diverse stem cells for periodontal tissue formation and regeneration. Genesis, 2022, 60: e23495

[34]

Nagata M, Chu AKY, Ono N, Welch JD, Ono W. Single-Cell Transcriptomic Analysis Reveals Developmental Relationships and Specific Markers of Mouse Periodontium Cellular Subsets. Front. Dent. Med., 2021, 2: 679937

[35]

Kotova AV, et al. . Comparative Analysis of Dental Pulp and Periodontal Stem Cells: Differences in Morphology, Functionality, Osteogenic Differentiation and Proteome. Biomedicines, 2021, 9: 1606

[36]

Sonoyama W, et al. . Characterization of the apical papilla and its residing stem cells from human immature permanent teeth: a pilot study. J. Endod., 2008, 34: 166-171

[37]

Li X, et al. . Development of immortalized Hertwig’s epithelial root sheath cell lines for cementum and dentin regeneration. Stem Cell Res Ther., 2019, 10: 3

[38]

Kang J, Fan W, Deng Q, He H, Huang F. Stem Cells from the Apical Papilla: A Promising Source for Stem Cell-Based Therapy. Biomed. Res. Int, 2019, 2019: 6104738

[39]

Sonoyama W, et al. . Mesenchymal stem cell-mediated functional tooth regeneration in swine. PLoS One, 2006, 1: e79

[40]

Liang J, et al. . A pilot study on biological characteristics of human CD24(+) stem cells from the apical papilla. J. Dent. Sci., 2022, 17: 264-275

[41]

Digka A, Gounari E, Kouzi-Koliakou K, Lyroudia K. Effect of Long-Term Cryopreservation on the Stemness of Stem Cells of Apical Papilla. Int J. Dent., 2022, 2022: 6004350

[42]

Nada OA, El Backly RM. Stem Cells From the Apical Papilla (SCAP) as a Tool for Endogenous Tissue Regeneration. Front Bioeng. Biotechnol., 2018, 6: 103

[43]

Lei T, Zhang X, Chen P, Li Q, Du H. Proteomic profile of human dental follicle stem cells and apical papilla stem cells. J. Proteom., 2021, 231: 103928

[44]

Liu Q, Gao Y, He J. Stem Cells from the Apical Papilla (SCAPs): Past, Present. Prospects, Chall. Biomedicines, 2023, 11: 2047

[45]

Wang H, Cao Y. WIF1 enhanced dentinogenic differentiation in stem cells from apical papilla. BMC Oral. Health, 2019, 19 25

[46]

Weng Y, et al. . A single-cell transcriptomic atlas of human stem cells from apical papilla during the committed differentiation. Int Endod. J., 2025, 58: 305-321

[47]

Songsaad AT, et al. . Characterization of neural stem cells derived from human stem cells from the apical papilla undergoing three-dimensional neurosphere induction. J. Appl Oral. Sci., 2023, 31: e20230209

[48]

Wang XT, Rao NQ, Fang TJ, Zhao YM, Ge LH. Comparison of the properties of CD146 positive and CD146 negative subpopulations of stem cells from human exfoliated deciduous teeth. Beijing Da Xue Xue Bao Yi Xue Ban., 2018, 50: 284-292

[49]

Kok ZY, et al. . Dental Pulp Stem Cell Heterogeneity: Finding Superior Quality “Needles” in a Dental Pulpal “Haystack” for Regenerative Medicine-Based Applications. Stem Cells In.t, 2022, 2022: 9127074

[50]

Delle Monache S, et al. . In Vitro Conditioning Determines the Capacity of Dental Pulp Stem Cells to Function as Pericyte-Like Cells. Stem Cells Dev., 2019, 28: 695-706

[51]

Marrelli M, et al. . Dental Pulp Stem Cell Mechanoresponsiveness: Effects of Mechanical Stimuli on Dental Pulp Stem Cell Behavior. Front Physiol., 2018, 9: 1685

[52]

Mun S, Kim SM, Choi M-J, Jang Y-J. Transcriptome Profile of Membrane and Extracellular Matrix Components in Ligament-Fibroblastic Progenitors and Cementoblasts Differentiated from Human Periodontal Ligament Cells. Genes, 2022, 13: 659

[53]

Luzuriaga J, et al. . Advances and Perspectives in Dental Pulp Stem Cell Based Neuroregeneration Therapies. Int J. Mol. Sci., 2021, 22: 3546

[54]

Pagella P, de Vargas Roditi L, Stadlinger B, Moor AE, Mitsiadis TA. Notch signaling in the dynamics of perivascular stem cells and their niches. Stem Cells Transl. Med, 2021, 10: 1433-1445

[55]

Oh M, Zhang Z, Mantesso A, Oklejas AE, Nor JE. Endothelial-Initiated Crosstalk Regulates Dental Pulp Stem Cell Self-Renewal. J. Dent. Res., 2020, 99: 1102-1111

[56]

Gronthos S, Mankani M, Brahim J, Robey PG, Shi S. Postnatal human dental pulp stem cells (DPSCs) in vitro and in vivo. Proc. Natl. Acad. Sci. USA, 2000, 97: 13625-13630

[57]

Lee S, et al. . Single-Cell RNA Sequencing Analysis of Human Dental Pulp Stem Cell and Human Periodontal Ligament Stem Cell. J. Endod., 2022, 48: 240-248

[58]

Nel S, Durandt C, Murdoch C, Pepper MS. Determinants of Dental Pulp Stem Cell Heterogeneity. J. Endod., 2022, 48: 1232-1240

[59]

Ren H, Wen Q, Zhao Q, Wang N, Zhao Y. Atlas of human dental pulp cells at multiple spatial and temporal levels based on single-cell sequencing analysis. Front. Physiol., 2022, 13: 993478

[60]

Lai CF, et al. . Nogo-A Regulates the Fate of Human Dental Pulp Stem Cells toward Osteogenic, Adipogenic, and Neurogenic Differentiation. Cells, 2022, 11: 3415

[61]

Bi R, et al. . A single-cell transcriptional atlas reveals resident progenitor cell niche functions in TMJ disc development and injury. Nat. Commun., 2023, 14 830

[62]

Cui Y, et al. . Single-cell characterization of monolayer cultured human dental pulp stem cells with enhanced differentiation capacity. Int J. Oral. Sci., 2021, 13: 44

[63]

Di T, et al. . Single-cell RNA sequencing reveals vascularization-associated cell subpopulations in dental pulp: PDGFRbeta+ DPSCs with activated PI3K/AKT pathway. Stem Cells, 2024, 42: 914-927

[64]

Ye G, et al. . ALKBH5 facilitates CYP1B1 mRNA degradation via m6A demethylation to alleviate MSC senescence and osteoarthritis progression. Exp. Mol. Med., 2023, 55: 1743-1756

[65]

Fu Y, et al. . Identification of GPI-anchored protein LYPD1 as an essential factor for odontoblast differentiation in tooth development. J. Biol. Chem., 2023, 299: 104638

[66]

Chen, S. et al. Loss of Bmp2 impairs odontogenesis via dysregulating pAkt/pErk/GCN5/Dlx3/Sp7. Res. Sq. https://doi.org/10.21203/rs.3.rs-3299295/v1 (2023).

[67]

Sasaki K, Suzuki S, Fahreza RR, Nemoto E, Yamada S. Dynamic changes in chromatin accessibility during the differentiation of dental pulp stem cells reveal that induction of odontogenic gene expression is linked with specific enhancer construction. J. Dent. Sci., 2024, 19: 1705-1713

[68]

Zhang Q, et al. . Chromatin Accessibility Predetermines Odontoblast Terminal Differentiation. Front Cell Dev. Biol., 2021, 9: 769193

[69]

Liu M, Goldman G, MacDougall M, Chen S. BMP Signaling Pathway in Dentin Development and Diseases. Cells, 2022, 11: 2216

[70]

Bayarsaihan D, Enkhmandakh B, Vijaykumar A, Robson P, Mina M. Single-cell transcriptome analysis defines mesenchymal stromal cells in the mouse incisor dental pulp. Gene Expr. Patterns, 2022, 43: 119228

[71]

Han Q, et al. . Nell-1 promotes the neural-like differentiation of dental pulp cells. Biochem Biophys. Res. Commun., 2019, 513: 515-521

[72]

Ferrarotti F, et al. . Human intrabony defect regeneration with micrografts containing dental pulp stem cells: A randomized controlled clinical trial. J. Clin. Periodontol., 2018, 45: 841-850

[73]

Matichescu A, et al. . Advanced Biomaterials and Techniques for Oral Tissue Engineering and Regeneration-A Review. Mater. (Basel), 2020, 13: 5303

[74]

Qian Y, et al. . DLP printed hDPSC-loaded GelMA microsphere regenerates dental pulp and repairs spinal cord. Biomaterials, 2023, 299: 122137

[75]

Yao L, et al. . Chronological and Replicative Aging of CD51( + )/PDGFR-α(+) Pulp Stromal Cells. J. Dent. Res, 2023, 102: 929-937

[76]

Zhang W, et al. . Single-cell atlas of dental pulp stem cells exposed to the oral bacteria Porphyromonas gingivalis and Enterococcus faecalis. Front Cell Dev. Biol., 2023, 11: 1166934

[77]

Irfan M, Chung S. C5L2 modulates BDNF production in human dental pulp stem cells via p38alpha pathway. Sci. Rep., 2023, 13 74

[78]

Irfan M, Kim JH, Druzinsky RE, Ravindran S, Chung S. Complement C5aR/LPS-induced BDNF and NGF modulation in human dental pulp stem cells. Sci. Rep., 2022, 12 2042

[79]

Seo BM, et al. . Investigation of multipotent postnatal stem cells from human periodontal ligament. Lancet, 2004, 364: 149-155

[80]

Zhang J, et al. . Dental Follicle Stem Cells: Tissue Engineering and Immunomodulation. Stem Cells Dev., 2019, 28: 986-994

[81]

Oka H, et al. . Subset of the periodontal ligament expressed leptin receptor contributes to part of hard tissue-forming cells. Sci. Rep., 2023, 13 3442

[82]

Zhang D, et al. . Lepr-Expressing PDLSCs Contribute to Periodontal Homeostasis and Respond to Mechanical Force by Piezo1. Adv. Sci. (Weinh.), 2023, 10: e2303291

[83]

Liu H, et al. . Periodontal Ligament Cell Apoptosis Activates Lepr+ Osteoprogenitors in Orthodontics. J. Dent. Res, 2024, 103: 937-947

[84]

Yi Y, Liu Y, Men Y, Wang J, Zhao H. Advances in periodontal stem cells and the regulating niche: From in vitro to in vivo. Genesis, 2022, 60: e23494

[85]

Zhang JC, Song ZC, Xia YR, Shu R. Extracellular matrix derived from periodontal ligament cells maintains their stemness and enhances redifferentiation via the wnt pathway. J. Biomed. Mater. Res. A, 2018, 106: 272-284

[86]

Zheng Y, Li X, Huang Y, Jia L, Li W. Time series clustering of mRNA and lncRNA expression during osteogenic differentiation of periodontal ligament stem cells. PeerJ, 2018, 6: e5214

[87]

Zhang YY, et al. . Single cell RNA sequencing reveals mesenchymal heterogeneity and critical functions of Cd271 in tooth development. World J. Stem Cells, 2023, 15: 589-606

[88]

Wen W, et al. . Osteogenic mesenchymal stem cells/progenitors in the periodontium. Oral. Dis., 2023, 30: 914-920

[89]

Roato I, Chinigo G, Genova T, Munaron L, Mussano F. Oral Cavity as a Source of Mesenchymal Stem Cells Useful for Regenerative Medicine in Dentistry. Biomedicines, 2021, 9: 1085

[90]

Soudi A, et al. . Role and application of stem cells in dental regeneration: A comprehensive overview. EXCLI J., 2021, 20: 454-489

[91]

Queiroz A, et al. . Therapeutic potential of periodontal ligament stem cells. World J. Stem Cells, 2021, 13: 605-618

[92]

Tomokiyo A, Wada N, Maeda H. Periodontal Ligament Stem Cells: Regenerative Potency in Periodontium. Stem Cells Dev., 2019, 28: 974-985

[93]

Lin W, et al. . Mapping the immune microenvironment for mandibular alveolar bone homeostasis at single-cell resolution. Bone Res, 2021, 9: 17

[94]

Li TQ, Meng XB, Shi Q, Zhang T. [Research progress in biological characteristics and influencing factors of jaw bone marrow mesenchymal stem cell]. Zhonghua Kou Qiang Yi Xue Za Zhi, 2022, 57: 107-112

[95]

Liu J, Watanabe K, Dabdoub SM, Lee BS, Kim DG. Site-specific characteristics of bone and progenitor cells in control and ovariectomized rats. Bone, 2022, 163: 116501

[96]

Jin A, et al. . ScRNA-Seq Reveals a Distinct Osteogenic Progenitor of Alveolar Bone. J. Dent. Res, 2023, 102: 645-655

[97]

Zong C, Zhao L, Huang C, Chen Y, Tian L. Isolation and Culture of Bone Marrow Mesenchymal Stem Cells from the Human Mandible. J. Vis. Exp., 2022, 182: e63811

[98]

Hong Y, et al. . Isolation and Cultivation of Mandibular Bone Marrow Mesenchymal Stem Cells in Rats. J. Vis. Exp., 2020, 162: e61532

[99]

Chen X, et al. . Mechanical stretch-induced osteogenic differentiation of human jaw bone marrow mesenchymal stem cells (hJBMMSCs) via inhibition of the NF-kappaB pathway. Cell Death Dis., 2018, 9 207

[100]

Cao W, et al. . miR-344d-3p regulates osteogenic and adipogenic differentiation of mouse mandibular bone marrow mesenchymal stem cells. PeerJ, 2023, 11: e14838

[101]

Zhang W, et al. . Cathepsin K deficiency promotes alveolar bone regeneration by promoting jaw bone marrow mesenchymal stem cells proliferation and differentiation via glycolysis pathway. Cell Prolif., 2021, 54: e13058

[102]

Jin Y, et al. . MicroRNA-145 suppresses osteogenic differentiation of human jaw bone marrow mesenchymal stem cells partially via targeting semaphorin 3 A. Connect Tissue Res, 2020, 61: 577-585

[103]

Miura M, et al. . SHED: stem cells from human exfoliated deciduous teeth. Proc. Natl. Acad. Sci. USA, 2003, 100: 5807-5812

[104]

Kunimatsu R, et al. . Bone Differentiation Ability of CD146-Positive Stem Cells from Human Exfoliated Deciduous Teeth. Int J. Mol. Sci., 2023, 24: 4048

[105]

Bergamo MT, Zhang Z, Oliveira TM, Nor JE. VEGFR1 primes a unique cohort of dental pulp stem cells for vasculogenic differentiation. Eur. Cell Mater., 2021, 41: 332-344

[106]

Rikitake K, et al. . Effect of CD146( + ) SHED on bone regeneration in a mouse calvaria defect model. Oral. Dis., 2023, 29: 725-734

[107]

Ishiy FAA, et al. . CD105 is regulated by hsa-miR-1287 and its expression is inversely correlated with osteopotential in SHED. Bone, 2018, 106: 112-120

[108]

Fawzy El-Sayed KM, et al. . Toll-like receptor expression profile of stem/progenitor cells from human exfoliated deciduous teeth. Int J. Paediatr. Dent., 2023, 33: 607-614

[109]

Fawzy El-Sayed KM, Dorfer CE. Gingival Mesenchymal Stem/Progenitor Cells: A Unique Tissue Engineering Gem. Stem Cells Int., 2016, 2016: 7154327

[110]

Zhang Q, et al. . Mesenchymal stem cells derived from human gingiva are capable of immunomodulatory functions and ameliorate inflammation-related tissue destruction in experimental colitis. J. Immunol., 2009, 183: 7787-7798

[111]

Kim D, Lee AE, Xu Q, Zhang Q, Le AD. Gingiva-Derived Mesenchymal Stem Cells: Potential Application in Tissue Engineering and Regenerative Medicine - A Comprehensive Review. Front Immunol., 2021, 12: 667221

[112]

Fonticoli L, et al. . A Narrative Review: Gingival Stem Cells as a Limitless Reservoir for Regenerative Medicine. Int J. Mol. Sci., 2022, 23: 4135

[113]

Al-Qadhi G, Aboushady I, Al-Sharabi N. The Gingiva from the Tissue Surrounding the Bone to the Tissue Regenerating the Bone: A Systematic Review of the Osteogenic Capacity of Gingival Mesenchymal Stem Cells in Preclinical Studies. Stem Cells Int., 2021, 2021: 6698100

[114]

Dave JR, et al. . Human gingival mesenchymal stem cells retain their growth and immunomodulatory characteristics independent of donor age. Sci. Adv., 2022, 25: eabm6504

[115]

Grawish ME. Gingival-derived mesenchymal stem cells: An endless resource for regenerative dentistry. World J. Stem Cells, 2018, 10: 116-118

[116]

Tolouei AE, et al. . Gingival mesenchymal stem cell therapy, immune cells, and immunoinflammatory application. Mol. Biol. Rep., 2023, 50: 10461-10469

[117]

Wu W, et al. . B7-H1 Promotes the Functional Effect of Human Gingiva-Derived Mesenchymal Stem Cells on Collagen-Induced Arthritis Murine Model. Mol. Ther., 2020, 28: 2417-2429

Funding

National Natural Science Foundation of China (National Science Foundation of China)(82571128)

Natural Science Foundation of Zhejiang Province (Zhejiang Provincial Natural Science Foundation)(LR26H140001)

RIGHTS & PERMISSIONS

The Author(s)

PDF

2

Accesses

0

Citation

Detail

Sections
Recommended

/