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Published in: BMC Musculoskeletal Disorders 1/2019

Open Access 01-12-2019 | Computed Tomography | Research article

Analysis of the effect of tibial torsion on tibial osteotomy in knee arthroplasty using a three-dimensional computed tomography-based modelling technique

Authors: Yeran Li, Yu-Hang Gao, Lu-Ding, Jianguo Liu, Chen Yang, Ming Li, Xin Qi

Published in: BMC Musculoskeletal Disorders | Issue 1/2019

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Abstract

Background

Extramedullary systems are commonly used in knee arthroplasty, with the rod location being determined from the tibial torsion line during surgery. The traditional method for tibial torsion measurement is not in accordance with clinical practice. This study aimed to evaluate proximal and distal tibial torsion using 3-dimensional (3D) computed technology to establish a new evaluation method, as well as to investigate the association between tibial torsion and postoperative alignment deviation.

Methods

Fifty-five osteoarthritis tibias with >10°varus preoperatively were divided into valgus, neutral, and varus groups based on their postoperative alignment deviation. A new method based on clinical practice was built using a 3D tibial model. Proximal and distal tibial torsions were measured by both the new and traditional methods. In addition, tibial osteotomy that followed the intramedullary osteotomy system was simulated on the 3D model in the varus and valgus groups to investigate the association between tibial torsion and alignment deviation.

Results

Proximal tibial torsion was smaller and distal torsion was greater in the valgus group than the other two groups, according to the new method (p = 0.03 and p = 0.02, respectively). No significant difference was found when comparing these torsions by the traditional method (p = 0.782 and p = 0.753, respectively). In the valgus group, the postoperative alignment deviation improved after simulated osteotomy guided by the intramedullary system, while no significant improvement was found in the varus group.

Conclusion

According to this new tibial-rotation evaluation method, valgus deviation in knee arthroplasty was identified as the main cause for knees in which the proximal tibial internal torsion is too small and the distal external torsion is too great. The use of an intramedullary system may help reduce this deviation.

Trial registration

Prospectively registered.
Literature
1.
go back to reference Miller MC, Berger RA, Petrella AJ, Karmas A, Rubash HE. Optimizing femoral component rotation in total knee arthroplasty. Clin Orthop Relat Res. 2001;392:38–45.CrossRef Miller MC, Berger RA, Petrella AJ, Karmas A, Rubash HE. Optimizing femoral component rotation in total knee arthroplasty. Clin Orthop Relat Res. 2001;392:38–45.CrossRef
2.
go back to reference Miyanishi K, Nagamine R, Murayama S, Miura H, Urabe K, Matsuda S, et al. Tibial tubercle malposition in patellar joint instability: a computed tomography study in full extension and at 30degree flexion. Acta Orthop Scand. 2000;71:286–91.CrossRef Miyanishi K, Nagamine R, Murayama S, Miura H, Urabe K, Matsuda S, et al. Tibial tubercle malposition in patellar joint instability: a computed tomography study in full extension and at 30degree flexion. Acta Orthop Scand. 2000;71:286–91.CrossRef
3.
go back to reference Moreland JR. Mechanisms of failure in total knee arthroplasty. Clin Orthop Relat Res. 1988;226:49-64. Moreland JR. Mechanisms of failure in total knee arthroplasty. Clin Orthop Relat Res. 1988;226:49-64.
4.
go back to reference Dalury DF. Observations of the proximal tibia in total knee arthroplasty. Clin Orthop Relat Res. 2001;389:150–5.CrossRef Dalury DF. Observations of the proximal tibia in total knee arthroplasty. Clin Orthop Relat Res. 2001;389:150–5.CrossRef
5.
go back to reference Howell S, Chen J, Hull M. Variability of the location of the tibia tubercle affects the rotational alignment of the tibial component in kinematically aligned total knee arthroplasty. Knee Surg Sports Traumatol Arthrosc. 2013;21:2288–95.CrossRef Howell S, Chen J, Hull M. Variability of the location of the tibia tubercle affects the rotational alignment of the tibial component in kinematically aligned total knee arthroplasty. Knee Surg Sports Traumatol Arthrosc. 2013;21:2288–95.CrossRef
6.
go back to reference Cinotti G, Sessa P, Rocca AD, Ripani FR, Giannicola G. Effects of tibial torsion on distal alignment of extramedullary instrumentation in total knee arthroplasty. Acta Orthop. 2013;84:275–9.CrossRef Cinotti G, Sessa P, Rocca AD, Ripani FR, Giannicola G. Effects of tibial torsion on distal alignment of extramedullary instrumentation in total knee arthroplasty. Acta Orthop. 2013;84:275–9.CrossRef
7.
go back to reference Akagi M, Mori S, Nishimura S, Nishimura A, Asano T, Hamanishi C. Variability of extra articular tibial rotation references for total knee arthroplasty. Clin Orthop Relat Res. 2005;436:172–6.CrossRef Akagi M, Mori S, Nishimura S, Nishimura A, Asano T, Hamanishi C. Variability of extra articular tibial rotation references for total knee arthroplasty. Clin Orthop Relat Res. 2005;436:172–6.CrossRef
8.
go back to reference Takahashi A, Aizawa T, Aki T, Kashiwaba M, Kamimura M, Hitachi S, et al. Effect of medial tibial torsion on the sagittal alignment of lower legs in patients with medial knee osteoarthritis. Surg Radiol Anat. 2013;35:205–10.CrossRef Takahashi A, Aizawa T, Aki T, Kashiwaba M, Kamimura M, Hitachi S, et al. Effect of medial tibial torsion on the sagittal alignment of lower legs in patients with medial knee osteoarthritis. Surg Radiol Anat. 2013;35:205–10.CrossRef
9.
go back to reference Mizu-Uchi H, Matsuda S, Miura H, Hikagi H, Okazaki K, Iwamoto Y. The effect of ankle rotation on cutting of the tibia in total knee arthroplasty. J Bone Joint Surg Am. 2006;88:2632–6.CrossRef Mizu-Uchi H, Matsuda S, Miura H, Hikagi H, Okazaki K, Iwamoto Y. The effect of ankle rotation on cutting of the tibia in total knee arthroplasty. J Bone Joint Surg Am. 2006;88:2632–6.CrossRef
10.
go back to reference Simmons ED Jr, Sullivan JA, Rackemann S, Scott RD. The accuracy of tibial intramedullary alignment devices in total knee arthroplasty. J Arthroplast. 1991;6:45–50.CrossRef Simmons ED Jr, Sullivan JA, Rackemann S, Scott RD. The accuracy of tibial intramedullary alignment devices in total knee arthroplasty. J Arthroplast. 1991;6:45–50.CrossRef
11.
go back to reference Alagha R, Gotia D. Anatomical and biomechanical considerations in axial deviations of lower limb. J Ped. 2009;45-46:3–5. Alagha R, Gotia D. Anatomical and biomechanical considerations in axial deviations of lower limb. J Ped. 2009;45-46:3–5.
12.
go back to reference Gandhi S, Singla RK, Kullar JS, Agnihotri G, Mehta V, Suri RK, et al. Human tibial torsion-morphometric assessment and clinical relevance. Biom J. 2014;37:10–3. Gandhi S, Singla RK, Kullar JS, Agnihotri G, Mehta V, Suri RK, et al. Human tibial torsion-morphometric assessment and clinical relevance. Biom J. 2014;37:10–3.
13.
go back to reference Mochizuki T, Tanifuji O, Koga Y, Hata R, Mori T, Nishino K, et al. External torsion in a proximal tibia and internal torsion in a distal tibia occur independently in varus osteoarthritic knees compared to healthy knees. J Orthop Sci. 2017;22:501–5.CrossRef Mochizuki T, Tanifuji O, Koga Y, Hata R, Mori T, Nishino K, et al. External torsion in a proximal tibia and internal torsion in a distal tibia occur independently in varus osteoarthritic knees compared to healthy knees. J Orthop Sci. 2017;22:501–5.CrossRef
14.
go back to reference Khan MS, Seon JK, Song EK. Rotational profile of lower limb and axis for tibial component alignment in varus osteoarthritic knees. J Arthroplast. 2012;27:797–802.CrossRef Khan MS, Seon JK, Song EK. Rotational profile of lower limb and axis for tibial component alignment in varus osteoarthritic knees. J Arthroplast. 2012;27:797–802.CrossRef
15.
go back to reference Eckhoff DG, Johnson KK. Three-dimensional computed tomography reconstruction of tibial torsion. Clin Orthop Relat Res. 1994;302:42–6. Eckhoff DG, Johnson KK. Three-dimensional computed tomography reconstruction of tibial torsion. Clin Orthop Relat Res. 1994;302:42–6.
16.
go back to reference Stuberg W, Temme J, Kaplan P, Clarke A, Fuchs R. Measurement of tibial torsion and thigh-foot angle using goniometry and computed tomography. Clin Orthop Relat Res. 1991;272:208–12. Stuberg W, Temme J, Kaplan P, Clarke A, Fuchs R. Measurement of tibial torsion and thigh-foot angle using goniometry and computed tomography. Clin Orthop Relat Res. 1991;272:208–12.
17.
go back to reference Gonzalez-Carbonell RA, Ortiz-Prado A, Jacobo-Armendáriz VH, Cisneros-Hidalgo YA, Alpízar-Aguirre A. 3D patient-specific model of the tibia from CT for orthopedic use. J Orthop. 2015;12:11–6.CrossRef Gonzalez-Carbonell RA, Ortiz-Prado A, Jacobo-Armendáriz VH, Cisneros-Hidalgo YA, Alpízar-Aguirre A. 3D patient-specific model of the tibia from CT for orthopedic use. J Orthop. 2015;12:11–6.CrossRef
Metadata
Title
Analysis of the effect of tibial torsion on tibial osteotomy in knee arthroplasty using a three-dimensional computed tomography-based modelling technique
Authors
Yeran Li
Yu-Hang Gao
Lu-Ding
Jianguo Liu
Chen Yang
Ming Li
Xin Qi
Publication date
01-12-2019
Publisher
BioMed Central
Published in
BMC Musculoskeletal Disorders / Issue 1/2019
Electronic ISSN: 1471-2474
DOI
https://doi.org/10.1186/s12891-019-2744-4

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