Cytokines in crevicular fluid and orthodontic force: a systematic review
DOI:
https://doi.org/10.15448/1980-6523.2017.2.26330Keywords:
Systematic review, Orthodontics, corrective, Gingival Crevicular Fluid (GCF), Interleukin, T Cells.Abstract
OBJECTIVE: This paper aimed to analyze studies in the literature addressing the role of cytokines in the gingival crevicular fluid (GCF) in the orthodontic treatment.
METHODS: Several databases were surveyed using both MESH terms and free terms. Additional studies were obtained by reference tracking. This review was registered in PROSPERO, and the procedures foreseen by its statement were followed. Data were obtained from the included studies addressing the orthodontic mechanics, GCF sampling/handling methods, and cytokine measurements. Clinical studies written in English were browsed. Papers were selected by one reviewer and checked by a second investigator.
RESULTS: A total of 115 articles were identified, among which 25 were selected for detailed analysis. Common drawbacks consisted mainly of inadequacies in the study design (e.g. short duration and small number of study subjects). The most consistent result was a peak of cytokine levels at 1 d. Associations were observed between prostaglandin E2 (PGE2) and interleukin-1β (IL-1β) and pain, velocity of tooth movement, and treatment mechanics. Interleukin-1b and PGE2 showed different patterns of up-regulation, with IL-1β being more responsive to mechanical stress and PGE2 more responsive to synergistic regulation of IL-1β and mechanical force. The results support the use of light continuous forces for orthodontic treatment.
CONCLUSION: There was a tendency of maintenance of relatively high IL-1β levels for longer periods with the use of light continuous forces, which might decrease the frequency of activation. These outcomes provide evidence at the cellular level for the utilization of light continuous forces.
References
Basaran G, Ozer T, Kaya FA, Hamamci O. Interleukins 2, 6, and 8 levels in human gingival sulcus during orthodontic treatment. Am J Orthod Dentofacial Orthop. 2006;130(1):7 e1-6.
Tzannetou S, Efstratiadis S, Nicolay O, Grbic J, Lamster I. Interleukin-1β and β-Glucuronidase in gingival crevicular fluid from molars during rapid palatal expansion. Am J Orthod Dentofacial Orthop. 1999;115(6):686-96. https://doi.org/10.1016/S0889-5406(99)70295-7
Tzannetou S, Efstratiadis S, Nicolay O, Grbic J, Lamster I. Comparison of levels of inflammatory mediators IL-1beta and betaG in gingival crevicular fluid from molars, premolars, and incisors during rapid palatal expansion. Am J Orthod Dentofacial Orthop. 2008;133(5):699-707. https://doi.org/10.1016/j.ajodo.2006.03.044
Dudic A, Kiliaridis S, Mombelli A, Giannopoulou C. Composition changes in gingival crevicular fluid during orthodontic tooth movement: comparisons between tension and compression sides. Eur J Oral Sci. 2006;114(5): 416-22. https://doi.org/10.1111/j.1600-0722.2006.00387.x
Giannopoulou C, Dudic A, Kiliaridis S. Pain discomfort and crevicular fluid changes induced by orthodontic elastic separators in children. J Pain. 2006;7(5):367-76. https://doi.org/10.1016/j.jpain.2005.12.008
Tuncer BB, Ozmeric N, Tuncer C, Teoman I, Cakilci B, Yucel A, et al. Levels of interleukin-8 during tooth movement. Angle Orthod. 2005;75(4):631-6.
Madureira DF, Taddei SA, Abreu MHNG, Pretti H, Lages EMB, Silva TA. Kinetics of interleukin-6 and chemokine ligands 2 and 3 expression of periodontal tissues during orthodontic tooth movement. Am J Orthod Dentofacial Orthop. 2012;142(4):494-500. https://doi.org/10.1016/j.ajodo.2012.05.012
Griffiths GS. Formation, collection and significance of gingival crevice fluid. Periodontol. 2003;31(1):32-42. https://doi.org/10.1034/j.1600-0757.2003.03103.x
Ren Y, Vissink A. Cytokines in crevicular fluid and orthodontic tooth movement. Eur J Oral Sci. 2008;116(2):89-97. https://doi.org/10.1111/j.1600-0722.2007.00511.x
Ouyang W, Kolls JK, Zheng Y. The biological functions of T helper 17 cell effector cytokines in inflammation. Immunity. 2008;28(4):454-67. https://doi.org/10.1016/j.immuni.2008.03.004
McKenzie BS, Kastelein RA, Cua DJ. Understanding the IL-23–IL-17 immune pathway. Trends in Immunol. 2006;27(1):17-23. https://doi.org/10.1016/j.it.2005.10.003
Maloy KJ. The Interleukin-23 / Interleukin-17 axis in intestinal inflammation. J Intern Med. 2008;263(6):584-90. https://doi.org/10.1111/j.1365-2796.2008.01950.x
Tan ZY, Bealgey KW, Fang Y, Gong YM, Bao S. Interleukin-23: immunological roles and clinical implications. Intern J Biochem Cell Biol. 2009;41(4): 733-5. https://doi.org/10.1016/j.biocel.2008.04.027
Cheng W-C, Hughes FJ, Taams LS. The presence, function and regulation of IL-17 and Th17 cells in periodontitis. J Clin Periodontol. 2014;41(6): 541-9. https://doi.org/10.1111/jcpe.12238
Nakao K, Goto T, Gunjigake KK, Konoo T, Kobayashi S, Yamaguchi K. Intermittent force induces high RANKL expression in human periodontal ligament cells. J Dent Res. 2007;86(7):623-8. https://doi.org/10.1177/154405910708600708
d'Apuzzo F, Cappabianca S, Ciavarella D, Monsurro A, Silvestrini-Biavati A, Perillo L. Biomarkers of periodontal tissue remodeling during orthodontic tooth movement in mice and men: overview and clinical relevance. Scientific World Journal. 2013;2013:1-8. https://doi.org/10.1155/2013/105873
Salminen A, Gursoy UK, Paju S, Hyvärinen K, Mäntylä P, Buhlin K, et al. Salivary biomarkers of bacterial burden, inflammatory response, and tissue destruction in periodontitis. J Clin Periodontol. 2014;41(5):442-50. https://doi.org/10.1111/jcpe.12234
Park YD, Kim YS, Jung YM, Lee SI, Lee YM, Bang JB, et al. Porphyromonas gingivalis lipopolysaccharide regulates interleukin (IL)-17 and IL-23 expression via SIRT1 modulation in human periodontal ligament cells. Cytokine. 2012;60(1):284-93. https://doi.org/10.1016/j.cyto.2012.05.021
Sánchez GA, Miozza VA, Delgado A, Busch L. Salivary IL-1β and PGE2 as biomarkers of periodontal status, before and after periodontal treatment. J Clin Periodontol. 2013;40(12):1112-7. https://doi.org/10.1111/jcpe.12164
Olivier BJ, Schoenmaker T, Mebius RE, Everts V, Mulder CJ, van Nieuwkerk KMJ, et al. Increased osteoclast formation and activity by peripheral blood mononuclear cells in chronic liver disease patients with osteopenia. Hepatology. 2008;47(1):259-67. https://doi.org/10.1002/hep.21971
Turpin DL. CONSORT and QUOROM guidelines for reporting randomized clinical trials and systematic reviews. Am J Orthod Dentofacial Orthop. 2005;128(6):681-5. https://doi.org/10.1016/j.ajodo.2005.10.010
Karacay S, Saygun I, Bengi AO, Serdar M. Tumor Necrosis Factor–α Levels during Two Different Canine Distalization Techniques. The Angle Orthodontist. 2007;77(1):142-7. https://doi.org/10.2319/120905-430R.1
Iwasaki LR, Gibson CS, Crouch LD, Marx DB, Pandey JP, Nickel JC. Speed of tooth movement is related to stress and IL-1 gene polymorphisms. Am J Orthod Dentofacial Orthop. 2006;130(6):698 e1-9.
Basaran G, Ozer T, Kaya FA, Kaplan A, Hamamci O. Interleukine-1beta and tumor necrosis factor-alpha levels in the human gingival sulcus during orthodontic treatment. Angle Orthod. 2006;76(5):830-6.
Kawasaki K, Takahashi T, Yamaguchi M, Kasai K. Effects of aging on RANKL and OPG levels in gingival crevicular fluid during orthodontic tooth movement. Orthod Craniofac Res. 2006;9(3):137-42. https://doi.org/10.1111/j.1601-6343.2006.00368.x
Nishijima Y, Yamaguchi M, Kojima T, Aihara N, Nakajima R, Kasai K. Levels of RANKL and OPG in gingival crevicular fluid during orthodontic tooth movement and effect of compression force on releases from periodontal ligament cells in vitro. Orthod Craniofac Res. 2006;9(2):63 70. https://doi.org/10.1111/j.1601-6343.2006.00340.x
Yamaguchi M, Yoshii M, Kasai K. Relationship between substance P and interleukin-1beta in gingival crevicular fluid during orthodontic tooth movement in adults. Eur J Orthod. 2006;28(3):241-6. https://doi.org/10.1093/ejo/cji100
Hoshino-Itoh J, Kurokawa A, Yamaguchi M, Kasai K. Levels of t-PA and PAI-2 in gingival crevicular fluid during orthodontic tooth movement in adults. Aust Orthod J. 2005;21(1):31-7.
Toia M, Galazzo R, Maioli C, Granata R, Scarlatti F. The IGF-I/IGFBP-3 system in gingival crevicular fluid and dependence on application of fixed force. J Endocrinol Invest. 2005;28(11):1009-14. https://doi.org/10.1007/BF03345340
Iwasaki LR, Crouch LD, Tutor A, Gibson S, Hukmani N, Marx DB, et al. Tooth movement and cytokines in gingival crevicular fluid and whole blood in growing and adult subjects. Am J Orthod Dentofacial Orthop. 2005;128(4):483-91. https://doi.org/10.1016/j.ajodo.2004.03.037
Lee KJ, Park YC, Yu HS, Choi SH, Yoo YJ. Effects of continuous and interrupted orthodontic force on interleukin-1beta and prostaglandin E2 production in gingival crevicular fluid. Am J Orthod Dentofacial Orthop. 2004;125(2):168-77. https://doi.org/10.1016/j.ajodo.2003.03.006
Ren Y, Maltha JC, Van't Hof MA, Von Den Hoff JW, Kuijpers-Jagtman AM, Zhang D. Cytokine levels in crevicular fluid are less responsive to orthodontic force in adults than in juveniles. J Clin Periodontol. 2002;29(8):757-62. https://doi.org/10.1034/j.1600-051X.2002.290813.x
Iwasaki LR, Haack JE, Nickel JC, Reinhardt RA, Petro TM. Human interleukin-1 beta and interleukin-1 receptor antagonist secretion and velocity of tooth movement. Arch Oral Biol. 2001;46(2):185-9. https://doi.org/10.1016/S0003-9969(00)00088-1
Uematsu S, Mogi M, Deguchi T. Interleukin (IL)-1 beta, IL-6, tumor necrosis factor-alpha, epidermal growth factor, and beta 2-microglobulin levels are elevated in gingival crevicular fluid during human orthodontic tooth movement. J Dent Res. 1996;75(1):562-7. https://doi.org/10.1177/00220345960750010801
Lowney JJ, Norton LA, Shafer DM, Rossomando EF. Orthodontic forces increase tumor necrosis factor α in the human gingival sulcus. Am J Orthod Dentofacial Orthop. 1995;108(5):519-24. https://doi.org/10.1016/S0889-5406(95)70052-8
Grieve WG, 3rd, Johnson GK, Moore RN, Reinhardt RA, DuBois LM. Prostaglandin E (PGE) and interleukin-1 beta (IL-1 beta) levels in gingival crevicular fluid during human orthodontic tooth movement. Am J Orthod Dentofacial Orthop. 1994;105(4):369-74. https://doi.org/10.1016/S0889-5406(94)70131-8
Uematsu S, Mogi M, Deguchi T. Increase of transforming growth factor-β1 in gingival crevicular fluid during human orthodontic tooth movement. Arch Oral Biol. 1996;41(11):1091-5. https://doi.org/10.1016/S0003-9969(96)00063-5
Tian YL, Xie JC, Zhao ZJ, Zhang Y. Changes of interlukin-1beta and tumor necrosis factor-alpha levels in gingival crevicular fluid during orthodontic tooth movement. Hua Xi Kou Qiang Yi Xue Za Zhi. 2006;24(3):243-5.
van Gastel J, Teughels W, Quirynen M, Struyf S, Van Damme J, Coucke W, et al. Longitudinal changes in gingival crevicular fluid after placement of fixed orthodontic appliances. Am J Orthod Dentofacial Orthop. 2011;139(6):735-44. https://doi.org/10.1016/j.ajodo.2009.10.043
Enhos S, Veli I, Cakmak O, Ucar FI, Alkan A, Uysal T. OPG and RANKL levels around miniscrew implants during orthodontic tooth movement. Am J Orthod Dentofacial Orthop. 2013;144(2):203-9. https://doi.org/10.1016/j.ajodo.2013.02.028
Alikhani M, Raptis M, Zoldan B, Sangsuwon C, Lee YB, Alyami B, et al. Effect of micro-osteoperforations on the rate of tooth movement. Am J Orthod Dentofacial Orthop. 2013;144(5):639-48. https://doi.org/10.1016/j.ajodo.2013.06.017
Iwasaki LR, Haack JE, Nickel JC, Reinhardt RA, Petro TM. Human interleukin-1β and interleukin-1 receptor antagonist secretion and velocity of tooth movement. Arch Oral Biol. 2001;46(2):185-9. https://doi.org/10.1016/S0003-9969(00)00088-1
Kapoor P, Kharbanda OP, Monga N, Miglani R, Kapila S. Effect of orthodontic forces on cytokine and receptor levels in gingival crevicular fluid: a systematic review. Prog Orthod. 2014;15(65):1-21. https://doi.org/10.1186/s40510-014-0065-6
Ren Y, Maltha JC, Kuijpers-Jagtman AM. Optimum Force Magnitude for Orthodontic Tooth Movement: A Systematic Literature Review. Angle Orthod. 2003;73(1):86-92.
Maltha JC, van Leeuwen EJ, Dijkman G, Kuijpers-Jagtman AM. Incidence and severity of root resorption in orthodontically moved premolars in dogs. Orthod Craniofac Res. 2004;7(2):115-21. https://doi.org/10.1111/j.1601-6343.2004.00283.x
Böhl Mv, Maltha JC, Von Den Hoff JW, Kuijpers-Jagtman AM. Focal hyalinization during experimental tooth movement in beagle dogs. Am J Orthod Dentofacial Orthop. 2004;125(5):615-23. https://doi.org/10.1016/j.ajodo.2003.08.023
Pappu BP, Angkasekwinai P, Dong C. Regulatory mechanisms of helper T cell differentiation: new lessons learned from interleukin 17 family cytokines. Pharmacol Ther.. 2008;117(3):374-84. https://doi.org/10.1016/j.pharmthera.2007.12.003
Iwasaki LR, Chandler JR, Marx DB, Pandey JP, Nickel JC. IL-1 gene polymorphisms, secretion in gingival crevicular fluid, and speed of human orthodontic tooth movement. Orthod Craniofac Res. 2009;12(2):129-40. https://doi.org/10.1111/j.1601-6343.2009.01446.x
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