Skip to main content
Top
Published in: Knee Surgery, Sports Traumatology, Arthroscopy 1/2013

01-01-2013 | Knee

Biomechanics of high tibial osteotomy

Author: Andrew A. Amis

Published in: Knee Surgery, Sports Traumatology, Arthroscopy | Issue 1/2013

Login to get access

Abstract

Purpose

This paper is a review of the biomechanical principles that support limb realignment surgery via osteotomy around the knee, principally high (proximal) tibial osteotomy.

Methods

The basic biomechanical principles have been described, and the related literature examined for evidence to support the recommendations made.

Results

The forces on the knee when walking are shown to lead to most of the load acting through the medial compartment, the most frequent site of degeneration of the knee, due to the adduction moment that acts during the weight-acceptance phase. Realignment of the limb to move the mechanical axis to a desired point within the knee is described, and the resulting joint contact pressures in the medial and lateral compartments are shown to be higher in the less-congruent lateral articulation when the load passes through the centre of the knee. At the same time, there can be changes of the posterior slope of the tibial plateau, and a slope of ten degrees can induce a shearing force, which stretches the ACL, of 0.5 body weight when the knee force is 3 times body weight. The options regarding tibial or femoral or even double osteotomies are discussed in relation to medial–lateral slope of the joint line. Secondary effects such as alteration of collateral ligament tension or of the height of the patella are described.

Conclusion

Critical review of the publications supporting osteotomy surgery suggests that many of the accepted ‘rules’ have little scientific evidence to show that they represent the best practise for long-term preservation of the joint.
Literature
1.
go back to reference Agneskirchner JD, Hurschler C, Stukenborg-Colsman C, Imhoff AB, Lobenhoffer P (2004) Effect of high tibial flexion osteotomy on cartilage pressure and joint kinematics: a biomechanical study in human cadaveric knees. Arch Orthop Traum Surg 124:575–584CrossRef Agneskirchner JD, Hurschler C, Stukenborg-Colsman C, Imhoff AB, Lobenhoffer P (2004) Effect of high tibial flexion osteotomy on cartilage pressure and joint kinematics: a biomechanical study in human cadaveric knees. Arch Orthop Traum Surg 124:575–584CrossRef
2.
go back to reference Agneskirchner JD, Hurschler C, Wrann CD, Lobenhoffer P (2007) The effects of valgus medial opening wedge high tibial osteotomy on articular cartilage pressure of the knee: a biomechanical study. Arthroscopy 23:852–861PubMedCrossRef Agneskirchner JD, Hurschler C, Wrann CD, Lobenhoffer P (2007) The effects of valgus medial opening wedge high tibial osteotomy on articular cartilage pressure of the knee: a biomechanical study. Arthroscopy 23:852–861PubMedCrossRef
3.
go back to reference Babis GC, An KN, Chao EYS, Rand JA, Sim FH (2002) Double level osteotomy of the knee: a method to retain joint-line obliquity: clinical results. J Bone Joint Surg Am 84:1380–1388PubMed Babis GC, An KN, Chao EYS, Rand JA, Sim FH (2002) Double level osteotomy of the knee: a method to retain joint-line obliquity: clinical results. J Bone Joint Surg Am 84:1380–1388PubMed
4.
go back to reference Barrios JA, Higginson JS, Royer TD, Davis IS (2009) Lower extremity walking mechanics of young individuals with asymptomatic varus knee alignment. J Orth Res 27:1414–1419CrossRef Barrios JA, Higginson JS, Royer TD, Davis IS (2009) Lower extremity walking mechanics of young individuals with asymptomatic varus knee alignment. J Orth Res 27:1414–1419CrossRef
5.
go back to reference Bellemans J, Colyn W, Vandenneucker H, Victor J (2012) Is neutral mechanical alignment normal for all patients? The concept of constitutional varus. Clin Orthop Rel Res 470:45–53CrossRef Bellemans J, Colyn W, Vandenneucker H, Victor J (2012) Is neutral mechanical alignment normal for all patients? The concept of constitutional varus. Clin Orthop Rel Res 470:45–53CrossRef
6.
go back to reference Bergmann G, Deuretzbacher G, Heller M, Graichen F, Rohlmann A, Strauss J, Duda GN (2001) Hip contact forces and gait patterns from routine activities. J Biomech 34:859–871PubMedCrossRef Bergmann G, Deuretzbacher G, Heller M, Graichen F, Rohlmann A, Strauss J, Duda GN (2001) Hip contact forces and gait patterns from routine activities. J Biomech 34:859–871PubMedCrossRef
7.
go back to reference Bito H, Takeuchi R, Kumagai K, Aratake M, Saito I, Sasaki Y, Saito T (2010) Opening wedge high tibial osteotomy affects both the lateral patellar tilt and patellar height. Knee Surg Sports Traumatol Arthrosc 18:955–960PubMedCrossRef Bito H, Takeuchi R, Kumagai K, Aratake M, Saito I, Sasaki Y, Saito T (2010) Opening wedge high tibial osteotomy affects both the lateral patellar tilt and patellar height. Knee Surg Sports Traumatol Arthrosc 18:955–960PubMedCrossRef
8.
go back to reference Coventry MB (1987) Proximal tibial varus osteotomy for osteoarthritis of the lateral compartment of the knee. J Bone Joint Surg Am 69:32–38PubMed Coventry MB (1987) Proximal tibial varus osteotomy for osteoarthritis of the lateral compartment of the knee. J Bone Joint Surg Am 69:32–38PubMed
9.
go back to reference El Amrani MH, Levy B, Scharycki S, Asselineau A (2010) Patellar height relevance on opening-wedge high tibial osteotomy. Orthop Traumatol Surg Res 96:37–43PubMedCrossRef El Amrani MH, Levy B, Scharycki S, Asselineau A (2010) Patellar height relevance on opening-wedge high tibial osteotomy. Orthop Traumatol Surg Res 96:37–43PubMedCrossRef
10.
go back to reference El-Azab H, Glabgly P, Paul J, Imhoff AB, Hinterwimmer S (2010) Patellar height and posterior tibial slope after open- and closed-wedge high tibial osteotomy: a radiological study on 100 patients. Am J Sports Med 38:323–329PubMedCrossRef El-Azab H, Glabgly P, Paul J, Imhoff AB, Hinterwimmer S (2010) Patellar height and posterior tibial slope after open- and closed-wedge high tibial osteotomy: a radiological study on 100 patients. Am J Sports Med 38:323–329PubMedCrossRef
11.
go back to reference Foroughi N, Smith R, Vanwanseele B (2009) The association of external knee adduction moment with biomechanical variables in osteoarthritis: a systematic review. Knee 16:303–309PubMedCrossRef Foroughi N, Smith R, Vanwanseele B (2009) The association of external knee adduction moment with biomechanical variables in osteoarthritis: a systematic review. Knee 16:303–309PubMedCrossRef
12.
go back to reference Fujisawa Y, Masuhara K, Shiomi S (1979) The effect of high tibial osteotomy on osteoarthritis of the knee. An arthroscopic study of 54 knee joints. Orthop Clin North Am 10:585–608PubMed Fujisawa Y, Masuhara K, Shiomi S (1979) The effect of high tibial osteotomy on osteoarthritis of the knee. An arthroscopic study of 54 knee joints. Orthop Clin North Am 10:585–608PubMed
13.
go back to reference Gaasbeek RD, Nicolaas L, Rijnberg WJ, van Loon CJ, van Kampen A (2010) Correction accuracy and collateral laxity in open versus closed wedge high tibial osteotomy. A one-year randomised controlled study. Int Orthop 34:201–207PubMedCrossRef Gaasbeek RD, Nicolaas L, Rijnberg WJ, van Loon CJ, van Kampen A (2010) Correction accuracy and collateral laxity in open versus closed wedge high tibial osteotomy. A one-year randomised controlled study. Int Orthop 34:201–207PubMedCrossRef
14.
go back to reference Giffin JR, Vogrin TM, Zantop T, Woo SLY, Harner CD (2004) Effects of increasing tibial slope on the biomechanics of the knee. Am J Sports Med 32:376–382PubMedCrossRef Giffin JR, Vogrin TM, Zantop T, Woo SLY, Harner CD (2004) Effects of increasing tibial slope on the biomechanics of the knee. Am J Sports Med 32:376–382PubMedCrossRef
15.
go back to reference Hashemi J, Chandrashekar N, Gill B, Beynnon BD, Slaughterbeck JR, Schutt RC, Mansouri H, Dabezies E (2008) The geometry of the tibial plateau and its influence on the biomechanics of the tibiofemoral joint. J Bone Joint Surg Am 90:2724–2734PubMedCrossRef Hashemi J, Chandrashekar N, Gill B, Beynnon BD, Slaughterbeck JR, Schutt RC, Mansouri H, Dabezies E (2008) The geometry of the tibial plateau and its influence on the biomechanics of the tibiofemoral joint. J Bone Joint Surg Am 90:2724–2734PubMedCrossRef
16.
go back to reference Hernigou P, Medevielle D, Debeyre J, Goutallier D (1987) Proximal tibial osteotomy with varus deformity. A 10 to 13-year follow-up study. J Bone Joint Surg Am 69:332–354PubMed Hernigou P, Medevielle D, Debeyre J, Goutallier D (1987) Proximal tibial osteotomy with varus deformity. A 10 to 13-year follow-up study. J Bone Joint Surg Am 69:332–354PubMed
17.
go back to reference Hofmann S, Lobenhoffer P, Staubli A, Van Heerwaarden R (2009) Osteotomies of the knee joint in patients with monocompartmental arthritis. (in German). Orthopade 38:755–770PubMedCrossRef Hofmann S, Lobenhoffer P, Staubli A, Van Heerwaarden R (2009) Osteotomies of the knee joint in patients with monocompartmental arthritis. (in German). Orthopade 38:755–770PubMedCrossRef
18.
go back to reference Kim SE, Pozzi A, Kowaleski MP, Lewis DD (2008) Review: tibial osteotomies for cranial cruciate ligament insufficiency in dogs. Vet Surg 37:111–125PubMedCrossRef Kim SE, Pozzi A, Kowaleski MP, Lewis DD (2008) Review: tibial osteotomies for cranial cruciate ligament insufficiency in dogs. Vet Surg 37:111–125PubMedCrossRef
19.
go back to reference Lee YS, Park SJ, Shin VI, Lee JH, Kim YH, Song EK (2010) Achievement of targeted posterior slope in the medial opening wedge high tibial osteotomy: a mathematical approach. Ann Bio Med Eng 38:583–593CrossRef Lee YS, Park SJ, Shin VI, Lee JH, Kim YH, Song EK (2010) Achievement of targeted posterior slope in the medial opening wedge high tibial osteotomy: a mathematical approach. Ann Bio Med Eng 38:583–593CrossRef
20.
go back to reference Liu-Barba D, Hull ML, Howell SM (2007) Coupled motions under compressive load in intact and ACL-deficient knees: a cadaveric study. J Biomech Eng 129:818–824PubMedCrossRef Liu-Barba D, Hull ML, Howell SM (2007) Coupled motions under compressive load in intact and ACL-deficient knees: a cadaveric study. J Biomech Eng 129:818–824PubMedCrossRef
21.
go back to reference Marti CB, Gautier E, Wachtl SW, Jakob RP (2004) Accuracy of frontal and sagittal plane correction in open-wedge high tibial osteotomy. Arthroscopy 20:366–372PubMedCrossRef Marti CB, Gautier E, Wachtl SW, Jakob RP (2004) Accuracy of frontal and sagittal plane correction in open-wedge high tibial osteotomy. Arthroscopy 20:366–372PubMedCrossRef
22.
go back to reference Meyer EG, Haut RC (2005) Excessive compression of the human tibio-femoral joint causes ACL rupture. J Biomech 38:2311–2316PubMedCrossRef Meyer EG, Haut RC (2005) Excessive compression of the human tibio-femoral joint causes ACL rupture. J Biomech 38:2311–2316PubMedCrossRef
23.
go back to reference Meyer EG, Haut RC (2008) Anterior cruciate ligament injury induced by internal tibial torsion or tibiofemoral compression. J Biomech 41:3377–3383PubMedCrossRef Meyer EG, Haut RC (2008) Anterior cruciate ligament injury induced by internal tibial torsion or tibiofemoral compression. J Biomech 41:3377–3383PubMedCrossRef
24.
go back to reference Pape D, Lorbach O, Schmitz C, Busch LC, Van Giffen N, Seil R, Kohn DM (2010) Effect of biplanar osteotomy on primary stability following high tibial osteotomy: a biomechanical cadaver study. Knee Surg Sports Traumatol Arthrosc 18:204–211PubMedCrossRef Pape D, Lorbach O, Schmitz C, Busch LC, Van Giffen N, Seil R, Kohn DM (2010) Effect of biplanar osteotomy on primary stability following high tibial osteotomy: a biomechanical cadaver study. Knee Surg Sports Traumatol Arthrosc 18:204–211PubMedCrossRef
25.
go back to reference Paul JP (1976) Force actions transmitted by joints in the human body. Proc Roy Soc Lond B Biol Sci 192:163–172CrossRef Paul JP (1976) Force actions transmitted by joints in the human body. Proc Roy Soc Lond B Biol Sci 192:163–172CrossRef
26.
go back to reference Robinson JR, Bull AMJ, Amis AA (2005) Structural properties of the medial collateral ligament complex of the human knee. J Biomech 38:1067–1074PubMedCrossRef Robinson JR, Bull AMJ, Amis AA (2005) Structural properties of the medial collateral ligament complex of the human knee. J Biomech 38:1067–1074PubMedCrossRef
27.
go back to reference Rodner CM, Adams DJ, Diaz-Doran V, Tate JP, Santangelo SA, Mazzocca AD, Arciero RA (2006) Medial opening wedge tibial osteotomy and the sagittal plane: the effect of increasing tibial slope on tibiofemoral contact pressure. Am J Sports Med 34:1431–1441PubMedCrossRef Rodner CM, Adams DJ, Diaz-Doran V, Tate JP, Santangelo SA, Mazzocca AD, Arciero RA (2006) Medial opening wedge tibial osteotomy and the sagittal plane: the effect of increasing tibial slope on tibiofemoral contact pressure. Am J Sports Med 34:1431–1441PubMedCrossRef
28.
go back to reference Savarese E, Bisicchia S, Romeo R, Amendola A (2011) Role of high tibial osteotomy in chronic injuries of posterior cruciate ligament and posterolateral corner. J Orthop Traumatol 12:1–17PubMedCrossRef Savarese E, Bisicchia S, Romeo R, Amendola A (2011) Role of high tibial osteotomy in chronic injuries of posterior cruciate ligament and posterolateral corner. J Orthop Traumatol 12:1–17PubMedCrossRef
29.
go back to reference Segal NA, Anderson DD, Iyer KS, Baker J, Torner JC, Lynch JA, Felson DT, Lewis CE, Brown TD (2009) Baseline articular contact stress levels predict incident symptomatic knee osteoarthritis development in the MOST cohort. J Orthop Res 27:1562–1568PubMedCrossRef Segal NA, Anderson DD, Iyer KS, Baker J, Torner JC, Lynch JA, Felson DT, Lewis CE, Brown TD (2009) Baseline articular contact stress levels predict incident symptomatic knee osteoarthritis development in the MOST cohort. J Orthop Res 27:1562–1568PubMedCrossRef
30.
go back to reference Shelburne KB, Torry MR, Pandy MG (2005) Ligament and joint-contact forces at the knee during walking. Med Sci Sports Exerc 37:1948–1956PubMedCrossRef Shelburne KB, Torry MR, Pandy MG (2005) Ligament and joint-contact forces at the knee during walking. Med Sci Sports Exerc 37:1948–1956PubMedCrossRef
31.
go back to reference Shelburne KB, Kim HJ, Sterett WI, Pandy MG (2010) Effect of posterior tibial slope on knee biomechanics during functional activity. J Orthop Res 28:1–9 Shelburne KB, Kim HJ, Sterett WI, Pandy MG (2010) Effect of posterior tibial slope on knee biomechanics during functional activity. J Orthop Res 28:1–9
32.
go back to reference Teichtahl AJ, Davies-Tuck ML, Wluka AE, Jones G (2009) Change in knee angle influences the rate of medial tibial cartilage volume loss in knee osteoarthritis. Osteoarthrits Cartilage 17:8–11CrossRef Teichtahl AJ, Davies-Tuck ML, Wluka AE, Jones G (2009) Change in knee angle influences the rate of medial tibial cartilage volume loss in knee osteoarthritis. Osteoarthrits Cartilage 17:8–11CrossRef
Metadata
Title
Biomechanics of high tibial osteotomy
Author
Andrew A. Amis
Publication date
01-01-2013
Publisher
Springer-Verlag
Published in
Knee Surgery, Sports Traumatology, Arthroscopy / Issue 1/2013
Print ISSN: 0942-2056
Electronic ISSN: 1433-7347
DOI
https://doi.org/10.1007/s00167-012-2122-3

Other articles of this Issue 1/2013

Knee Surgery, Sports Traumatology, Arthroscopy 1/2013 Go to the issue