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Published in: Clinical Orthopaedics and Related Research® 4/2016

01-04-2016 | Basic Research

How Do Hindfoot Fusions Affect Ankle Biomechanics: A Cadaver Model

Authors: Ian D. Hutchinson, MD, Josh R. Baxter, PhD, Susannah Gilbert, MS, MaCalus V. Hogan, MD, Jeff Ling, FRCAS, Stuart M. Saunders, MD, Hongsheng Wang, PhD, John G. Kennedy, MD

Published in: Clinical Orthopaedics and Related Research® | Issue 4/2016

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Abstract

Background

While successful subtalar joint arthrodesis provides pain relief, resultant alterations in ankle biomechanics need to be considered, as this procedure may predispose the remaining hindfoot and tibiotalar joint to accelerated degenerative changes. However, the biomechanical consequences of isolated subtalar joint arthrodesis and additive fusions of the Chopart’s joints on tibiotalar joint biomechanics remain poorly understood.

Questions/purposes

We asked: What is the effect of isolated subtalar fusion and sequential Chopart’s joint fusions of the talonavicular and calcaneocuboid joints on tibiotalar joint (1) mechanics and (2) kinematics during loading for neutral, inverted, and everted orientations of the foot?

Methods

We evaluated the total force, contact area, and the magnitude and distribution of the contact stress on the articular surface of the talar dome, while simultaneously tracking the position of the talus relative to the tibia during loading in seven fresh-frozen cadaver feet. Each foot was loaded in the unfused, intact control condition followed by three randomized simulated hindfoot arthrodesis modalities: subtalar, double (subtalar and talonavicular), and triple (subtalar, talonavicular, and calcaneocuboid) arthrodesis. The intact and arthrodesis conditions were tested in three alignments using a metallic wedge insert: neutral (flat), 10° inverted, and 10° everted.

Results

Tibiotalar mechanics (total force and contact area) and kinematics (external rotation) differed owing to hindfoot arthrodeses. After subtalar arthrodesis, there were decreases in total force (445 ± 142 N, 95% CI, 340-550 N, versus 588 ± 118 N, 95% CI, 500–676 N; p < 0.001) and contact area (282 mm2, 95% CI, 222–342 mm2, versus 336 ± 96 mm2, 95% CI, 265–407 mm2; p < 0.026) detected during loading in the neutral position; these changes also were seen in the everted foot position. Hindfoot arthrodesis also was associated with increased external rotation of the tibiotalar joint during loading: subtalar arthrodesis in the neutral loading position (3.3° ± 1.6°; 95% CI, 2°–4.6°; p = 0.004) and everted loading position (4.8° ± 2.6°; 95% CI, 2.7°–6.8°; p = 0.043); double arthrodesis in neutral (4.4° ± 2°; 95% CI, 2.8°–6°; p = 0.003) and inverted positions (5.8° ± 2.6°; 95% CI, 3.7°–7.9°; p = 0.002), and triple arthrodesis in all loaded orientations including neutral (4.5° ± 1.8°; 95% CI, 3.1°–5.9°; p = 0.002), inverted (6.4° ± 3.5°; 95% CI, 3.6°–9.2°; p = 0.009), and everted (3.6° ± 2°; 95% CI, 2°–5.2°; p = 0.053) positions. Finally, after subtalar arthrodesis, additive fusions at Chopart’s joints did not appear to result in additional observed differences in tibiotalar contact mechanics or kinematics with the number of specimens available.

Conclusions

Using a cadaveric biomechanical model, we identified some predictable trends in ankle biomechanics during loading after hindfoot fusion. In our tested specimens, fusion of the subtalar joint appeared to exert a dominant influence over ankle loading.

Clinical Relevance

A loss or deficit in function of the subtalar joint may be sufficient to alter ankle loading. These findings warrant consideration in the treatment of the arthritic hindfoot and also toward defining biomechanical goals for ankle arthroplasty in the setting of concomitant hindfoot degeneration or arthrodesis.
Literature
1.
go back to reference Astion DJ, Deland JT, Otis JC, Kenneally S. Motion of the hindfoot after simulated arthrodesis. J Bone Joint Surg Am. 1997;79:241–246.PubMed Astion DJ, Deland JT, Otis JC, Kenneally S. Motion of the hindfoot after simulated arthrodesis. J Bone Joint Surg Am. 1997;79:241–246.PubMed
2.
go back to reference Baxter JR, Demetracopoulos CA, Prado MP, Gilbert SL, Tharmviboonsri T, Deland JT. Graft shape affects midfoot correction and forefoot loading mechanics in lateral column lengthening osteotomies. Foot Ankle Int. 2014;35:1192–1199.CrossRefPubMed Baxter JR, Demetracopoulos CA, Prado MP, Gilbert SL, Tharmviboonsri T, Deland JT. Graft shape affects midfoot correction and forefoot loading mechanics in lateral column lengthening osteotomies. Foot Ankle Int. 2014;35:1192–1199.CrossRefPubMed
3.
go back to reference Baxter JR, Demetracopoulos CA, Prado MP, Tharmviboonsri T, Deland JT. Lateral column lengthening corrects hindfoot valgus in a cadaveric flatfoot model. Foot Ankle Int. 2015;36:705–709.CrossRefPubMed Baxter JR, Demetracopoulos CA, Prado MP, Tharmviboonsri T, Deland JT. Lateral column lengthening corrects hindfoot valgus in a cadaveric flatfoot model. Foot Ankle Int. 2015;36:705–709.CrossRefPubMed
4.
go back to reference Beaudoin AJ, Fiore SM, Krause WR, Adelaar RS. Effect of isolated talocalcaneal fusion on contact in the ankle and talonavicular joints. Foot Ankle. 1991;12:19–25.CrossRefPubMed Beaudoin AJ, Fiore SM, Krause WR, Adelaar RS. Effect of isolated talocalcaneal fusion on contact in the ankle and talonavicular joints. Foot Ankle. 1991;12:19–25.CrossRefPubMed
5.
go back to reference Beimers L, Tuijthof GJ, Blankevoort L, Jonges R, Maas M, van Dijk CN. In-vivo range of motion of the subtalar joint using computed tomography. J Biomech. 2008;41:1390–1397.CrossRefPubMed Beimers L, Tuijthof GJ, Blankevoort L, Jonges R, Maas M, van Dijk CN. In-vivo range of motion of the subtalar joint using computed tomography. J Biomech. 2008;41:1390–1397.CrossRefPubMed
6.
go back to reference Brimacombe JM, Wilson DR, Hodgson AJ, Ho KC, Anglin C. Effect of calibration method on Tekscan sensor accuracy. J Biomech Eng. 2009;131:034503.CrossRefPubMed Brimacombe JM, Wilson DR, Hodgson AJ, Ho KC, Anglin C. Effect of calibration method on Tekscan sensor accuracy. J Biomech Eng. 2009;131:034503.CrossRefPubMed
7.
go back to reference Calhoun JH, Li F, Ledbetter BR, Viegas SF. A comprehensive study of pressure distribution in the ankle joint with inversion and eversion. Foot Ankle Int. 1994;15:125–133.CrossRefPubMed Calhoun JH, Li F, Ledbetter BR, Viegas SF. A comprehensive study of pressure distribution in the ankle joint with inversion and eversion. Foot Ankle Int. 1994;15:125–133.CrossRefPubMed
8.
go back to reference Chen CT, Bhargava M, Lin PM, Torzilli PA. Time, stress, and location dependent chondrocyte death and collagen damage in cyclically loaded articular cartilage. J Orthop Res. 2003;21:888–898.CrossRefPubMed Chen CT, Bhargava M, Lin PM, Torzilli PA. Time, stress, and location dependent chondrocyte death and collagen damage in cyclically loaded articular cartilage. J Orthop Res. 2003;21:888–898.CrossRefPubMed
9.
go back to reference Damavandi M, Dixon PC, Pearsall DJ. Kinematic adaptations of the hindfoot, forefoot, and hallux during cross-slope walking. Gait Posture. 2010;32:411–415.CrossRefPubMed Damavandi M, Dixon PC, Pearsall DJ. Kinematic adaptations of the hindfoot, forefoot, and hallux during cross-slope walking. Gait Posture. 2010;32:411–415.CrossRefPubMed
10.
go back to reference Damavandi M, Dixon PC, Pearsall DJ. Ground reaction force adaptations during cross-slope walking and running. Hum Move Sci. 2012;31:182–189.CrossRef Damavandi M, Dixon PC, Pearsall DJ. Ground reaction force adaptations during cross-slope walking and running. Hum Move Sci. 2012;31:182–189.CrossRef
11.
go back to reference Davies MB, Rosenfeld PF, Stavrou P, Saxby TS. A comprehensive review of subtalar arthrodesis. Foot Ankle Int. 2007;28:295–297.CrossRefPubMed Davies MB, Rosenfeld PF, Stavrou P, Saxby TS. A comprehensive review of subtalar arthrodesis. Foot Ankle Int. 2007;28:295–297.CrossRefPubMed
12.
go back to reference De Cock A, Vanrenterghem J, Willems T, Witvrouw E, De Clercq D. The trajectory of the centre of pressure during barefoot running as a potential measure for foot function. Gait Posture. 2008;27:669–675.CrossRefPubMed De Cock A, Vanrenterghem J, Willems T, Witvrouw E, De Clercq D. The trajectory of the centre of pressure during barefoot running as a potential measure for foot function. Gait Posture. 2008;27:669–675.CrossRefPubMed
13.
go back to reference de Heus JA, Marti RK, Besselaar PP, Albers GH. The influence of subtalar and triple arthrodesis on the tibiotalar joint: a long-term follow-up study. J Bone Joint Surg Br. 1997;79:644–647.CrossRefPubMed de Heus JA, Marti RK, Besselaar PP, Albers GH. The influence of subtalar and triple arthrodesis on the tibiotalar joint: a long-term follow-up study. J Bone Joint Surg Br. 1997;79:644–647.CrossRefPubMed
14.
go back to reference Easley ME, Trnka HJ, Schon LC, Myerson MS. Isolated subtalar arthrodesis. J Bone Joint Surg Am. 2000;82:613–624.PubMed Easley ME, Trnka HJ, Schon LC, Myerson MS. Isolated subtalar arthrodesis. J Bone Joint Surg Am. 2000;82:613–624.PubMed
15.
go back to reference Ebalard M, Le Henaff G, Sigonney G, Lopes R, Kerhousse G, Brilhault J, Huten D. Risk of osteoarthritis secondary to partial or total arthrodesis of the subtalar and midtarsal joints after a minimum follow-up of 10 years. Orthop Traumatol Surg Res. 2014;100(4 suppl):S231–237.CrossRefPubMed Ebalard M, Le Henaff G, Sigonney G, Lopes R, Kerhousse G, Brilhault J, Huten D. Risk of osteoarthritis secondary to partial or total arthrodesis of the subtalar and midtarsal joints after a minimum follow-up of 10 years. Orthop Traumatol Surg Res. 2014;100(4 suppl):S231–237.CrossRefPubMed
16.
go back to reference Imhauser CW, Siegler S, Udupa JK, Toy JR. Subject-specific models of the hindfoot reveal a relationship between morphology and passive mechanical properties. J Biomech. 2008;41:1341–1349.CrossRefPubMedPubMedCentral Imhauser CW, Siegler S, Udupa JK, Toy JR. Subject-specific models of the hindfoot reveal a relationship between morphology and passive mechanical properties. J Biomech. 2008;41:1341–1349.CrossRefPubMedPubMedCentral
17.
go back to reference Jastifer JR, Gustafson PA, Gorman RR. Subtalar arthrodesis alignment: the effect on ankle biomechanics. Foot Ankle Int. 2013;34:244–250.CrossRefPubMed Jastifer JR, Gustafson PA, Gorman RR. Subtalar arthrodesis alignment: the effect on ankle biomechanics. Foot Ankle Int. 2013;34:244–250.CrossRefPubMed
19.
go back to reference Kim BS, Knupp M, Zwicky L, Lee JW, Hintermann B. Total ankle replacement in association with hindfoot fusion: outcome and complications. J Bone Joint Surg Br. 2010;92:1540–1547.CrossRefPubMed Kim BS, Knupp M, Zwicky L, Lee JW, Hintermann B. Total ankle replacement in association with hindfoot fusion: outcome and complications. J Bone Joint Surg Br. 2010;92:1540–1547.CrossRefPubMed
20.
go back to reference Kim PH, Chen X, Hillstrom H, Ellis SJ, Baxter JR, Deland JT. Moberg osteotomy shifts contact pressure plantarly in the first metatarsophalangeal joint in a biomechanical model. Foot Ankle Int. 2015 Sept 18. [Epub ahead of print] Kim PH, Chen X, Hillstrom H, Ellis SJ, Baxter JR, Deland JT. Moberg osteotomy shifts contact pressure plantarly in the first metatarsophalangeal joint in a biomechanical model. Foot Ankle Int. 2015 Sept 18. [Epub ahead of print]
21.
go back to reference Ko FC, Dragomir C, Plumb DA, Goldring SR, Wright TM, Goldring MB, van der Meulen MC. In vivo cyclic compression causes cartilage degeneration and subchondral bone changes in mouse tibiae. Arthritis Rheum. 2013;65:1569–1578.CrossRefPubMedPubMedCentral Ko FC, Dragomir C, Plumb DA, Goldring SR, Wright TM, Goldring MB, van der Meulen MC. In vivo cyclic compression causes cartilage degeneration and subchondral bone changes in mouse tibiae. Arthritis Rheum. 2013;65:1569–1578.CrossRefPubMedPubMedCentral
22.
go back to reference Leardini A, Stagni R, O’Connor JJ. Mobility of the subtalar joint in the intact ankle complex. J Biomech. 2001;34:805–809.CrossRefPubMed Leardini A, Stagni R, O’Connor JJ. Mobility of the subtalar joint in the intact ankle complex. J Biomech. 2001;34:805–809.CrossRefPubMed
23.
24.
25.
go back to reference Milentijevic D, Torzilli PA. Influence of stress rate on water loss, matrix deformation and chondrocyte viability in impacted articular cartilage. J Biomech. 2005;38:493–502.CrossRefPubMed Milentijevic D, Torzilli PA. Influence of stress rate on water loss, matrix deformation and chondrocyte viability in impacted articular cartilage. J Biomech. 2005;38:493–502.CrossRefPubMed
26.
go back to reference Oh I, Imhauser C, Choi D, Williams B, Ellis S, Deland J. Sensitivity of plantar pressure and talonavicular alignment to lateral column lengthening in flatfoot reconstruction. J Bone Joint Surg Am. 2013;95:1094–1100.CrossRefPubMed Oh I, Imhauser C, Choi D, Williams B, Ellis S, Deland J. Sensitivity of plantar pressure and talonavicular alignment to lateral column lengthening in flatfoot reconstruction. J Bone Joint Surg Am. 2013;95:1094–1100.CrossRefPubMed
27.
go back to reference Payette CR, Sage RA, Gonzalez JV, Sartori M, Patwardhan A, Vrbos L. Triple arthrodesis stabilization: a quantitative analysis of screw versus staple fixation in fresh cadaveric matched-pair specimens. J Foot Ankle Surg. 1998;37:472–480.CrossRefPubMed Payette CR, Sage RA, Gonzalez JV, Sartori M, Patwardhan A, Vrbos L. Triple arthrodesis stabilization: a quantitative analysis of screw versus staple fixation in fresh cadaveric matched-pair specimens. J Foot Ankle Surg. 1998;37:472–480.CrossRefPubMed
28.
go back to reference Pell RF 4th, Myerson MS, Schon LC. Clinical outcome after primary triple arthrodesis. J Bone Joint Surg Am. 2000;82:47–57.PubMed Pell RF 4th, Myerson MS, Schon LC. Clinical outcome after primary triple arthrodesis. J Bone Joint Surg Am. 2000;82:47–57.PubMed
29.
go back to reference Sammarco VJ, Magur EG, Sammarco GJ, Bagwe MR. Arthrodesis of the subtalar and talonavicular joints for correction of symptomatic hindfoot malalignment. Foot Ankle Int. 2006;27:661–666.PubMed Sammarco VJ, Magur EG, Sammarco GJ, Bagwe MR. Arthrodesis of the subtalar and talonavicular joints for correction of symptomatic hindfoot malalignment. Foot Ankle Int. 2006;27:661–666.PubMed
30.
go back to reference Siegler S, Toy J, Seale D, Pedowitz D. The Clinical Biomechanics Award 2013–presented by the International Society of Biomechanics: new observations on the morphology of the talar dome and its relationship to ankle kinematics. Clin Biomech (Bristol, Avon). 2014;29:1–6. Siegler S, Toy J, Seale D, Pedowitz D. The Clinical Biomechanics Award 2013–presented by the International Society of Biomechanics: new observations on the morphology of the talar dome and its relationship to ankle kinematics. Clin Biomech (Bristol, Avon). 2014;29:1–6.
31.
go back to reference Smith RW, Shen W, Dewitt S, Reischl SF. Triple arthrodesis in adults with non-paralytic disease; a minimum ten-year follow-up study. J Bone Joint Surg Am. 2004;86:2707–2713.PubMed Smith RW, Shen W, Dewitt S, Reischl SF. Triple arthrodesis in adults with non-paralytic disease; a minimum ten-year follow-up study. J Bone Joint Surg Am. 2004;86:2707–2713.PubMed
32.
go back to reference Stormont DM, Morrey BF, An KN, Cass JR. Stability of the loaded ankle: relation between articular restraint and primary and secondary static restraints. Am J Sports Med. 1985;13:295–300.CrossRefPubMed Stormont DM, Morrey BF, An KN, Cass JR. Stability of the loaded ankle: relation between articular restraint and primary and secondary static restraints. Am J Sports Med. 1985;13:295–300.CrossRefPubMed
33.
go back to reference Suckel A, Muller O, Herberts T, Langenstein P, Reize P, Wulker N. Talonavicular arthrodesis or triple arthrodesis: peak pressure in the adjacent joints measured in 8 cadaver specimens. Acta Orthop. 2007;78:592–597.CrossRefPubMed Suckel A, Muller O, Herberts T, Langenstein P, Reize P, Wulker N. Talonavicular arthrodesis or triple arthrodesis: peak pressure in the adjacent joints measured in 8 cadaver specimens. Acta Orthop. 2007;78:592–597.CrossRefPubMed
34.
go back to reference Suckel A, Muller O, Herberts T, Langenstein P, Wulker N. [Loading of the tibiotalar joint and Chopart’s joint following subtalar arthrodesis: dynamic cadaver study of 5 specimens][in German]. Z Orthop Unfall. 2008;146:86–91.PubMed Suckel A, Muller O, Herberts T, Langenstein P, Wulker N. [Loading of the tibiotalar joint and Chopart’s joint following subtalar arthrodesis: dynamic cadaver study of 5 specimens][in German]. Z Orthop Unfall. 2008;146:86–91.PubMed
35.
go back to reference Tochigi Y, Rudert MJ, Saltzman CL, Amendola A, Brown TD. Contribution of articular surface geometry to ankle stabilization. J Bone Joint Surgery Am. 2006;88:2704–2713.CrossRef Tochigi Y, Rudert MJ, Saltzman CL, Amendola A, Brown TD. Contribution of articular surface geometry to ankle stabilization. J Bone Joint Surgery Am. 2006;88:2704–2713.CrossRef
36.
go back to reference Tuijthof GJ, Zengerink M, Beimers L, Jonges R, Maas M, van Dijk CN, Blankevoort L. Determination of consistent patterns of range of motion in the ankle joint with a computed tomography stress-test. Clin Biomech (Bristol, Avon). 2009;24:517–523. Tuijthof GJ, Zengerink M, Beimers L, Jonges R, Maas M, van Dijk CN, Blankevoort L. Determination of consistent patterns of range of motion in the ankle joint with a computed tomography stress-test. Clin Biomech (Bristol, Avon). 2009;24:517–523.
37.
go back to reference Wang H, Chen T, Koff MF, Hutchinson ID, Gilbert S, Choi D, Warren RF, Rodeo SA, Maher SA. Image based weighted center of proximity versus directly measured knee contact location during simulated gait. J Biomech. 2014;47:2483–2489.CrossRefPubMedPubMedCentral Wang H, Chen T, Koff MF, Hutchinson ID, Gilbert S, Choi D, Warren RF, Rodeo SA, Maher SA. Image based weighted center of proximity versus directly measured knee contact location during simulated gait. J Biomech. 2014;47:2483–2489.CrossRefPubMedPubMedCentral
38.
go back to reference Wang H, Chen T, Torzilli P, Warren R, Maher S. Dynamic contact stress patterns on the tibial plateaus during simulated gait: a novel application of normalized cross correlation. J Biomech. 2014;47:568–574.CrossRefPubMedPubMedCentral Wang H, Chen T, Torzilli P, Warren R, Maher S. Dynamic contact stress patterns on the tibial plateaus during simulated gait: a novel application of normalized cross correlation. J Biomech. 2014;47:568–574.CrossRefPubMedPubMedCentral
39.
go back to reference Wang H, Gee AO, Hutchinson ID, Stoner K, Warren RF, Chen TO, Maher SA. Bone plug versus suture-only fixation of meniscal grafts: effect on joint contact mechanics during simulated gait. Am J Sports Med. 2014;42:1682–1689.CrossRefPubMedPubMedCentral Wang H, Gee AO, Hutchinson ID, Stoner K, Warren RF, Chen TO, Maher SA. Bone plug versus suture-only fixation of meniscal grafts: effect on joint contact mechanics during simulated gait. Am J Sports Med. 2014;42:1682–1689.CrossRefPubMedPubMedCentral
40.
go back to reference Wu G, Siegler S, Allard P, Kirtley C, Leardini A, Rosenbaum D, Whittle M, D’Lima DD, Cristofolini L, Witte H, Schmid O, Stokes I, Standardization and Terminology Committee of the International Society of Biomechanics. ISB recommendation on definitions of joint coordinate system of various joints for the reporting of human joint motion: Part I: ankle, hip, and spine. International Society of Biomechanics. J Biomech. 2002;35:543–548.CrossRefPubMed Wu G, Siegler S, Allard P, Kirtley C, Leardini A, Rosenbaum D, Whittle M, D’Lima DD, Cristofolini L, Witte H, Schmid O, Stokes I, Standardization and Terminology Committee of the International Society of Biomechanics. ISB recommendation on definitions of joint coordinate system of various joints for the reporting of human joint motion: Part I: ankle, hip, and spine. International Society of Biomechanics. J Biomech. 2002;35:543–548.CrossRefPubMed
Metadata
Title
How Do Hindfoot Fusions Affect Ankle Biomechanics: A Cadaver Model
Authors
Ian D. Hutchinson, MD
Josh R. Baxter, PhD
Susannah Gilbert, MS
MaCalus V. Hogan, MD
Jeff Ling, FRCAS
Stuart M. Saunders, MD
Hongsheng Wang, PhD
John G. Kennedy, MD
Publication date
01-04-2016
Publisher
Springer US
Published in
Clinical Orthopaedics and Related Research® / Issue 4/2016
Print ISSN: 0009-921X
Electronic ISSN: 1528-1132
DOI
https://doi.org/10.1007/s11999-015-4671-5

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