Skip to main content
Top
Published in: European Journal of Applied Physiology 5/2009

01-03-2009 | Original Article

A comparison of different two-dimensional approaches for the determination of the patellar tendon moment arm length

Authors: Dimitrios E. Tsaopoulos, Vasilios Baltzopoulos, Paula J. Richards, Constantinos N. Maganaris

Published in: European Journal of Applied Physiology | Issue 5/2009

Login to get access

Abstract

The purpose of this study was to estimate and compare the moment arm length of the patellar tendon (d) during passive knee extension using three different reference landmarks; instant centre of rotation (ICR), tibiofemoral contact point (TFCP) and geometrical centre of the posterior femoral condyles (GCFC). Measurements were taken on the right leg on seven healthy males during passive knee rotation performed by the motor of a Cybex Norm isokinetic dynamometer. Moment arms lengths were obtained by analysing lateral X-ray images recorded using a GE FlexiView 8800 C-arm videofluoroscopy system. The d–knee joint angle relations with respect to GCFC and ICR were similar, with decreasing values from full knee extension (~5.8 cm for d GCFC and ~5.9 cm for d ICR) to 90° of knee flexion (~4.8 cm for both d GCFC and d ICR). However, the d TFCP–knee joint angle relation had an ascending–descending shape, with the highest d TFCP value (~5 cm) at 60° of knee flexion. There was no significant difference between the GCFC and ICR methods at any knee joint angle. In contrast, there were significant differences (P < 0.01) between d ICR and d TFCP at 0°, 15°, 30° and 45° of knee flexion and between d GCFC and d TFCP at 0°, 15° and 30° of knee flexion (P < 0.01). This study shows that when using different knee joint rotation centre definitions, there are significant differences in the estimates of the patellar tendon moment arm length, especially in more extended knee joint positions. These differences can have serious implications for joint modelling and loading applications.
Literature
go back to reference Buford WL Jr, Ivey FM Jr, Malone JD, Patterson RM, Peare GL, Nguyen DK, Stewart AA (1997) Muscle balance at the knee—moment arms for the normal knee and the ACL-minus knee. IEEE Trans Rehabil Eng 5:367–379. doi:10.1109/86.650292 PubMedCrossRef Buford WL Jr, Ivey FM Jr, Malone JD, Patterson RM, Peare GL, Nguyen DK, Stewart AA (1997) Muscle balance at the knee—moment arms for the normal knee and the ACL-minus knee. IEEE Trans Rehabil Eng 5:367–379. doi:10.​1109/​86.​650292 PubMedCrossRef
go back to reference Eckhoff DG, Bach JM, Spitzer VM, Reinig KD, Bagur MM, Baldini TH, Rubinstein D, Humphries S (2003) Three-dimensional morphology and kinematics of the distal part of the femur viewed in virtual reality. Part II. J Bone Joint Surg Am 85-A(Suppl 4):97–104PubMed Eckhoff DG, Bach JM, Spitzer VM, Reinig KD, Bagur MM, Baldini TH, Rubinstein D, Humphries S (2003) Three-dimensional morphology and kinematics of the distal part of the femur viewed in virtual reality. Part II. J Bone Joint Surg Am 85-A(Suppl 4):97–104PubMed
go back to reference Eckhoff DG, Dwyer TF, Bach JM, Spitzer VM, Reinig KD (2001) Three-dimensional morphology of the distal part of the femur viewed in virtual reality. J Bone Joint Surg Am 83-A(Suppl 2):43–50PubMed Eckhoff DG, Dwyer TF, Bach JM, Spitzer VM, Reinig KD (2001) Three-dimensional morphology of the distal part of the femur viewed in virtual reality. J Bone Joint Surg Am 83-A(Suppl 2):43–50PubMed
go back to reference Fantozzi S, Cappello A, Leardini A (2003) A global method based on thin-plate splines for correction of geometric distortion: an application to fluoroscopic images. Med Phys 30:124–131. doi:10.1118/1.1538228 PubMedCrossRef Fantozzi S, Cappello A, Leardini A (2003) A global method based on thin-plate splines for correction of geometric distortion: an application to fluoroscopic images. Med Phys 30:124–131. doi:10.​1118/​1.​1538228 PubMedCrossRef
go back to reference Hollister AM, Jatana S, Singh AK, Sullivan WW, Lupichuk AG (1993) The axes of rotation of the knee. Clin Orthop Relat Res 290:259–268PubMed Hollister AM, Jatana S, Singh AK, Sullivan WW, Lupichuk AG (1993) The axes of rotation of the knee. Clin Orthop Relat Res 290:259–268PubMed
go back to reference Kellis E, Baltzopoulos V (1999b) In vivo determination of the patella tendon and hamstrings moment arms in adult males using videofluoroscopy during submaximal knee extension and flexion. Clin Biomech (Bristol, Avon) 14:118–124. doi:10.1016/S0268-0033(98)00055-2 CrossRef Kellis E, Baltzopoulos V (1999b) In vivo determination of the patella tendon and hamstrings moment arms in adult males using videofluoroscopy during submaximal knee extension and flexion. Clin Biomech (Bristol, Avon) 14:118–124. doi:10.​1016/​S0268-0033(98)00055-2 CrossRef
go back to reference Maganaris CN, Baltzopoulos V, Ball D, Sargeant AJ (2001) In vivo specific tension of human skeletal muscle. J Appl Physiol 90:865–872PubMed Maganaris CN, Baltzopoulos V, Ball D, Sargeant AJ (2001) In vivo specific tension of human skeletal muscle. J Appl Physiol 90:865–872PubMed
go back to reference Nisell R (1985) Mechanics of the knee. A study of joint and muscle load with clinical applications. Acta Orthop Scand Suppl 216:1–42PubMed Nisell R (1985) Mechanics of the knee. A study of joint and muscle load with clinical applications. Acta Orthop Scand Suppl 216:1–42PubMed
go back to reference Nisell R, Nemeth G, Ohlsen H (1986) Joint forces in extension of the knee. Analysis of a mechanical model. Acta Orthop Scand 57:41–46PubMedCrossRef Nisell R, Nemeth G, Ohlsen H (1986) Joint forces in extension of the knee. Analysis of a mechanical model. Acta Orthop Scand 57:41–46PubMedCrossRef
go back to reference Panjabi MM, Goel VK, Walter SD, Schick S (1982b) Errors in the center and angle of rotation of a joint: an experimental study. J Biomech Eng 104:232–237PubMedCrossRef Panjabi MM, Goel VK, Walter SD, Schick S (1982b) Errors in the center and angle of rotation of a joint: an experimental study. J Biomech Eng 104:232–237PubMedCrossRef
go back to reference Sheehan FT (2007) The 3D patellar tendon moment arm: quantified in vivo during volitional activity. J Biomech 40(9):1968–1974PubMedCrossRef Sheehan FT (2007) The 3D patellar tendon moment arm: quantified in vivo during volitional activity. J Biomech 40(9):1968–1974PubMedCrossRef
go back to reference Tsaopoulos DE, Maganaris CN, Baltzopoulos V (2006b) Can the patellar tendon moment arm be predicted from anthropometric measurements? J Biomech 40(3):645–651PubMedCrossRef Tsaopoulos DE, Maganaris CN, Baltzopoulos V (2006b) Can the patellar tendon moment arm be predicted from anthropometric measurements? J Biomech 40(3):645–651PubMedCrossRef
Metadata
Title
A comparison of different two-dimensional approaches for the determination of the patellar tendon moment arm length
Authors
Dimitrios E. Tsaopoulos
Vasilios Baltzopoulos
Paula J. Richards
Constantinos N. Maganaris
Publication date
01-03-2009
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 5/2009
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-008-0968-3

Other articles of this Issue 5/2009

European Journal of Applied Physiology 5/2009 Go to the issue