[1] Yang M, Zhang H, Gangolli R. Advances of mesenchymal stem cells derived from bone marrow and dental tissue in craniofacial tissue engineering[J]. Curr Stem Cell Res Ther, 2014, 9(3):150-161. [2] Ward BB, Brown SE, Krebsbach PH. Bioengineering strategies for regeneration of craniofacialbone: a review of emerging technologies[J]. Oral Dis, 2010, 16(8):709-716. [3] Graziano A, d'Aquino R, Laino G, et al. Dental pulp stem cells: a promising tool for bone regeneration[J]. Stem Cell Rev, 2008, 4(1):21-26. [4] Morad G, Kheiri L, Khojasteh A. Dental pulp stem cells for in vivo bone regeneration: a systematic review of literature[J]. Arch Oral Biol, 2013, 58(12):1818-1827. [5] Machado E, Fernandes MH, Gomes PDS. Dental stem cells for craniofacial tissue engineering[J]. Oral Surg Oral Med Oral Pathol Oral Radiol, 2012, 113(6):728-733. [6] Kawashima N. Characterisation of dental pulp stem cells: A new horizon for tissue regeneration[J]? Arch Oral Biol, 2012, 57(11):1439-1458. [7] Aurrekoetxea M, Garcia-Gallastegui P, Irastorza I, et al. Dental pulp stem cells as a multifaceted tool for bioengineering and the regeneration ofcraniomaxillofacial tissues[J]. Front Physiol, 2015, 6:289. [8] Gronthos S, Mankani M, Brahim J, et al. Postnatal human dental pulp stem cells (DPSCs) in vitro and in vivo[J]. Proc Natl Acad SciUSA, 2000, 97(25):13625-13630. [9] GronthosS, Brahim J, Li W, et al. Stem cell properties of human dental pulp stem cells[J]. J Dent Res, 2002, 81(8):531-535. [10] Wakayama H, Hashimoto N, Matsushita Y, et al. Factors secreted from dental pulp stem cells show multifaceted benefits for treating acute lung injury in mice[J]. Cytotherapy, 2015, 17(8):1119-1129. [11] Pierdomenico L, Bonsi L, Calvitti M, et al. Multipotent mesenchymal stem cells with immunosuppressive activity can be easily isolated from dental pulp[J]. Transplantation, 2005, 80(6):836-842. [12] Laino G, d'Aquino R, Graziano A, et al. A new population of human adult dental pulp stem cells: a useful source of living autologous fibrous bone tissue(LAB)[J]. J Bone Miner Res, 2005, 20(8):1394-1402. [13] d'Aquino R, Graziano A, Sanpaolesi M, et al. Human postnatal dental pulp cells co-differentiate into osteoblasts and endothelialcytes: a pivotal synergy leading to adult bone tissue formation [J]. Cell Death Differ, 2007, 14(6):1162-1171. [14] Zhang W, Walboomers XF, Shi S, et al. Multilineage differentiation potential of stem cells derived from human dental pulp after cryopreservation[J]. Tissue Eng, 2006, 12(10):2813-2823. [15] Iohara K, Zheng L, Ito M, et al. Side population cells Isolated from porcine dental pulp tissue with self-renewal and multipotency for dentinogenesis, chondrogenesis, adipogenesis, and neurogenesis[J]. Stem Cells, 2006, 24(11):2493-2503. [16]Armiñán A, Gandía C, Bartual M,et al. Cardiac differentiation is driven by NKX2.5 and GATA4 nuclear translocation in tissue-specific mesenchymal stem cells[J]. Stem Cells Dev, 2008, 18(6):907-918 [17]Stevens A, Zuliani T, Olejnik C, et al. Human dental pulp stem cells differentiate into neural crest-derived melanocytes and have label-retaining and sphere-forming abilities[J]. Stem CellsDev, 2008, 17(6):1175-1184. [18] Ishkitiev N, Yaegaki K, CalenicB, et al. Deciduous and permanent dental pulp mesenchymal cells acquire hepatic morphologic and functional features in vitro [J]. J Endod, 2010, 36(3):469-474. [19] Govindasamy V, Ronald VS, Abdullah AN, et al. Differentiation of dental pulp stem cells into islet-like aggregates [J].J Dent Res, 2011, 90(5):646-652. [20] Yu J, He H, Tang C, et al. Differentiation potential of STRO-1+ dental pulp stem cells changes during cell passaging[J]. BMC Cell Biol, 2010, 11(121):32 [21] Alge DL, Zhou D, Adams L L, et al. Donor-matched comparison of dental pulp stem cells and bone marrow-derived mesenchymal stem cells in a rat model[J]. J Tissue Eng Regen Med, 2010, 4(1):73-81. [22] Mori G, Brunetti G, Oranger A, et al. Dental pulp stem cells: osteogenic differentiation and gene expression[J]. Ann N Y Acad Sci, 2011, 1237:47-52. [23] Pilipchuk SP, Plonka AB, Monje A, et al. Tissue engineering for bone regeneration and osseointegration in the oral cavity[J]. Dent Mater, 2015, 31(4):317-338. [24] Rakian A, Yang WC, Gluhak-Heinrich J, et al. Bone morphogenetic protein-2 gene controls tooth root development in coordination with formation of the periodontium[J]. IntJOral Sci, 2013, 5(2):75-84. [25] Yang X, van der Kraan PM, Bian Z, et al. Mineralized tissue formation by BMP2-transfected pulp stem cells[J]. J Dent Res, 2009, 88(11):1020-1025. [26] Wozney JM. The bone morphogenetic protein family and osteogenesis[J]. Mol Reprod Dev, 1992, 32(2):160-167. [27] Yang X, Han G, Pang X, et al. Chitosan/collagen scaffold containing bone morphogenetic protein-7 DNA supports dental pulp stem cell differentiation in vitro and in vivo[J]. J Biomed Mater Res A, 2012. doi: 10.1002/jbm.a.34064. [28] Feng X, Feng G, Xing J, et al. TNF-α triggers osteogenic differentiation of human dental pulp stem cells via the NF-κB signalling pathway[J]. Cell Biol Int, 2013, 37(12):1267-1275. [29] Qin Z, Fang Z, Zhao L, et al. High dose of TNF-α suppressed osteogenic differentiation of human dental pulp stem cells by activating the Wnt/β-catenin signaling[J]. JMolHistol, 2015, 46(4-5):409-420. [30] Qian J,Jiayuan W, Wenkai J, et al. Basic fibroblastic growth factor affects the osteogenic differentiation of dental pulp stem cells in a treatment-dependent manner[J]. Int Endod J, 2015, 48(7):690-700 [31] Del Angel-Mosqueda C, Gutiérrez-Puente Y, López-Lozano AP, et al. Epidermal growth factor enhances osteogenic differentiation of dental pulp stem cells in vitro[J]. HeadFace Med, 2015, 11(1):1-9. [32] Feng X, Huang D, Lu X, et al. Insulin-like growth factor 1 can promote proliferation and osteogenic differentiation of human dental pulp stem cells via mTOR pathway[J]. DevGrowth Differ, 2014, 56(9):615-624. [33] Amir LR, Suniarti DF, Utami S, et al. Chitosan as a potential osteogenic factor compared with dexamethasone in cultured macaque dental pulp stromal cells[J]. Cell Tissue Res, 2014, 358(2):407-415. [34]Kanafi MM1, Ramesh A, Gupta P K, et al. Dental pulp stem cells immobilized in alginate microspheres for applications in bone tissue engineering[J]. Int Endod J, 2014, 47(7):687-697. [35] Otaki S, Ueshima S, Shiraishi K, et al. Mesenchymal progenitor cells in adult human dental pulp and their ability to form bone when transplanted into immunocompromised mice[J]. Cell Biol Int, 2007, 31(10):1191-1197. [36] Zhang W, Walboomers XF, van Osch GJ, et al. Hard tissue formation in a porous HA/TCP ceramic scaffoldloaded with stromal cells derived from dental pulp and bone marrow [J]. Tissue Eng Part A, 2008, 14(2): 285-294. [37] Asutay F, Polat S, Gül M, et al. The effects of dental pulp stem cells on bone regeneration in rat calvarial defect model: Micro-computed tomography and histomorphometric analysis [J]. ArchOral Biol, 2015, 60(12):1729-1735. [38] Xavier Acasigua GA, Bernardi L, Braghirolli DI, et al. Nanofiber scaffolds support bone regeneration associated with pulp stem cells[J]. Curr Stem Cell Res Ther, 2014, 9(4):330-337. [39] Riccio M, Maraldi T, Pisciotta A, et al. Fibroin scaffold repairs critical-size bone defects in vivo supported by human amniotic fluid and dental pulp stem cells[J]. Tissue Eng Part A, 2012, 18(9-10):1006-1013. [40] Galler KM, Cavender A, Yuwono V, et al. Self-assembling peptide amphiphile nanofibers as a scaffold for dental stem cells[J]. Tissue EngPart A, 2008, 14(12):2051-2058. [41] El-Gendy R, Yang XB, Newby PJ, et al. Osteogenic differentiation of human dental pulp stromal cells on 45S5 Bioglass? based scaffolds in vitro and in vivo[J]. Tissue Eng Part A, 2013, 19(5-6):707-715. [42] Mangano C, Paino F, d'Aquino R, et al. Human dental pulp stem cells hook into biocoral scaffold forming an engineered biocomplex[J]. PLoS One, 2011, 6(4):e18721. [43] Riccio M, Resca E, Maraldi T, et al. Human dental pulp stem cells produce mineralized matrix in 2D and 3D cultures[J]. Eur J Histochem, 2010, 54(4):213-221. [44] Lee JY, Nam H, Park YJ, et al. The effects of platelet-rich plasma derived from human umbilical cord blood on the osteogenicdifferentiation of human dental stem cells [J].In Vitro Cell Dev Biol Anim, 2011, 47(2):157-164. [45] Kanafi MM, Ramesh A, Gupta PK, et al. Dental pulp stem cells immobilized in alginate microspheres for applications in bone tissue engineering[J]. Int Endod J, 2014, 47(7):687-697. [46] Hsu SH, Chang JC. The static magnetic field accelerates the osteogenic differentiation and mineralization of dental pulp cells[J]. Cytotechnology, 2010, 62(2):143-155. [47] Huang CH, Tseng WY, Yao CC, et al. Glucosamine promotes osteogenic differentiation of dental pulp stem cells through modulating the level of the transforming growth factor-beta type I receptor[J]. J Cell Physiol, 2010, 225(1):140-151. [48] Wang P, Wei X, Zhang F, et al. Ginsenoside Rg1 of Panax ginseng stimulates the proliferation, odontogenic/osteogenic differentiation and gene expression profiles of human dental pulp stem cells[J]. Phytomedicine, 2014, 21(2):177-183. [49] Kerkis I, Kerkis A, Dozortsev D, et al. Isolation and Characterization of a population of immature dental pulp stem cells expressing OCT-4 and other embryonic stem cell markers[J]. Cells Tissues Organs, 2006, 184(3-4):105-116. [50]Hakki SS, Kayis SA, Hakki EE, et al. Comparison of mesenchymal stem cells isolated from pulp and periodontal ligament[J]. J Periodontol, 2015, 86(2):283-291. [51] Wang Z, Pan J, Wright JT, et al. Putative stem cells in human dental pulp with irreversible pulpitis: an exploratory study[J]. J Endod, 2010, 36(5):820-825. [52] Huang GT, Sonoyama W, Chen J, et al. In vitro characterization of human dental pulp cells: various isolation methods and culturing environments[J]. CellTissue Res, 2006, 324(2):225-236. [53] Alge DL, Zhou D, Adams LL, et al. Donor-matched comparison of dental pulp stem cells and bone marrow-derived mesenchymal stem cells in a rat model[J]. J Tissue Eng Regen Med, 2010, 4(1):73-81. [54] d'Aquino R, De Rosa A, Laino G, et al. Human dental pulp stem cells: from biology to clinical applications[J]. J Exp Zool B Mol Dev Evol, 2009, 312B(5):408-415. [55] Mead B, Logan A, Berry M, et al. Paracrine-mediated neuroprotection and neuritogenesis of axotomised retinal ganglion cells by human dental pulp stem cells: comparison with human bone marrow and adipose-derived mesenchymal stem cells[J]. PLoS One, 2014, 9(10):e109305-e109305. [56] Liu HC, ELL, Wang DS, et al. Reconstruction of alveolar bone defects using bone morphogenetic protein 2 mediated rabbit dental pulp stem cells seeded on nano-hydroxyapatite/collagen/poly(L-lactide)[J]. Tissue Eng Part A, 2011, 17(19-20):2417-2433. [57] Khorsand A, Eslaminejad M B, Arabsolghar M, et al. Autologous dental pulp stem cells in regeneration of defect created in canine periodontal tissue[J]. J Oral Implantol, 2013, 39(4):433-43. [58] Lee C H, Hajibandeh J, Suzuki T, et al. Three-dimensional printed multiphase scaffolds for regeneration of periodontium complex[J]. Tissue EngPart A, 2014, 20(7-8):1342-1351. [59] 吴中明, 木合塔尔·霍加, 买布拜木·买买提依明, 等. 牙髓干细胞在实验兔牙槽骨缺损修复中的作用研究[J]. 中华细胞与干细胞杂志(电子版), 2015, 5(3):25-29. [60] d'Aquino R, De Rosa A, Lanza V, et al. Human mandible bone defect repair by the grafting of dental pulp stem/progenitor cells and collagen sponge biocomplexes[J]. Eur Cell Mater, 2009, 18:75-83. [61] Giuliani A, Manescu A, Langer M, et al. Three years after transplants in human mandibles, histological and in-line holotomography revealed that stem cells regenerated a compact rather than a spongy bone: biological and clinical implications[J]. Stem Cells Transl Med, 2013, 2(4):316-324. [62] Aimetti M, Ferrarotti F, Cricenti L, et al. Autologous dental pulp stem cells in periodontal regeneration: a case report[J]. Int J of Periodontics Restorative Dent, 2014, 34 Suppl 3(1):s27-33. [63] Brunelli G, Motroni A, Graziano A, et al. Sinus lift tissue engineering using autologous pulp micro-grafts: A case report of bone density evaluation[J]. J Indian Soc Periodontol, 2013, 17(5):644-647. [64] Hibi H. Clinical review of bone regenerative medicine and maxillomandibular reconstruction[J]. Oral Science International, 2015, 13(1):15-19. |