Comparison of slot tolerance with manufacturing measurements of different stainless steel self-ligating brackets

Main Article Content

Noor L. Aftan
https://orcid.org/0009-0007-7849-1742
Dheaa H Al-Groosh
https://orcid.org/0009-0005-5243-4729
Abdullah Albarkheel
https://orcid.org/0009-0008-5196-3022

Abstract

Background: Bracket slot dimensions is of great interest to orthodontists as it plays a major role in torque expression by affecting the wire/ slot play. This study was designed to measure slot tolerance (dimensions) and convergence angles of different stainless steel self-ligating brackets and to compare between the chosen brands.  Materials and methods: Eighty upper first premolar brackets of four different brands {Damon Q (Ormco corporation, Brea, California, USA), DTC (Medical apparatus Cor., Hangzhou, China), IOS (Pactive self-ligating bracket, IOS, Stafford, USA), Lotus Plus interactive bracket (Orthotechnology Inc., southern Ct, West Columbia, USA)} of stainless steel self-ligating brackets with claimed slot dimensions of 0.559 mm (0.022") in height, 0.711mm (0.028") in depth and with zero taper angle were used (twenty brackets of each brand). Brackets were mounted in a purposely planned way to ensure the parallelism of the slot's walls and assessed using an inverted fluorescent optic microscope. The slot dimensions measurements were done using an AutoCAD software version 2020. One sample t-test was done to compare between brands and nominal values and One-way ANOVA with Tukey tests were done to compare between brands. Results: Actual slot dimensions were different significantly from the manufacturing measurements; the DTC bracket had the largest slot height and depth compared with manufacturing values (0.571mm, 0.741mm respectively), while the Lotus Plus bracket had significantly the lowest slot height and depth (0.549mm, 0.504mm respectively). Furthermore, DTC and IOS brackets have convergent slot walls, whereas Lotus Plus and Damon Q brackets exhibited divergent slot walls where Damon Q showed significantly the highest mean value (2.81◦). Conclusion: Apart from IOS brackets, the slot tolerances of the other brands did not comply with the manufacturer's specifications. Moreover, DTC and IOS showed a convergence slot angle, while Damon Q and Lotus Plus brackets showed a divergent one.   

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How to Cite
1.
Aftan NL, Al-Groosh DH, Albarkheel A. Comparison of slot tolerance with manufacturing measurements of different stainless steel self-ligating brackets. J Bagh Coll Dent [Internet]. 2024 Dec. 15 [cited 2024 Dec. 18];36(4):15-21. Available from: https://jbcd.uobaghdad.edu.iq/index.php/jbcd/article/view/3819
Section
Research Articles
Author Biographies

Noor L. Aftan , Department of Orthodontics, College of Dentistry, University of Baghdad, Baghdad, Iraq

Department of Orthodontics, College of Dentistry, University of Baghdad, Baghdad, Iraq

Dheaa H Al-Groosh , Department of Orthodontics, College of Dentistry, University of Baghdad, Baghdad, Iraq

Department of Orthodontics, College of Dentistry, University of Baghdad, Baghdad, Iraq

Abdullah Albarkheel , King Faisal Specialist Hospital and Research Centre | KFSHRC ·Department of Dentistry, Saudi Arabia

King Faisal Specialist Hospital and Research Centre | KFSHRC ·Department of Dentistry, Saudi Arabia

How to Cite

1.
Aftan NL, Al-Groosh DH, Albarkheel A. Comparison of slot tolerance with manufacturing measurements of different stainless steel self-ligating brackets. J Bagh Coll Dent [Internet]. 2024 Dec. 15 [cited 2024 Dec. 18];36(4):15-21. Available from: https://jbcd.uobaghdad.edu.iq/index.php/jbcd/article/view/3819

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References

Mahdi HA, Saloom HF, Kashmola MA. Effects of fixed orthodontic appliance with antihypertensive drugs on the body weight of experimental rats. J Bagh Coll Dent. 2023; 15, 35(4):55-64. DOI: https://doi.org/10.26477/jbcd.v35i4.3515

Arreghini A, Lombardo L, Mollica F, Siciliani G. Torque expression capacity of 0.018 and 0.022 bracket slots by changing archwire material and cross-section. Prog Orthod. 2014; 15: 1-8. DOI: https://doi.org/10.1186/s40510-014-0053-x

Al-Thomali Y, Mohamed RN, Basha S. Torque expression in self-ligating orthodontic brackets and conventionally ligated brackets: A systematic review. J Clin Exp Dent. 2017; 9(1): e123.

Archambault A, Major TW, Carey JP, Heo G, Badawi H, Major PW. A comparison of torque expression between stainless steel, titanium molybdenum alloy, and copper nickel-titanium wires in metallic self-ligating brackets. Angle Orthod. 2010; 80(5):884-9. DOI: https://doi.org/10.2319/102809-604.1

Morina E, Eliades T, Pandis N, Jäger A, Bourauel C. Torque expression of self-ligating brackets compared with conventional metallic, ceramic, and plastic brackets. EJO. 2008; 30(3):233-8. DOI: https://doi.org/10.1093/ejo/cjn005

Meling TR, Ødegaard J, Seqner D. On bracket slot height: a methodologic study. AJO- DO. 1998; 113(4):387-93. DOI: https://doi.org/10.1016/S0889-5406(98)80009-7

Creekmore TD. Dr. Thomas D. Creekmore on torque. JCO. 1979; 13(5):305-10.

Creekmore TD, Kunik RL. Straight wire: the next generation. AJO-DO. 1993; 104(1):8-20. DOI: https://doi.org/10.1016/0889-5406(93)70023-H

Siatkowski RE. Loss of anterior torque control due to variations in bracket slot and archwire dimensions. JCO. 1999; 33(9):508-10.

Kusy RP, Whitley JQ. Assessment of second-order clearances between orthodontic archwires and bracket slots via the critical contact angle for binding. Angle Orthod. 1999; 69(1):71-80.

Nahidh M, Yassir YA. Evaluating orthodontic bracket slot dimensions and morphology: A narrative review. J Orthod Sci. 2023; 12(1):40. DOI: https://doi.org/10.4103/jos.jos_39_23

Joch A, Pichelmayer M, Weiland F. Bracket slot and archwire dimensions: manufacturing precision and third order clearance. J Orthod. 2010; 37(4):241-9. DOI: https://doi.org/10.1179/14653121043182

Al-Zubaidi HJ, Alhuwaizi AF. Molar Buccal Tubes Front and Back Openings Dimensions and Torsional Play. J Bagh Coll Dent. 2018; 30(3):32-9. DOI: https://doi.org/10.26477/jbcd.v30i3.2529

Yassir YA, McIntyre GT, Bearn DR. Variation in bracket slot sizes, ligation methods and prescriptions: UK national survey. In Orthod. 2019; 17(3):519-28. DOI: https://doi.org/10.1016/j.ortho.2019.06.012

Alhuwaizi AF, Jasim EJ. The effect of bracket ligation method on canine retraction. J Bagh Coll Dent. 2017; 29(3):92-8. DOI: https://doi.org/10.12816/0041188

Major TW, Carey JP, Nobes DS, Major PW. Orthodontic bracket manufacturing tolerances and dimensional differences between select self-ligating brackets. J Dent Biomech. 2010; 1(1):1-6. DOI: https://doi.org/10.4061/2010/781321

Erduran RH, Maeda FA, Ortiz SR, Triviño T, Fuziy A, Carvalho PE. Analysis on the precision of the dimensions of self‐ligating brackets. MRT. 2016; 79(12):1188-92. DOI: https://doi.org/10.1002/jemt.22774

Kumar, M., Padwal, V., Singh, T.K., Kumar, P., Agnani, S., Evaluation of Dimensional Accuracy of Slot Size in Passive Self-Ligating Brackets from Three Different Orthodontic Companies-An In-vitro Study. Int J Health Clin Res 2021; 4(3):45-48.

Bhalla NB, Good SA, McDonald F, Sherriff M, Cash AC. Assessment of slot sizes in self-ligating brackets using electron microscopy. Aust Orthod. 2010; 26(1):38-41. DOI: https://doi.org/10.2478/aoj-2010-0007

Kanbar HA, Obaid DH, Ibrahim AI. Evaluation of Friction and Surface Characteristics of Two Types of Self-Ligating Bracket Gate: An In Vitro Study. Dent Hypoth. 2022; 13(2):27 DOI: https://doi.org/10.4103/denthyp.denthyp_34_22

Shivapuja PK, Berger J. A comparative study of conventional ligation and self-ligation bracket systems. AJO-DO. 1994; 106(5):472-80. DOI: https://doi.org/10.1016/S0889-5406(94)70069-9

Pai VS, Pai SS, Krishna S, Swetha M. Evaluation of Slot Size in Orthodontic Brackets: Are Standards as Expected? J Indian Orthod Soc 2011; 45(4):169-174. DOI: https://doi.org/10.1177/0974909820110403

Brown P, Wagner W, Choi H. Orthodontic bracket slot dimensions as measured from entire bracket series. Angle Orthod. 2015; 85(4):678-82. DOI: https://doi.org/10.2319/042814-307.1

Abdaljawwad AA, Al-Groosh DH. Effects of various analgesics on pain perception and rate of tooth movement: a randomized controlled clinical study. J Bagh Coll Dent 2022;34(2):37-51. DOI: https://doi.org/10.26477/jbcd.v34i2.3144

Streva AM, Cotrim-Ferreira FA, Garib DG, Carvalho PE. Are torque values of preadjusted brackets precise? J. Appl. Oral Sci. 2011; 19:313-7. DOI: https://doi.org/10.1590/S1678-77572011005000003

Lefebvre C, Saadaoui H, Olive JM, Renaudin S, Jordana F. Variability of slot size in orthodontic brackets. Clin Exp Dent Res. 2019; 5(5):528-33. DOI: https://doi.org/10.1002/cre2.219

Pérez LE, Díaz RR, Botello GR, Olvera SP. Slot tolerance from three different commercial brands of brackets. Rev Mex Ortodon. 2014; 2(1):38-41. DOI: https://doi.org/10.1016/S2395-9215(16)30128-3

Al-Ubaydi, Ammar Sh., Al-Groosh, Dheaa, The Validity and Reliability of Automatic Tooth Segmentation Generated Using Artificial Intelligence, The Scientific World Journal, 2023, 5933003, 11: 2023. DOI: https://doi.org/10.1155/2023/5933003

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