Co-contraction during static and dynamic knee extensions in ACL deficient subjects

被引:12
作者
Aalbersberg, S
Kingma, I
Blankevoort, L
Van Dieën, JH
机构
[1] Vrije Univ Amsterdam, Fac Human Movement Sci, Inst Fundamental & Clin Human Movement Sci, NL-1081 BT Amsterdam, Netherlands
[2] Univ Amsterdam, Acad Med Ctr, Orthotrauma Res Ctr Amsterdam, Inst Fundamental & Clin Human Movement Sci, NL-1105 AZ Amsterdam, Netherlands
关键词
anterior cruciate ligament; shear force; isometric; slow-dynamic; co-contraction;
D O I
10.1016/j.jelekin.2004.12.005
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Co-contraction of the muscles is proposed in the literature as one of the strategies that anterior cruciate ligament deficient (ACLD) subjects can use to compensate the loss of ACL function. This study examined the response of ACLD and control subjects to different shear forces in isometric and slow-dynamic knee extensions. Twelve chronic ACLD and 10 control subjects performed submaximal positioning and slow-dynamic knee extensions (between 45 degrees and 5 degrees of knee flexion) with two external flexion moments both applied at two distances on the lower leg. The shear force was controlled by changing the moment arm without changing the moment. Electromyographic data were collected from knee flexor and extensor muscles. In the analysis of variance, no significant effect of subject group was found in positioning or slow-dynamic tasks across all muscles. The effect of knee angle was significantly different between the subject groups for biceps femoris in positioning and for rectus femoris in slow-dynamic tasks, but these effects were very small and will not have a great impact on the resulting shear forces. There was no interaction between moment arm and subject group. Therefore, the hypothesis that ACLD subjects increase co-contraction in situations with an increased shear load in positioning and slow-dynamic knee extensions could not be confirmed. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:349 / 357
页数:9
相关论文
共 28 条
[1]   Antagonist muscle coactivation during isokinetic knee extension [J].
Aagaard, P ;
Simonsen, EB ;
Andersen, JL ;
Magnusson, SP ;
Bojsen-Moller, F ;
Dyhre-Poulsen, P .
SCANDINAVIAN JOURNAL OF MEDICINE & SCIENCE IN SPORTS, 2000, 10 (02) :58-67
[2]  
AALBERSBERG S, IN PRESS J BIOMECHAN
[3]   Evaluation of the walking pattern in two types of patients with anterior cruciate ligament deficiency: copers and non-copers [J].
Alkjaer, T ;
Simonsen, EB ;
Jorgensen, U ;
Dyhre-Poulsen, P .
EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY, 2003, 89 (3-4) :301-308
[4]  
[Anonymous], 1996, GAIT POSTURE
[5]   A VIDEOFLUOROSCOPY METHOD FOR OPTICAL DISTORTION CORRECTION AND MEASUREMENT OF KNEE-JOINT KINEMATICS [J].
BALTZOPOULOS, V .
CLINICAL BIOMECHANICS, 1995, 10 (02) :85-92
[6]   ANTERIOR CRUCIATE LIGAMENT STRAIN BEHAVIOR DURING REHABILITATION EXERCISES IN-VIVO [J].
BEYNNON, BD ;
FLEMING, BC ;
JOHNSON, RJ ;
NICHOLS, CE ;
RENSTROM, PA ;
POPE, MH .
AMERICAN JOURNAL OF SPORTS MEDICINE, 1995, 23 (01) :24-34
[7]   Atypical hamstrings electromyographic activity as a compensatory mechanism in anterior cruciate ligament deficiency [J].
Boerboom, AL ;
Hof, AL ;
Halbertsma, JPK ;
van Raaij, JJAM ;
Schenk, W ;
Diercks, RL ;
van Horn, JR .
KNEE SURGERY SPORTS TRAUMATOLOGY ARTHROSCOPY, 2001, 9 (04) :211-216
[8]   Analyses of dynamic co-contraction level in individuals with anterior cruciate ligament injury [J].
da Fonseca, ST ;
Silva, PLP ;
Ocarino, JM ;
Guimaràes, RB ;
Oliveira, MTC ;
Lage, CA .
JOURNAL OF ELECTROMYOGRAPHY AND KINESIOLOGY, 2004, 14 (02) :239-247
[9]   ANTERIOR CRUCIATE LIGAMENT INJURY AND HAMSTRINGS COACTIVATION [J].
GRABINER, MD ;
WEIKER, GG .
CLINICAL BIOMECHANICS, 1993, 8 (04) :215-219
[10]  
Hermens H.J., 1999, SENIAM EUROPEAN RECO