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Published in: Clinical Oral Investigations 4/2017

01-05-2017 | Original Article

In vivo determination of tooth mobility after fixed orthodontic appliance therapy with a novel intraoral measurement device

Authors: Anna Konermann, R. Al-Malat, J. Skupin, L. Keilig, C. Dirk, R. Karanis, C. Bourauel, A. Jäger

Published in: Clinical Oral Investigations | Issue 4/2017

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Abstract

Objective

Valid measurement systems recording tooth mobility upon displacement within the subtle range of physiological strains are missing. Here, we introduce a novel in vivo measurement device and demonstrate a first clinical application by monitoring tooth mobility changes during retention after fixed multibracket appliance therapy.

Materials and methods

Tooth mobility was measured in vivo on 21 patients (11 female, 10 male; mean age 16.1 ± 3.1 years) by displacing the upper first incisor 0.2 mm lingually for 0.2, 0.5, 1, 2, 5, and 10 s with the novel intraoral device. Measurements were recorded directly after, as much as 2, 7, and 14 days and up to 6 months after appliance debonding.

Results

Device performance was precise and valid in clinical use. Data revealed significant interindividual varying tooth mobility, which was very high during the first 2 days after appliance removal. After 1 week, mobility values decreased, but were generally higher upon short loadings compared to long ones. After 3 months, tooth mobility was significantly lower than directly after debonding. Interestingly, males exhibited significantly less mobility than females.

Conclusions

Our work is the first using an in vivo measurement device capable of performing and recording tooth displacements within this delicate range and in such precision. Furthermore, our findings elucidate tooth mobility changes after multibracket treatment, giving important information for retention periods.

Clinical relevance

Establishment of this novel measurement device in clinical use is an important improvement when approaching the complexity of tooth mobility in vivo regarding different issues like orthodontics, periodontal disease, or bruxism.
Literature
2.
go back to reference Tanaka E, Ueki K, Kikuzaki M, Yamada E, Takeuchi M, Dalla-Bona D, Tanne K (2005) Longitudinal measurements of tooth mobility during orthodontic treatment using a periotest. Angle Orthod 75:101–105PubMed Tanaka E, Ueki K, Kikuzaki M, Yamada E, Takeuchi M, Dalla-Bona D, Tanne K (2005) Longitudinal measurements of tooth mobility during orthodontic treatment using a periotest. Angle Orthod 75:101–105PubMed
3.
go back to reference Tanne K, Yoshida S, Kawata T, Sasaki A, Knox J, Jones ML (1998) An evaluation of the biomechanical response of the tooth and periodontium to orthodontic forces in adolescent and adult subjects. Br J Orthod 25:109–115CrossRefPubMed Tanne K, Yoshida S, Kawata T, Sasaki A, Knox J, Jones ML (1998) An evaluation of the biomechanical response of the tooth and periodontium to orthodontic forces in adolescent and adult subjects. Br J Orthod 25:109–115CrossRefPubMed
4.
go back to reference Kilic N, Oktay H, Ersoz M (2011) Effects of force magnitude on relapse: an experimental study in rabbits. Am J Orthod Dentofac Orthop 140:44–50CrossRef Kilic N, Oktay H, Ersoz M (2011) Effects of force magnitude on relapse: an experimental study in rabbits. Am J Orthod Dentofac Orthop 140:44–50CrossRef
5.
go back to reference Parker GR (1972) Transseptal fibers and relapse following bodily retraction of teeth: a histologic study. Am J Orthod 61:331–344CrossRefPubMed Parker GR (1972) Transseptal fibers and relapse following bodily retraction of teeth: a histologic study. Am J Orthod 61:331–344CrossRefPubMed
6.
go back to reference Southard TE, Southard KA, Tolley EA (1992) Periodontal force: a potential cause of relapse. Am J Orthod Dentofac Orthop 101:221–227CrossRef Southard TE, Southard KA, Tolley EA (1992) Periodontal force: a potential cause of relapse. Am J Orthod Dentofac Orthop 101:221–227CrossRef
7.
go back to reference Vaden JL, Harris EF, Gardner RL (1997) Relapse revisited. Am J Orthod Dentofac Orthop 111:543–553CrossRef Vaden JL, Harris EF, Gardner RL (1997) Relapse revisited. Am J Orthod Dentofac Orthop 111:543–553CrossRef
8.
go back to reference Dyer KC, Vaden JL, Harris EF (2012) Relapse revisited—again. Am J Orthod Dentofac Orthop 142:221–227CrossRef Dyer KC, Vaden JL, Harris EF (2012) Relapse revisited—again. Am J Orthod Dentofac Orthop 142:221–227CrossRef
9.
go back to reference Dorow C, Krstin N, Sander FG (2003) Determination of the mechanical properties of the periodontal ligament in a uniaxial tensional experiment. J Orofac Orthop 64:100–107CrossRefPubMed Dorow C, Krstin N, Sander FG (2003) Determination of the mechanical properties of the periodontal ligament in a uniaxial tensional experiment. J Orofac Orthop 64:100–107CrossRefPubMed
10.
go back to reference Wei Z, Yu X, Xu X, Chen X (2014) Experiment and hydro-mechanical coupling simulation study on the human periodontal ligament. Comput Methods Prog Biomed 113:749–756CrossRef Wei Z, Yu X, Xu X, Chen X (2014) Experiment and hydro-mechanical coupling simulation study on the human periodontal ligament. Comput Methods Prog Biomed 113:749–756CrossRef
11.
go back to reference Drolshagen M, Keilig L, Hasan I, Reimann S, Deschner J, Brinkmann KT, Krause R, Favino M, Bourauel C (2011) Development of a novel intraoral measurement device to determine the biomechanical characteristics of the human periodontal ligament. J Biomech 44:2136–2143CrossRefPubMed Drolshagen M, Keilig L, Hasan I, Reimann S, Deschner J, Brinkmann KT, Krause R, Favino M, Bourauel C (2011) Development of a novel intraoral measurement device to determine the biomechanical characteristics of the human periodontal ligament. J Biomech 44:2136–2143CrossRefPubMed
12.
go back to reference Schulte W, d’Hoedt B, Lukas D, Maunz M, Steppeler M (1992) Periotest for measuring periodontal characteristics-correlation with periodontal bone loss. J Periodontal Res 27:184–190CrossRefPubMed Schulte W, d’Hoedt B, Lukas D, Maunz M, Steppeler M (1992) Periotest for measuring periodontal characteristics-correlation with periodontal bone loss. J Periodontal Res 27:184–190CrossRefPubMed
13.
go back to reference Pedersen E, Andersen K, Melsen B (1991) Tooth displacement analysed on human autopsy material by means of a strain gauge technique. Eur J Orthod 13:65–74CrossRefPubMed Pedersen E, Andersen K, Melsen B (1991) Tooth displacement analysed on human autopsy material by means of a strain gauge technique. Eur J Orthod 13:65–74CrossRefPubMed
14.
go back to reference Hinterkausen M, Bourauel C, Siebers G, Haase A, Drescher D, Nellen B (1998) In vitro analysis of the initial tooth mobility in a novel optomechanical set-up. Med Eng Phys 20:40–49CrossRefPubMed Hinterkausen M, Bourauel C, Siebers G, Haase A, Drescher D, Nellen B (1998) In vitro analysis of the initial tooth mobility in a novel optomechanical set-up. Med Eng Phys 20:40–49CrossRefPubMed
15.
go back to reference Kawarizadeh A, Bourauel C, Jäger A (2003) Experimental and numerical determination of initial tooth mobility and material properties of the periodontal ligament in rat molar specimens. Eur J Orthod 25:569–578CrossRefPubMed Kawarizadeh A, Bourauel C, Jäger A (2003) Experimental and numerical determination of initial tooth mobility and material properties of the periodontal ligament in rat molar specimens. Eur J Orthod 25:569–578CrossRefPubMed
16.
go back to reference Burstone CJ, Pryputniewicz RJ, Bowley WW (1978) Holographic measurement of tooth mobility in three dimensions. J Periodontal Res 13:283–294CrossRefPubMed Burstone CJ, Pryputniewicz RJ, Bowley WW (1978) Holographic measurement of tooth mobility in three dimensions. J Periodontal Res 13:283–294CrossRefPubMed
17.
go back to reference Christiansen RL, Burstone CJ (1969) Centers of rotation within the periodontal space. Am J Orthod 55:353–369CrossRefPubMed Christiansen RL, Burstone CJ (1969) Centers of rotation within the periodontal space. Am J Orthod 55:353–369CrossRefPubMed
18.
go back to reference Yoshida N, Koga Y, Kobayashi K, Yamada Y, Yoneda T (2000) A new method for qualitative and quantitative evaluation of tooth displacement under the application of orthodontic forces using magnetic sensors. Med Eng Phys 22:293–300CrossRefPubMed Yoshida N, Koga Y, Kobayashi K, Yamada Y, Yoneda T (2000) A new method for qualitative and quantitative evaluation of tooth displacement under the application of orthodontic forces using magnetic sensors. Med Eng Phys 22:293–300CrossRefPubMed
19.
go back to reference Yoshida N, Koga Y, Mimaki N, Kobayashi K (2001) In vivo determination of the centres of resistance of maxillary anterior teeth subjected to retraction forces. Eur J Orthod 23:529–534CrossRefPubMed Yoshida N, Koga Y, Mimaki N, Kobayashi K (2001) In vivo determination of the centres of resistance of maxillary anterior teeth subjected to retraction forces. Eur J Orthod 23:529–534CrossRefPubMed
20.
go back to reference Tanne K, Inoue Y, Sakuda M (1995) Biomechanical behavior of the periodontium before and after orthodontic tooth movement. Angle Orthod 65:123–128PubMed Tanne K, Inoue Y, Sakuda M (1995) Biomechanical behavior of the periodontium before and after orthodontic tooth movement. Angle Orthod 65:123–128PubMed
21.
go back to reference Keilig L, Drolshagen M, Tran KL, Hasan I, Reimann S, Deschner J, Brinkmann KT, Krause R, Favino M, Bourauel C (2015) In vivo measurements and numerical analysis of the biomechanical characteristics of the human periodontal ligament. Ann Anat Keilig L, Drolshagen M, Tran KL, Hasan I, Reimann S, Deschner J, Brinkmann KT, Krause R, Favino M, Bourauel C (2015) In vivo measurements and numerical analysis of the biomechanical characteristics of the human periodontal ligament. Ann Anat
22.
go back to reference Komatsu K (2010) Mechanical strength and viscoelastic response of the periodontal ligament in relation to structure. J Dent Biomech Komatsu K (2010) Mechanical strength and viscoelastic response of the periodontal ligament in relation to structure. J Dent Biomech
23.
go back to reference Natali AN, Pavan PG, Scarpa C (2004) Numerical analysis of tooth mobility: formulation of a non-linear constitutive law for the periodontal ligament. Dent Mater 20:623–629CrossRefPubMed Natali AN, Pavan PG, Scarpa C (2004) Numerical analysis of tooth mobility: formulation of a non-linear constitutive law for the periodontal ligament. Dent Mater 20:623–629CrossRefPubMed
24.
go back to reference Wills DJ, Picton DC, Davies WI (1972) An investigation of the viscoelastic properties of the periodontium in monkeys. J Periodontal Res 7:42–51CrossRefPubMed Wills DJ, Picton DC, Davies WI (1972) An investigation of the viscoelastic properties of the periodontium in monkeys. J Periodontal Res 7:42–51CrossRefPubMed
25.
go back to reference Körber KH (1971) Electronic registration of tooth movements. Int Dent J 21:466–477PubMed Körber KH (1971) Electronic registration of tooth movements. Int Dent J 21:466–477PubMed
26.
go back to reference Papadopoulou K, Hasan I, Keilig L, Reimann S, Eliades T, Jäger A, Deschner J, Bourauel C (2013) Biomechanical time dependency of the periodontal ligament: a combined experimental and numerical approach. Eur J Orthod 35:811–818CrossRefPubMed Papadopoulou K, Hasan I, Keilig L, Reimann S, Eliades T, Jäger A, Deschner J, Bourauel C (2013) Biomechanical time dependency of the periodontal ligament: a combined experimental and numerical approach. Eur J Orthod 35:811–818CrossRefPubMed
27.
go back to reference Papadopoulou K, Keilig L, Eliades T, Krause R, Jäger A, Bourauel C (2014) The time-dependent biomechanical behaviour of the periodontal ligament-an in vitro experimental study in minipig mandibular two-rooted premolars. Eur J Orthod 36:9–15CrossRefPubMed Papadopoulou K, Keilig L, Eliades T, Krause R, Jäger A, Bourauel C (2014) The time-dependent biomechanical behaviour of the periodontal ligament-an in vitro experimental study in minipig mandibular two-rooted premolars. Eur J Orthod 36:9–15CrossRefPubMed
28.
go back to reference Poppe M, Bourauel C, Jäger A (2002) Determination of the elasticity parameters of the human periodontal ligament and the location of the center of resistance of single-rooted teeth a study of autopsy specimens and their conversion into finite element models. J Orofac Orthop 63:358–370CrossRefPubMed Poppe M, Bourauel C, Jäger A (2002) Determination of the elasticity parameters of the human periodontal ligament and the location of the center of resistance of single-rooted teeth a study of autopsy specimens and their conversion into finite element models. J Orofac Orthop 63:358–370CrossRefPubMed
29.
go back to reference Göllner M, Holst A, Berthold C, Schmitt J, Wichmann M, Holst S (2010) Noncontact intraoral measurement of force-related tooth mobility. Clin Oral Investig 14:551–557CrossRefPubMed Göllner M, Holst A, Berthold C, Schmitt J, Wichmann M, Holst S (2010) Noncontact intraoral measurement of force-related tooth mobility. Clin Oral Investig 14:551–557CrossRefPubMed
Metadata
Title
In vivo determination of tooth mobility after fixed orthodontic appliance therapy with a novel intraoral measurement device
Authors
Anna Konermann
R. Al-Malat
J. Skupin
L. Keilig
C. Dirk
R. Karanis
C. Bourauel
A. Jäger
Publication date
01-05-2017
Publisher
Springer Berlin Heidelberg
Published in
Clinical Oral Investigations / Issue 4/2017
Print ISSN: 1432-6981
Electronic ISSN: 1436-3771
DOI
https://doi.org/10.1007/s00784-016-1881-5

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