Ortodontik Diş Hareketi ve Kök Rezorpsiyonunda Kök Hücre Kullanımı

Özet

Referanslar

Polak JM, Bishop AE. Stem Cells and Tissue Engineering: Past, Present, and Future. Annals of the New York Academy of Sciences. 2006 Apr;1068(1):352-66.

Daruwala, N., S. Mahadevia, and P. R. Paneriya. "Stem cells: The future of dentistry." JADCH 1 (2010): 12-17.

Martin‐Rendon E, Watt SM. Stem cell plasticity. Br J Haematol. 2003 Sep;122(6):877-91.

Wobus AM. Potential of embryonic stem cells. Molecular Aspects of Medicine. 2001 Jun;22(3):149-64.

Al-Nbaheen M, Vishnubalaji R, Ali D, et al. Human Stromal (Mesenchymal) Stem Cells from Bone Marrow, Adipose Tissue and Skin Exhibit Differences in Molecular Phenotype and Differentiation Potential. Stem Cell Rev and Rep. 2013 Feb;9(1):32-43.

Pittenger MF, Mackay AM, Beck SC, et al. Multilineage Potential of Adult Human Mesenchymal Stem Cells. Science. 1999 Apr 2;284(5411):143-7.

Dieterlen-Lièvre F, Pardanaud L, Bollerot K, et al. Hemangioblasts and hemopoietic stem cells during ontogeny. Comptes Rendus Biologies. 2002 Oct 1;325(10):1013-20.

Reyes M, Dudek A, Jahagirdar B, et al. Origin of endothelial progenitors in human postnatal bone marrow. J Clin Invest. 2002 Feb 1;109(3):337-46.

Galindo LT, Filippo TRM, Semedo P, et al. Mesenchymal Stem Cell Therapy Modulates the Inflammatory Response in Experimental Traumatic Brain Injury. Neurology Research International. 2011;2011:1-9.

Dominici M, Marino R, Rasini V, et al. Donor cell–derived osteopoiesis originates from a self-renewing stem cell with a limited regenerative contribution after transplantation. Blood. 2008 Apr 15;111(8):4386-91.

Baksh D, Yao R, Tuan RS. Comparison of Proliferative and Multilineage Differentiation Potential of Human Mesenchymal Stem Cells Derived from Umbilical Cord and Bone Marrow. Stem Cells. 2007 Jun 1;25(6):1384-92.

Friedenstein, A. J. (1990). Osteogenic stem cells in bone marrow

Komori T, Yagi H, Nomura S, et al. Targeted Disruption of Results in a Complete Lack of Bone Formation owing to Maturational Arrest of Osteoblasts. Cell. 1997 May;89(5):755-64.

Zuk PA, Zhu M, Mizuno H, et al. Multilineage Cells from Human Adipose Tissue: Implications for Cell-Based Therapies. Tissue Engineering. 2001 Apr;7(2):211-28.

Komabashiri N, Suehiro F, Ishii M, et al. Efficacy of chitinase-3-like protein 1 as an in vivo bone formation predictable marker of maxillary/mandibular bone marrow stromal cells. Regenerative Therapy. 2021 Dec;18:38-50.

Abbas O, Mahalingam M. Epidermal stem cells: practical perspectives and potential uses. British Journal of Dermatology. 2009 Aug;161(2):228-36.

Bucan V, Fliess M, Schnabel R, Peck C, Vaslaitis D, F�lbier A, et al. In vitro enhancement and functional characterization of neurite outgrowth by undifferentiated adipose-derived stem cells. Int J Mol Med. 2018 Nov 602-593

Requicha JF, Viegas CA, Albuquerque CM, et al. Effect of Anatomical Origin and Cell Passage Number on the Stemness and Osteogenic Differentiation Potential of Canine Adipose-Derived Stem Cells. Stem Cell Rev and Rep. 2012 Dec;8(4):1211-22.

Egusa H, Sonoyama W, Nishimura M, et al. Stem cells in dentistry – Part I: Stem cell sources. Journal of Prosthodontic Research. 2012 Jul;56(3):151-65.

Mosaddad SA, Rasoolzade B, Namanloo RA, et al. Stem cells and common biomaterials in dentistry: a review study. J Mater Sci: Mater Med. 2022 Jun 18;33(7),55.

Sui B, Wu D, Xiang L, et al. Dental Pulp Stem Cells: From Discovery to Clinical Application. Journal of Endodontics. 2020 Sep;46(9):S46-S55.

Kim S, Shin S, Song Y, et al. In Vivo Experiments with Dental Pulp Stem Cells for Pulp‐Dentin Complex Regeneration. Mediators of Inflammation. 2015 Jan;2015(1)

Hu L, Liu Y, Wang S. Stem cell‐based tooth and periodontal regeneration. Oral Diseases. 2018 Jul;24(5):696-705.

Zhou T, Pan J, Wu P, et al. Dental Follicle Cells: Roles in Development and Beyond. Stem Cells International. 2019 Sep 15;2019:1-17.

Hakki SS, Kayis SA, Hakki EE, et al. Comparison of Mesenchymal Stem Cells Isolated From Pulp and Periodontal Ligament. Journal of Periodontology. 2015 Feb;86(2):283-91.

Zhang L, Jiao G, Ren S, Zhang X, Li C, Wu W, et al. Exosomes from bone marrow mesenchymal stem cells enhance fracture healing through the promotion of osteogenesis and angiogenesis in a rat model of nonunion. Stem Cell Res Ther. 2020 Dec;11(1):15-1

Dahake PT, Panpaliya NP, Kale YJ, et al. Response of stem cells from human exfoliated deciduous teeth (SHED) to three bioinductive materials – An in vitro experimental study. The Saudi Dental Journal. 2020 Jan;32(1):43-51.

Lei T, Zhang X, Chen P, et al. Proteomic profile of human dental follicle stem cells and apical papilla stem cells. Journal of Proteomics. 2021 Jan;231:103928.

Aydin S, Şahin, F. Stem cells derived from dental tissues. Cell Biology and Translational Medicine, Volume 5: Stem Cells: Translational Science to Therapy, 2019 123-132.

Ercal, P., Pekozer, G. G., & Kose, G. T. (2018). Dental stem cells in bone tissue engineering: current overview and challenges. Cell Biology and Translational Medicine, Volume 3: Stem Cells, Bio-materials and Tissue Engineering, 113-127.

Tomar GB, Srivastava RK, Gupta N, et al. Human gingiva-derived mesenchymal stem cells are superior to bone marrow-derived mesenchymal stem cells for cell therapy in regenerative medicine. Biochemical and Biophysical Research Communications. 2010 Mar;393(3):377-83.

Venkatesh D, Mohan Kumar K, Alur J. Gingival mesenchymal stem cells. J Oral Maxillofac Pathol. 2017;21(2):296.

Grippaudo C, Paolantonio E, Antonini G, et al. ACTA OTORHINOLARYNGOLOGICA ITALICA. Acta Otorhinolaryngol Ital. 2016 Oct;36(5):386-94.

Matichescu A, Ardelean LC, Rusu L, et al. Advanced Biomaterials and Techniques for Oral Tissue Engineering and Regeneration—A Review. Materials. 2020 Nov 23;13(22):5303.

Zhu W, Xu W, Jiang R, et al. Mesenchymal stem cells derived from bone marrow favor tumor cell growth in vivo. Experimental and Molecular Pathology. 2006 Jun;80(3):267-74.

Hakki SS, Bozkurt B, Hakki EE, et al. Bone morphogenetic protein‐2, ‐6, and ‐7 differently regulate osteogenic differentiation of human periodontal ligament stem cells. J Biomed Mater Res. 2014 Jan;102(1):119-30.

Proffit, William R., et al. Contemporary Orthodontics-E-Book: Contemporary Orthodontics-E-Book. Elsevier Health Sciences, 2018.

Meikle MC. The tissue, cellular, and molecular regulation of orthodontic tooth movement: 100 years after Carl Sandstedt. The European Journal of Orthodontics. 2005 Oct 17;28(3):221-40.

Ye H, Cheng J, Tang Y, et al. Human Bone Marrow-Derived Mesenchymal Stem Cells produced TGFbeta Contributes to Progression and Metastasis of Prostate Cancer. Cancer Investigation. 2012 Jul 24;30(7):513-8.

Wise, G. E., & King, G. J. (2008). Mechanisms of tooth eruption and orthodontic tooth movement. Journal of dental research, 87(5), 414-434.

Krishnan V, Davidovitch Z. Cellular, molecular, and tissue-level reactions to orthodontic force. American Journal of Orthodontics and Dentofacial Orthopedics. 2006 Apr;129(4):469.e1-469.e32.

Nishimura M, Chiba M, Ohashi T, et al. Periodontal tissue activation by vibration: Intermittent stimulation by resonance vibration accelerates experimental tooth movement in rats. American Journal of Orthodontics and Dentofacial Orthopedics. 2008 Apr;133(4):572-83.

Nanci, Antonio, Dieter D. Bosshardt. "Structure of periodontal tissues in health and disease." PERIODONTOLOGY 2000 40.1 (2006): 11.

Li Y, Jacox LA, Little SH, et al. Orthodontic tooth movement: The biology and clinical implications. The Kaohsiung J of Med Scie. 2018 Apr;34(4):207-14.

Dr. D'Ippolito G, Schiller PC, Ricordi C, et al. Age-Related Osteogenic Potential of Mesenchymal Stromal Stem Cells from Human Vertebral Bone Marrow. Journal of Bone and Mineral Research. 1999 Jul 1;14(7):1115-22.

Kitaura H, Kimura K, Ishida M, et al. Effect of Cytokines on Osteoclast Formation and Bone Resorption during Mechanical Force Loading of the Periodontal Membrane. The Scientific World Journal. 2014;2014:1-7.

Niklas A, Proff P, Gosau M, et al. The Role of Hypoxia in Orthodontic Tooth Movement. International Journal of Dentistry. 2013;2013:1-7.

Middleton J, Jones M, Wilson A. Three-dimensional analysis of orthodontic tooth movement. Journal of Biomedical Engineering. 1990 Jul;12(4):319-27.

Jiang C, Li Z, Quan H, et al. Osteoimmunology in orthodontic tooth movement. Oral Diseases. 2015 Sep;21(6):694-704.

Li Y, Zhan Q, Bao M, et al. Biomechanical and biological responses of periodontium in orthodontic tooth movement: up-date in a new decade. Int J Oral Sci. 2021 Dec;13(1)

Alikhani M, Sangsuwon C, Alansari S et al. Biphasic theory: breakthrough understanding of tooth movement. Journal of the World Federation of Orthodontists. 2018 Sep;7(3):82-8.

Huang H, Williams RC, Kyrkanides S. Accelerated orthodontic tooth movement: Molecular mechanisms. American Journal of Orthodontics and Dentofacial Orthopedics. 2014 Nov;146(5):620-32.

Henneman S, Von den Hoff JW, Maltha JC. Mechanobiology of tooth movement. The European Journal of Orthodontics. 2008 Jun 1;30(3):299-306.

Baloul, S. S. (2016). Osteoclastogenesis and osteogenesis during tooth movement. Tooth Movement, 18, 75-79.

Garlet TP, Coelho U, Silva JS, et al. Cytokine expression pattern in compression and tension sides of the periodontal ligament during orthodontic tooth movement in humans. European J Oral Sciences. 2007 Oct;115(5):355-62.

Seo B, Miura M, Gronthos S, et al. Investigation of multipotent postnatal stem cells from human periodontal ligament. The Lancet. 2004 Jul;364(9429):149-55.

Wada N, Menicanin D, Shi S, et al. Immunomodulatory properties of human periodontal ligament stem cells. Journal Cellular Physiology. 2009 Jun;219(3):667-76.

Behm C, Nemec M, Weissinger F, et al. MMPs and TIMPs Expression Levels in the Periodontal Ligament during Orthodontic Tooth Movement: A Systematic Review of In Vitro and In Vivo Studies. IJMS. 2021 Jun 28;22(13):6967.

Zhang L, Liu W, Zhao J, et al. Mechanical stress regulates osteogenic differentiation and RANKL/OPG ratio in periodontal ligament stem cells by the Wnt/β-catenin pathway. Biochimica et Biophysica Acta (BBA) - General Subjects. 2016 Oct;1860(10):2211-9.

Huang H, Yang R, Zhou Y. Mechanobiology of Periodontal Ligament Stem Cells in Orthodontic Tooth Movement. Stem Cells International. 2018 Sep 17;2018:1-7.

Wang J, Wang X, Sun Z, et al. Stem Cells from Human-Exfoliated Deciduous Teeth Can Differentiate into Dopaminergic Neuron-Like Cells. Stem Cells and Development. 2010 Sep;19(9):1375-83.

Du X, Williams DA. Interleukin-11: Review of Molecular, Cell Biology, and Clinical Use. Blood. 1997 Jun 1;89(11):3897-908.

Matsumura H, Nakayama Y, Takai H, et al. Effects of interleukin-11 on the expression of human bone sialoprotein gene. J Bone Miner Metab. 2015 Mar;33(2):142-53.

Monnouchi S, Maeda H, Yuda A, et al. Mechanical induction of interleukin‐11 regulates osteoblastic/cementoblastic differentiation of human periodontal ligament stem/progenitor cells. J of Periodontal Research. 2015 Apr;50(2):231-9.

Wei F, Wang J, Ding G, et al. Mechanical Force-Induced Specific MicroRNA Expression in Human Periodontal Ligament Stem Cells. Cells Tissues Organs. 2014;199(5-6):353-63.

Chen N, Sui B, Hu C, et al. microRNA-21 Contributes to Orthodontic Tooth Movement. J Dent Res. 2016 Nov;95(12):1425-33.

Yang R, Liu Y, Shi S. Hydrogen Sulfide Regulates Homeostasis of Mesenchymal Stem Cells and Regulatory T Cells. J Dent Res. 2016 Dec;95(13):1445-51.

Liu F, Wen F, He D, et al. Force-Induced H2S by PDLSCs Modifies Osteoclastic Activity during Tooth Movement. J Dent Res. 2017 Jun;96(6):694-702.

Yoo JH, Lee S, Bae MK, et al. Effect of orthodontic forces on the osteogenic differentiation of human periodontal ligament stem cells. Journal of Oral Science. 2018;60(3):438-45.

Travess H, Roberts-Harry D, Sandy J. Orthodontics. Part 6: Risks in orthodontic treatment. Br Dent J. 2004 Jan;196(2):71-7.

Jung Y, Cho B. External root resorption after orthodontic treatment: a study of contributing factors. Imaging Sci Dent. 2011;41(1):17.

Soma S, Iwamoto M, Higuchi Y, et al. Effects of Continuous Infusion of PTH on Experimental Tooth Movement in Rats. Journal of Bone and Mineral Research. 1999 Apr 1;14(4):546-54.

Kawasaki K, Shimizu N. Effects of low-energy laser irradiation on bone remodeling during experimental tooth movement in rats. Lasers Surg Med. 2000;26(3):282-91.

Ekizer A, Yalvac ME, Uysal T, et al. Bone marrow mesenchymal stem cells enhance bone formation in orthodontically expanded maxillae in rats. The Angle Orthodontist. 2015 May 1;85(3):394-9.

Köle H. Surgical operations on the alveolar ridge to correct occlusal abnormalities. Oral Surgery, Oral Medicine, Oral Pathology. 1959 May;12(5):515-29.

Amit G, JPS K, Pankaj B, et al. Periodontally accelerated osteogenic orthodontics (PAOO) - a review. J Clin Exp Dent. 2012.

Alfawal AMH, Hajeer MY, Ajaj MA, et al. Effectiveness of minimally invasive surgical procedures in the acceleration of tooth movement: a systematic review and meta-analysis. Prog Orthod. 2016 Dec;17(1)

Tehranchi A, Behnia H, Pourdanesh F, et al. The effect of autologous leukocyte platelet rich fibrin on the rate of orthodontic tooth movement: A prospective randomized clinical trial. Eur J Dent. 2018 Jul;12(03):350-7.

Shahabee M, Shafaee H, Abtahi M, et al. Effect of micro-osteoperforation on the rate of orthodontic tooth movement—a systematic review and a meta-analysis. European Journal of Orthodontics. 2020 Apr 1;42(2):211-21.

Seifi M, Shafeei HA, Daneshdoost S, et al. Effects of two types of low-level laser wave lengths (850 and 630 nm) on the orthodontic tooth movements in rabbits. Lasers Med Sci. 2007 Oct 18;22(4):261-4.

Sakata M, Yamamoto Y, Imamura N, et al. The effects of a static magnetic field on orthodontic tooth movement. Journal of Orthodontics. 2008 Dec;35(4):249-54.

Worthley DL, Churchill M, Compton JT, et al. Gremlin 1 Identifies a Skeletal Stem Cell with Bone, Cartilage, and Reticular Stromal Potential. Cell. 2015 Jan;160(1-2):269-84.

Şahin, Gökçen. "Kemik iliği kaynaklı mezenkimal kök hücre uygulamasının ortodontik diş hareket hızı üzerine etkisinin değerlendirilmesi."

McNab S, Battistutta D, Taverne A, et al. External apical root resorption following orthodontic treatment. Angle Orthod. 2000 Jun;70(3):227-32.

Sameshima GT, Sinclair PM. Predicting and preventing root resorption: Part II. Treatment factors. American Journal of Orthodontics and Dentofacial Orthopedics. 2001 May;119(5):511-5.

Weltman B, Vig KW, Fields HW, et al. Root resorption associated with orthodontic tooth movement: A systematic review. American Journal of Orthodontics and Dentofacial Orthopedics. 2010 Apr;137(4):462-76.

Yamaguchi M, Fukasawa S. Is Inflammation a Friend or Foe for Orthodontic Treatment?: Inflammation in Orthodontically Induced Inflammatory Root Resorption and Accelerating Tooth Movement. IJMS. 2021 Feb 27;22(5):2388.

Shinagawa-Ohama R, Mochizuki M, Tamaki Y, et al. Heterogeneous Human Periodontal Ligament-Committed Progenitor and Stem Cell Populations Exhibit a Unique Cementogenic Property Under In Vitro and In Vivo Conditions. Stem Cells and Development. 2017 May;26(9):632-45.

Nuñez J, Sanz‐Blasco S, Vignoletti F, et al. Periodontal regeneration following implantation of cementum and periodontal ligament‐derived cells. J of Periodontal Research. 2012 Feb;47(1):33-44.

Yang X, Ma Y, Guo W, et al. Stem cells from human exfoliated deciduous teeth as an alternative cell source in bio-root regeneration. Theranostics. 2019;9(9):2694-711.

Referanslar

Polak JM, Bishop AE. Stem Cells and Tissue Engineering: Past, Present, and Future. Annals of the New York Academy of Sciences. 2006 Apr;1068(1):352-66.

Daruwala, N., S. Mahadevia, and P. R. Paneriya. "Stem cells: The future of dentistry." JADCH 1 (2010): 12-17.

Martin‐Rendon E, Watt SM. Stem cell plasticity. Br J Haematol. 2003 Sep;122(6):877-91.

Wobus AM. Potential of embryonic stem cells. Molecular Aspects of Medicine. 2001 Jun;22(3):149-64.

Al-Nbaheen M, Vishnubalaji R, Ali D, et al. Human Stromal (Mesenchymal) Stem Cells from Bone Marrow, Adipose Tissue and Skin Exhibit Differences in Molecular Phenotype and Differentiation Potential. Stem Cell Rev and Rep. 2013 Feb;9(1):32-43.

Pittenger MF, Mackay AM, Beck SC, et al. Multilineage Potential of Adult Human Mesenchymal Stem Cells. Science. 1999 Apr 2;284(5411):143-7.

Dieterlen-Lièvre F, Pardanaud L, Bollerot K, et al. Hemangioblasts and hemopoietic stem cells during ontogeny. Comptes Rendus Biologies. 2002 Oct 1;325(10):1013-20.

Reyes M, Dudek A, Jahagirdar B, et al. Origin of endothelial progenitors in human postnatal bone marrow. J Clin Invest. 2002 Feb 1;109(3):337-46.

Galindo LT, Filippo TRM, Semedo P, et al. Mesenchymal Stem Cell Therapy Modulates the Inflammatory Response in Experimental Traumatic Brain Injury. Neurology Research International. 2011;2011:1-9.

Dominici M, Marino R, Rasini V, et al. Donor cell–derived osteopoiesis originates from a self-renewing stem cell with a limited regenerative contribution after transplantation. Blood. 2008 Apr 15;111(8):4386-91.

Baksh D, Yao R, Tuan RS. Comparison of Proliferative and Multilineage Differentiation Potential of Human Mesenchymal Stem Cells Derived from Umbilical Cord and Bone Marrow. Stem Cells. 2007 Jun 1;25(6):1384-92.

Friedenstein, A. J. (1990). Osteogenic stem cells in bone marrow

Komori T, Yagi H, Nomura S, et al. Targeted Disruption of Results in a Complete Lack of Bone Formation owing to Maturational Arrest of Osteoblasts. Cell. 1997 May;89(5):755-64.

Zuk PA, Zhu M, Mizuno H, et al. Multilineage Cells from Human Adipose Tissue: Implications for Cell-Based Therapies. Tissue Engineering. 2001 Apr;7(2):211-28.

Komabashiri N, Suehiro F, Ishii M, et al. Efficacy of chitinase-3-like protein 1 as an in vivo bone formation predictable marker of maxillary/mandibular bone marrow stromal cells. Regenerative Therapy. 2021 Dec;18:38-50.

Abbas O, Mahalingam M. Epidermal stem cells: practical perspectives and potential uses. British Journal of Dermatology. 2009 Aug;161(2):228-36.

Bucan V, Fliess M, Schnabel R, Peck C, Vaslaitis D, F�lbier A, et al. In vitro enhancement and functional characterization of neurite outgrowth by undifferentiated adipose-derived stem cells. Int J Mol Med. 2018 Nov 602-593

Requicha JF, Viegas CA, Albuquerque CM, et al. Effect of Anatomical Origin and Cell Passage Number on the Stemness and Osteogenic Differentiation Potential of Canine Adipose-Derived Stem Cells. Stem Cell Rev and Rep. 2012 Dec;8(4):1211-22.

Egusa H, Sonoyama W, Nishimura M, et al. Stem cells in dentistry – Part I: Stem cell sources. Journal of Prosthodontic Research. 2012 Jul;56(3):151-65.

Mosaddad SA, Rasoolzade B, Namanloo RA, et al. Stem cells and common biomaterials in dentistry: a review study. J Mater Sci: Mater Med. 2022 Jun 18;33(7),55.

Sui B, Wu D, Xiang L, et al. Dental Pulp Stem Cells: From Discovery to Clinical Application. Journal of Endodontics. 2020 Sep;46(9):S46-S55.

Kim S, Shin S, Song Y, et al. In Vivo Experiments with Dental Pulp Stem Cells for Pulp‐Dentin Complex Regeneration. Mediators of Inflammation. 2015 Jan;2015(1)

Hu L, Liu Y, Wang S. Stem cell‐based tooth and periodontal regeneration. Oral Diseases. 2018 Jul;24(5):696-705.

Zhou T, Pan J, Wu P, et al. Dental Follicle Cells: Roles in Development and Beyond. Stem Cells International. 2019 Sep 15;2019:1-17.

Hakki SS, Kayis SA, Hakki EE, et al. Comparison of Mesenchymal Stem Cells Isolated From Pulp and Periodontal Ligament. Journal of Periodontology. 2015 Feb;86(2):283-91.

Zhang L, Jiao G, Ren S, Zhang X, Li C, Wu W, et al. Exosomes from bone marrow mesenchymal stem cells enhance fracture healing through the promotion of osteogenesis and angiogenesis in a rat model of nonunion. Stem Cell Res Ther. 2020 Dec;11(1):15-1

Dahake PT, Panpaliya NP, Kale YJ, et al. Response of stem cells from human exfoliated deciduous teeth (SHED) to three bioinductive materials – An in vitro experimental study. The Saudi Dental Journal. 2020 Jan;32(1):43-51.

Lei T, Zhang X, Chen P, et al. Proteomic profile of human dental follicle stem cells and apical papilla stem cells. Journal of Proteomics. 2021 Jan;231:103928.

Aydin S, Şahin, F. Stem cells derived from dental tissues. Cell Biology and Translational Medicine, Volume 5: Stem Cells: Translational Science to Therapy, 2019 123-132.

Ercal, P., Pekozer, G. G., & Kose, G. T. (2018). Dental stem cells in bone tissue engineering: current overview and challenges. Cell Biology and Translational Medicine, Volume 3: Stem Cells, Bio-materials and Tissue Engineering, 113-127.

Tomar GB, Srivastava RK, Gupta N, et al. Human gingiva-derived mesenchymal stem cells are superior to bone marrow-derived mesenchymal stem cells for cell therapy in regenerative medicine. Biochemical and Biophysical Research Communications. 2010 Mar;393(3):377-83.

Venkatesh D, Mohan Kumar K, Alur J. Gingival mesenchymal stem cells. J Oral Maxillofac Pathol. 2017;21(2):296.

Grippaudo C, Paolantonio E, Antonini G, et al. ACTA OTORHINOLARYNGOLOGICA ITALICA. Acta Otorhinolaryngol Ital. 2016 Oct;36(5):386-94.

Matichescu A, Ardelean LC, Rusu L, et al. Advanced Biomaterials and Techniques for Oral Tissue Engineering and Regeneration—A Review. Materials. 2020 Nov 23;13(22):5303.

Zhu W, Xu W, Jiang R, et al. Mesenchymal stem cells derived from bone marrow favor tumor cell growth in vivo. Experimental and Molecular Pathology. 2006 Jun;80(3):267-74.

Hakki SS, Bozkurt B, Hakki EE, et al. Bone morphogenetic protein‐2, ‐6, and ‐7 differently regulate osteogenic differentiation of human periodontal ligament stem cells. J Biomed Mater Res. 2014 Jan;102(1):119-30.

Proffit, William R., et al. Contemporary Orthodontics-E-Book: Contemporary Orthodontics-E-Book. Elsevier Health Sciences, 2018.

Meikle MC. The tissue, cellular, and molecular regulation of orthodontic tooth movement: 100 years after Carl Sandstedt. The European Journal of Orthodontics. 2005 Oct 17;28(3):221-40.

Ye H, Cheng J, Tang Y, et al. Human Bone Marrow-Derived Mesenchymal Stem Cells produced TGFbeta Contributes to Progression and Metastasis of Prostate Cancer. Cancer Investigation. 2012 Jul 24;30(7):513-8.

Wise, G. E., & King, G. J. (2008). Mechanisms of tooth eruption and orthodontic tooth movement. Journal of dental research, 87(5), 414-434.

Krishnan V, Davidovitch Z. Cellular, molecular, and tissue-level reactions to orthodontic force. American Journal of Orthodontics and Dentofacial Orthopedics. 2006 Apr;129(4):469.e1-469.e32.

Nishimura M, Chiba M, Ohashi T, et al. Periodontal tissue activation by vibration: Intermittent stimulation by resonance vibration accelerates experimental tooth movement in rats. American Journal of Orthodontics and Dentofacial Orthopedics. 2008 Apr;133(4):572-83.

Nanci, Antonio, Dieter D. Bosshardt. "Structure of periodontal tissues in health and disease." PERIODONTOLOGY 2000 40.1 (2006): 11.

Li Y, Jacox LA, Little SH, et al. Orthodontic tooth movement: The biology and clinical implications. The Kaohsiung J of Med Scie. 2018 Apr;34(4):207-14.

Dr. D'Ippolito G, Schiller PC, Ricordi C, et al. Age-Related Osteogenic Potential of Mesenchymal Stromal Stem Cells from Human Vertebral Bone Marrow. Journal of Bone and Mineral Research. 1999 Jul 1;14(7):1115-22.

Kitaura H, Kimura K, Ishida M, et al. Effect of Cytokines on Osteoclast Formation and Bone Resorption during Mechanical Force Loading of the Periodontal Membrane. The Scientific World Journal. 2014;2014:1-7.

Niklas A, Proff P, Gosau M, et al. The Role of Hypoxia in Orthodontic Tooth Movement. International Journal of Dentistry. 2013;2013:1-7.

Middleton J, Jones M, Wilson A. Three-dimensional analysis of orthodontic tooth movement. Journal of Biomedical Engineering. 1990 Jul;12(4):319-27.

Jiang C, Li Z, Quan H, et al. Osteoimmunology in orthodontic tooth movement. Oral Diseases. 2015 Sep;21(6):694-704.

Li Y, Zhan Q, Bao M, et al. Biomechanical and biological responses of periodontium in orthodontic tooth movement: up-date in a new decade. Int J Oral Sci. 2021 Dec;13(1)

Alikhani M, Sangsuwon C, Alansari S et al. Biphasic theory: breakthrough understanding of tooth movement. Journal of the World Federation of Orthodontists. 2018 Sep;7(3):82-8.

Huang H, Williams RC, Kyrkanides S. Accelerated orthodontic tooth movement: Molecular mechanisms. American Journal of Orthodontics and Dentofacial Orthopedics. 2014 Nov;146(5):620-32.

Henneman S, Von den Hoff JW, Maltha JC. Mechanobiology of tooth movement. The European Journal of Orthodontics. 2008 Jun 1;30(3):299-306.

Baloul, S. S. (2016). Osteoclastogenesis and osteogenesis during tooth movement. Tooth Movement, 18, 75-79.

Garlet TP, Coelho U, Silva JS, et al. Cytokine expression pattern in compression and tension sides of the periodontal ligament during orthodontic tooth movement in humans. European J Oral Sciences. 2007 Oct;115(5):355-62.

Seo B, Miura M, Gronthos S, et al. Investigation of multipotent postnatal stem cells from human periodontal ligament. The Lancet. 2004 Jul;364(9429):149-55.

Wada N, Menicanin D, Shi S, et al. Immunomodulatory properties of human periodontal ligament stem cells. Journal Cellular Physiology. 2009 Jun;219(3):667-76.

Behm C, Nemec M, Weissinger F, et al. MMPs and TIMPs Expression Levels in the Periodontal Ligament during Orthodontic Tooth Movement: A Systematic Review of In Vitro and In Vivo Studies. IJMS. 2021 Jun 28;22(13):6967.

Zhang L, Liu W, Zhao J, et al. Mechanical stress regulates osteogenic differentiation and RANKL/OPG ratio in periodontal ligament stem cells by the Wnt/β-catenin pathway. Biochimica et Biophysica Acta (BBA) - General Subjects. 2016 Oct;1860(10):2211-9.

Huang H, Yang R, Zhou Y. Mechanobiology of Periodontal Ligament Stem Cells in Orthodontic Tooth Movement. Stem Cells International. 2018 Sep 17;2018:1-7.

Wang J, Wang X, Sun Z, et al. Stem Cells from Human-Exfoliated Deciduous Teeth Can Differentiate into Dopaminergic Neuron-Like Cells. Stem Cells and Development. 2010 Sep;19(9):1375-83.

Du X, Williams DA. Interleukin-11: Review of Molecular, Cell Biology, and Clinical Use. Blood. 1997 Jun 1;89(11):3897-908.

Matsumura H, Nakayama Y, Takai H, et al. Effects of interleukin-11 on the expression of human bone sialoprotein gene. J Bone Miner Metab. 2015 Mar;33(2):142-53.

Monnouchi S, Maeda H, Yuda A, et al. Mechanical induction of interleukin‐11 regulates osteoblastic/cementoblastic differentiation of human periodontal ligament stem/progenitor cells. J of Periodontal Research. 2015 Apr;50(2):231-9.

Wei F, Wang J, Ding G, et al. Mechanical Force-Induced Specific MicroRNA Expression in Human Periodontal Ligament Stem Cells. Cells Tissues Organs. 2014;199(5-6):353-63.

Chen N, Sui B, Hu C, et al. microRNA-21 Contributes to Orthodontic Tooth Movement. J Dent Res. 2016 Nov;95(12):1425-33.

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