Expression analysis of α-smooth muscle actin and tenascin-C in the periodontal ligament under orthodontic loading or in vitro culture

Hui Xu , Ding Bai , L-Bruno Ruest , Jian Q Feng , Yong-Wen Guo , Ye Tian , Yan Jing , Yao He , Xiang-Long Han

International Journal of Oral Science ›› 2015, Vol. 7 ›› Issue (4) : 232 -241.

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International Journal of Oral Science ›› 2015, Vol. 7 ›› Issue (4) : 232 -241. DOI: 10.1038/ijos.2015.26
Article

Expression analysis of α-smooth muscle actin and tenascin-C in the periodontal ligament under orthodontic loading or in vitro culture

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Abstract

Although orthodontic braces apply constant force to teeth, researchers have found thatthe strain on gum tissue varies with time. To move teeth, orthodontists must apply justenough force to trigger remodelling of bone and gum tissues around tooth roots.However, these forces cannot be directly measured in living tissue. An internationalteam at Texas A&M University in Dallas, US, and Sichuan University, China, led by Xiang-Long Han used molecular markers to reveal stress in the periodontal ligament,which attaches tooth roots to gum tissue. Using cultured cells and cells from ratsundergoing orthodontic treatment, the researchers measured expression of the proteinsalpha-smooth muscle actin, which enhances tissue contraction, and tenascin-C, whichloosens tissue to prevent overstretching. Levels of both markers varied over time,corresponding to patterns of tooth movement.

Keywords

α-smooth muscle actin / mechanical load / myofibroblast / periodontal ligament / tenascin-C / transforming growth factor-β1

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Hui Xu, Ding Bai, L-Bruno Ruest, Jian Q Feng, Yong-Wen Guo, Ye Tian, Yan Jing, Yao He, Xiang-Long Han. Expression analysis of α-smooth muscle actin and tenascin-C in the periodontal ligament under orthodontic loading or in vitro culture. International Journal of Oral Science, 2015, 7(4): 232-241 DOI:10.1038/ijos.2015.26

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References

[1]

Krishnan V, Davidovitch Z. Cellular, molecular, and tissue-level reactions to orthodontic force. Am J Orthod Dentofacial Orthop, 2006, 129(4): 469.e1-469.e32.

[2]

Qian H, Chen J, Katona TR. The influence of PDL principal fibers in a 3-dimensional analysis of orthodontic tooth movement. Am J Orthod Dentofacial Orthop, 2001, 120(3): 272-279.

[3]

Komatsu K, Sanctuary C, Shibata T. Stress-relaxation and microscopic dynamics of rabbit periodontal ligament. J Biomech, 2007, 40(3): 634-644.

[4]

Natali AN, Pavan PG, Venturato C. Constitutive modeling of the non-linear visco-elasticity of the periodontal ligament. Comput Methods Programs Biomed, 2011, 104(2): 193-198.

[5]

Muraki H, Wakabayashi N, Park I. Finite element contact stress analysis of the RPD abutment tooth and periodontal ligament. J Dent, 2004, 32(8): 659-665.

[6]

Zhu YN, Yang WD, Abbott PV. The biomechanical role of periodontal ligament in bonded and replanted vertically fractured teeth under cyclic biting forces. Int J Oral Sci, 2015, 7(2): 125-130.

[7]

Meng Y, Han X, Huang L. Orthodontic mechanical tension effects on the myofibroblast expression of alpha-smooth muscle actin. Angle Orthod, 2010, 80(5): 912-918.

[8]

Hinz B. The myofibroblast: paradigm for a mechanically active cell. J Biomech, 2010, 43(1): 146-155.

[9]

Hinz B, Phan SH, Thannickal VJ. Recent developments in myofibroblast biology: paradigms for connective tissue remodeling. Am J Pathol, 2012, 180(4): 1340-1355.

[10]

Tomas D, Ulamec M, Hudolin T. Myofibroblastic stromal reaction and expression of tenascin-C and laminin in prostate adenocarcinoma. Prostate Cancer Prostatic Dis, 2006, 9(4): 414-419.

[11]

Kaarteenaho-Wiik R, Lakari E, Soini Y. Tenascin expression and distribution in pleural inflammatory and fibrotic diseases. J Histochem Cytochem, 2000, 48(9): 1257-1268.

[12]

Chiquet-Ehrismann R, Chiquet M. Tenascins: regulation and putative functions during pathological stress. J Pathol, 2003, 200(4): 488-499.

[13]

Chiquet M, Gelman L, Lutz R. From mechanotransduction to extracellular matrix gene expression in fibroblasts. Biochim Biophys Acta, 2009, 1793(5): 911-920.

[14]

Järvinen TA, Józsa L, Kannus P. Mechanical loading regulates the expression of tenascin-C in the myotendinous junction and tendon but does not induce de novo synthesis in the skeletal muscle. J Cell Sci, 2003, 116(Pt 5): 857-866.

[15]

Discher DE, Janmey P, Wang YL. Tissue cells feel and respond to the stiffness of their substrate. Science, 2005, 310(5751): 1139-1143.

[16]

Janmey PA, McCulloch CA. Cell mechanics: integrating cell responses to mechanical stimuli. Annu Rev Biomed Eng, 2007, 9: 1-34.

[17]

Qi MC, Zou SJ, Han LC. Expression of bone-related genes in bone marrow MSCs after cyclic mechanical strain: implications for distraction osteogenesis. Int J Oral Sci, 2009, 1(3): 143-150.

[18]

Tomasek JJ, Gabbiani G, Hinz B. Myofibroblasts and mechano-regulation of connective tissue remodelling. Nat Rev Mol Cell Biol, 2002, 3(5): 349-363.

[19]

Wipff PJ, Hinz B. Myofibroblasts work best under stress. J Bodyw Mov Ther, 2009, 13(2): 121-127.

[20]

Wipff PJ, Rifkin DB, Meister JJ. Myofibroblast contraction activates latent TGF-β1 from the extracellular matrix. J Cell Biol, 2007, 179(6): 1311-1323.

[21]

Palmon A, Roos H, Reichenberg E. Basic fibroblast growth factor suppresses tropoelastin gene expression in cultured human periodontal fibroblasts. J Periodont Res, 2001, 36(2): 65-70.

[22]

Lekic P, Rojas J, Birek C. Phenotypic comparison of periodontal ligament cells in vivo and in vitro. J Periodont Res, 2001, 36(2): 71-79.

[23]

Barczyk M, Bolstad AI, Gullberg D. Role of integrins in the periodontal ligament: organizers and facilitators. Periodontol 2000, 2013, 63(1): 29-47.

[24]

Larjava H, Koivisto L, Heino J. Integrins in periodontal disease. Exp Cell Res, 2014, 325(2): 104-110.

[25]

Hinz B. Tissue stiffness, latent TGF-β1 activation, and mechanical signal transduction: implications for the pathogenesis and treatment of fibrosis. Curr Rheumatol Rep, 2009, 11(2): 120-126.

[26]

Roy SG, Nozaki Y, Phan SH. Regulation of α-smooth muscle actin gene expression in myofibroblast differentiation from rat lung fibroblasts. Int J Biochem Cell Biol, 2001, 33(7): 723-734.

[27]

Hinz B, Gabbiani G. Mechanisms of force generation and transmission by myofibroblasts. Curr Opin Biotechnol, 2003, 14(5): 538-546.

[28]

Grinnell F. Fibroblast biology in three-dimensional collagen matrices. Trends Cell Biol, 2003, 13(5): 264-269.

[29]

Sprogar S, Meh A, Vaupotic T. Expression levels of endothelin-1, endothelin-2, and endothelin-3 vary during the initial, lag, and late phase of orthodontic tooth movement in rats. Eur J Orthod, 2010, 32(3): 324-328.

[30]

Li F, Li G, Hu H. Effect of parathyroid hormone on experimental tooth movement in rats. Am J Orthod Dentofacial Orthop, 2013, 144(4): 523-532.

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