Skip to main content
Top
Published in: Knee Surgery, Sports Traumatology, Arthroscopy 11/2009

01-11-2009 | Knee

Side differences in the anatomy of human knee joints

Authors: Jens Dargel, Janna Feiser, Martina Gotter, Dietmar Pennig, Jürgen Koebke

Published in: Knee Surgery, Sports Traumatology, Arthroscopy | Issue 11/2009

Login to get access

Abstract

Side-to-side comparison of anatomical or functional parameters in the evaluation of unilateral pathologies of the human knee joint is common practice, although the amount of symmetry is unknown. The aim of this study was to test the hypothesis that there are no significant differences in the morphometric knee joint dimensions between the right and the left knee of a human subject and that side differences within subjects are smaller than intersubject variability. In 20 pairs of human cadaver knees, the morphometry of the articulating osseous structures of the femorotibial joint, the cruciate ligaments, and the menisci were measured using established measurement methods. Data were analyzed for overall side differences and the ratio between within-subject side differences and intersubject variability was calculated. In three out of 71 morphometric dimensions there was a significant side difference, including the posterior tibial slope, the anatomical valgus alignment of the distal femur, and the position of the femoral insertion area of the ACL. In two additional parameters, including the cross-sectional area of the ACL and PCL, within-subject side differences were larger than intersubject variability. In general, there was a positive correlation in morphometric dimensions between right and left knees in one subject. It is concluded that a good correlation in the morphometric dimensions of a human knee joint exists between the right and the left side. This study supports the concepts of obtaining morphometric reference data from the contralateral uninjured side in the evaluation of unilateral pathologies of the knee joint.
Literature
1.
go back to reference Anderson AF, Snyder RB, Federspiel CF, Lipscomb AB (1992) Instrumented evaluation of knee laxity: a comparison of five arthrometers. Am J Sports Med 20:135–140CrossRefPubMed Anderson AF, Snyder RB, Federspiel CF, Lipscomb AB (1992) Instrumented evaluation of knee laxity: a comparison of five arthrometers. Am J Sports Med 20:135–140CrossRefPubMed
2.
go back to reference Barrack RL, Skinner HB, Buckley SL (1989) Proprioception in the anterior cruciate deficient knee. Am J Sports Med 17:1–6CrossRefPubMed Barrack RL, Skinner HB, Buckley SL (1989) Proprioception in the anterior cruciate deficient knee. Am J Sports Med 17:1–6CrossRefPubMed
3.
go back to reference Bernard M, Hertel P, Hornung H, Cierpinski T (1997) Femoral insertion of the ACL. Radiographic quadrant method. Am J Knee Surg 10:14–22PubMed Bernard M, Hertel P, Hornung H, Cierpinski T (1997) Femoral insertion of the ACL. Radiographic quadrant method. Am J Knee Surg 10:14–22PubMed
4.
go back to reference Dargel J, Pohl P, Tzikaras P, Koebke J (2006) Morphometric side-to-side differences in human cruciate ligament insertions. Surg Radiol Anat 28:398–402CrossRefPubMed Dargel J, Pohl P, Tzikaras P, Koebke J (2006) Morphometric side-to-side differences in human cruciate ligament insertions. Surg Radiol Anat 28:398–402CrossRefPubMed
5.
go back to reference Eckstein F, Müller S, Faber SC, Englmeier KH, Reiser M, Putz R (2002) Side differences of knee joint cartilage volume, thickness, and surface area, and correlation with lower limb dominance–an MRI-based study. Osteoarthr Cartil 10:914–921CrossRefPubMed Eckstein F, Müller S, Faber SC, Englmeier KH, Reiser M, Putz R (2002) Side differences of knee joint cartilage volume, thickness, and surface area, and correlation with lower limb dominance–an MRI-based study. Osteoarthr Cartil 10:914–921CrossRefPubMed
6.
go back to reference Edwards A, Bull AMJ, Amis AA (2007) The attachments of the fiber bundles of the posterior cruciate ligament: an anatomic study. Arthroscopy 23:284–290PubMed Edwards A, Bull AMJ, Amis AA (2007) The attachments of the fiber bundles of the posterior cruciate ligament: an anatomic study. Arthroscopy 23:284–290PubMed
7.
go back to reference Fridén T, Jonsson A, Erlandsson T, Jonsson K, Lindstrand A (1993) Effect of femoral condyle configuration on disability after an anterior cruciate ligament rupture. Acta Orthop Scand 64:571–574PubMed Fridén T, Jonsson A, Erlandsson T, Jonsson K, Lindstrand A (1993) Effect of femoral condyle configuration on disability after an anterior cruciate ligament rupture. Acta Orthop Scand 64:571–574PubMed
8.
go back to reference Friedman RL, Feagin JA (1994) Topographical anatomy of the intercondylar roof. Clin Orthop Relat Res 306:163–170PubMed Friedman RL, Feagin JA (1994) Topographical anatomy of the intercondylar roof. Clin Orthop Relat Res 306:163–170PubMed
9.
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 32:376–382CrossRefPubMed 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 32:376–382CrossRefPubMed
10.
go back to reference Gokeler A, Schmalz T, Knopf E, Freiwald J, Blumentritt S (2003) The relationship between isokinetic quadriceps strength and laxity on gait analysis parameters in anterior cruciate ligament reconstructed knees. Knee Surg Sports Traumatol Arthrosc 11:372–378CrossRefPubMed Gokeler A, Schmalz T, Knopf E, Freiwald J, Blumentritt S (2003) The relationship between isokinetic quadriceps strength and laxity on gait analysis parameters in anterior cruciate ligament reconstructed knees. Knee Surg Sports Traumatol Arthrosc 11:372–378CrossRefPubMed
11.
go back to reference Griffin FM, Math K, Scuderi GR, Insall JN, Poilvache PL (2000) Anatomy of the epicondyles of the distal femur: MRI analysis of normal knees. J Arthroplasty 15:354–359CrossRefPubMed Griffin FM, Math K, Scuderi GR, Insall JN, Poilvache PL (2000) Anatomy of the epicondyles of the distal femur: MRI analysis of normal knees. J Arthroplasty 15:354–359CrossRefPubMed
12.
go back to reference Hitt K, Shurman IIJ, Greene K, McCarthy J, Moskal J, Hoeman T, Mont MA (2003) Anthropometric measurements of the human knee: correlation to the sizing of current knee arthroplasty systems. J Bone Joint Surg 85:115–122CrossRefPubMed Hitt K, Shurman IIJ, Greene K, McCarthy J, Moskal J, Hoeman T, Mont MA (2003) Anthropometric measurements of the human knee: correlation to the sizing of current knee arthroplasty systems. J Bone Joint Surg 85:115–122CrossRefPubMed
13.
go back to reference Iwaki H, Pinskerova V, Freeman MAR (2000) Tibiofemoral movement 1: the shapes and relative movements of the femur and the tibia in the unloaded cadaver knee. J Bone Joint Surg Br 82:1189–1195CrossRefPubMed Iwaki H, Pinskerova V, Freeman MAR (2000) Tibiofemoral movement 1: the shapes and relative movements of the femur and the tibia in the unloaded cadaver knee. J Bone Joint Surg Br 82:1189–1195CrossRefPubMed
14.
go back to reference Jonsson H, Karrholm J, Elmqvist LG (1993) Laxity after cruciate ligament injury in 94 knees. The KT-1000 arthrometer versus roentgen stereophotogrammetry. Acta Orthop Scand 64:567–570PubMed Jonsson H, Karrholm J, Elmqvist LG (1993) Laxity after cruciate ligament injury in 94 knees. The KT-1000 arthrometer versus roentgen stereophotogrammetry. Acta Orthop Scand 64:567–570PubMed
15.
go back to reference Jordan SS, DeFrate LE, Nha KW, Papannagari R, Gill TJ, Li G (2007) The in vivo kinematics of the anteromedial and posterolateral bundles of the anterior cruciate ligament during weightbearing knee flexion. Am J Sports Med 35:547–554CrossRefPubMed Jordan SS, DeFrate LE, Nha KW, Papannagari R, Gill TJ, Li G (2007) The in vivo kinematics of the anteromedial and posterolateral bundles of the anterior cruciate ligament during weightbearing knee flexion. Am J Sports Med 35:547–554CrossRefPubMed
16.
go back to reference Kohn D, Moreno B (1995) Meniscus insertion anatomy as a basis for meniscus replacement: a morphological cadaveric study. Arthroscopy 11:96–103PubMedCrossRef Kohn D, Moreno B (1995) Meniscus insertion anatomy as a basis for meniscus replacement: a morphological cadaveric study. Arthroscopy 11:96–103PubMedCrossRef
17.
go back to reference Kozanek M, Van de Velde SK, Gill TJ, Li G (2008) The contralateral knee joint in cruciate ligament deficiency. Am J Sports Med 36:2151–2157CrossRefPubMed Kozanek M, Van de Velde SK, Gill TJ, Li G (2008) The contralateral knee joint in cruciate ligament deficiency. Am J Sports Med 36:2151–2157CrossRefPubMed
18.
go back to reference Li G, Papannagari R, Li M, Bingham J, Nha KW, Allred D, Gill T (2008) Effect of posterior cruciate ligament deficiency on in vivo translation and rotation of the knee during weightbearing flexion. Am J Sports Med 36:474–479CrossRefPubMed Li G, Papannagari R, Li M, Bingham J, Nha KW, Allred D, Gill T (2008) Effect of posterior cruciate ligament deficiency on in vivo translation and rotation of the knee during weightbearing flexion. Am J Sports Med 36:474–479CrossRefPubMed
19.
go back to reference Mensch JS, Amstutz HC (1975) Knee morphology as a guide to knee replacement. Clin Orthop Relat Res 112:231–241PubMed Mensch JS, Amstutz HC (1975) Knee morphology as a guide to knee replacement. Clin Orthop Relat Res 112:231–241PubMed
20.
go back to reference Muneta T, K Takakuda, Yamomoto H (1997) Intercondylar notch width and its relation to the configuration of cross-sectional area of the anterior cruciate ligament. Am J Sports Med 25:69–72CrossRefPubMed Muneta T, K Takakuda, Yamomoto H (1997) Intercondylar notch width and its relation to the configuration of cross-sectional area of the anterior cruciate ligament. Am J Sports Med 25:69–72CrossRefPubMed
21.
go back to reference Papannagari R, Gill TJ, Defrate LE, Moses JM, Petruska AJ, Li G (2006) In vivo kinematics of the knee after anterior cruciate ligament reconstruction: a clinical and functional evaluation. Am J Sports Med 34:2006–2012CrossRefPubMed Papannagari R, Gill TJ, Defrate LE, Moses JM, Petruska AJ, Li G (2006) In vivo kinematics of the knee after anterior cruciate ligament reconstruction: a clinical and functional evaluation. Am J Sports Med 34:2006–2012CrossRefPubMed
22.
go back to reference Petermann J, Kober R, Heinze R, Frölich JJ, Heeckt PF, Gotzen L (2000) Computer-assisted planning and robot-assisted surgery in anterior cruciate ligament reconstruction. Oper Tech Orthop 10:50–55CrossRef Petermann J, Kober R, Heinze R, Frölich JJ, Heeckt PF, Gotzen L (2000) Computer-assisted planning and robot-assisted surgery in anterior cruciate ligament reconstruction. Oper Tech Orthop 10:50–55CrossRef
23.
go back to reference Sati M, Stäubli HU, Bourquin Y, Kunz M, Käsermann S (2000) Clinical integration of computer-assisted technology for arthroscopic anterior cruciate ligament reconstruction. Oper Tech Orthop 10:40–49CrossRef Sati M, Stäubli HU, Bourquin Y, Kunz M, Käsermann S (2000) Clinical integration of computer-assisted technology for arthroscopic anterior cruciate ligament reconstruction. Oper Tech Orthop 10:40–49CrossRef
24.
go back to reference Shambaugh JP, Klein A, Herbert JH (1991) Structural measures as predictors of injury in basketball players. Med Sci Sports Exerc 23:522–527PubMed Shambaugh JP, Klein A, Herbert JH (1991) Structural measures as predictors of injury in basketball players. Med Sci Sports Exerc 23:522–527PubMed
25.
go back to reference Shefelbine SJ, Ma CB, Lee KY, Schrumpf MA, Patel P, Safran MR, Slavinski JP, Majumdar S (2006) MRI analysis of in vivo meniscal and tibiofemoral kinematics in ACL-deficient and normal knees. J Orthop Res 24:1208–1217CrossRefPubMed Shefelbine SJ, Ma CB, Lee KY, Schrumpf MA, Patel P, Safran MR, Slavinski JP, Majumdar S (2006) MRI analysis of in vivo meniscal and tibiofemoral kinematics in ACL-deficient and normal knees. J Orthop Res 24:1208–1217CrossRefPubMed
26.
go back to reference Snyder-Mackler L, Fitzgerald GK, Bartolozzi AR, Ciccotti MG (1997) The relationship between passive joint laxity and functional outcome after anterior cruciate ligament injury. Am J Sports Med 25:191–195CrossRefPubMed Snyder-Mackler L, Fitzgerald GK, Bartolozzi AR, Ciccotti MG (1997) The relationship between passive joint laxity and functional outcome after anterior cruciate ligament injury. Am J Sports Med 25:191–195CrossRefPubMed
27.
go back to reference Souryal TO, Moore HA, Evans JP (1988) Bilaterality in anterior cruciate ligament injuries. Am J Sports Med 16:449–454CrossRefPubMed Souryal TO, Moore HA, Evans JP (1988) Bilaterality in anterior cruciate ligament injuries. Am J Sports Med 16:449–454CrossRefPubMed
28.
go back to reference Takahashi M, Matsubara T, Doi M, Suzuki D, Nagano A (2006) Anatomical study of the femoral and tibial insertions of the anterolateral and posteromedial bundles of human posterior cruciate ligament insertions. Knee Surg Sports Traumatol Arthrosc 14:1055–1059CrossRefPubMed Takahashi M, Matsubara T, Doi M, Suzuki D, Nagano A (2006) Anatomical study of the femoral and tibial insertions of the anterolateral and posteromedial bundles of human posterior cruciate ligament insertions. Knee Surg Sports Traumatol Arthrosc 14:1055–1059CrossRefPubMed
29.
go back to reference Teitz CC, Lind BK, Sacks BM (1997) Symmetry of the femoral notch width index. Am J Sports Med 25:687–690CrossRefPubMed Teitz CC, Lind BK, Sacks BM (1997) Symmetry of the femoral notch width index. Am J Sports Med 25:687–690CrossRefPubMed
Metadata
Title
Side differences in the anatomy of human knee joints
Authors
Jens Dargel
Janna Feiser
Martina Gotter
Dietmar Pennig
Jürgen Koebke
Publication date
01-11-2009
Publisher
Springer-Verlag
Published in
Knee Surgery, Sports Traumatology, Arthroscopy / Issue 11/2009
Print ISSN: 0942-2056
Electronic ISSN: 1433-7347
DOI
https://doi.org/10.1007/s00167-009-0870-5

Other articles of this Issue 11/2009

Knee Surgery, Sports Traumatology, Arthroscopy 11/2009 Go to the issue