Effects of posture and structure on three-dimensional coupled rotations in the lumbar spine - A biomechanical analysis

被引:71
作者
Cholewicki, J [1 ]
Crisco, JJ [1 ]
Oxland, TR [1 ]
Yamamoto, I [1 ]
Panjabi, MM [1 ]
机构
[1] HOKKAIDO UNIV,SCH MED,DEPT ORTHOPAED SURG,SAPPORO,HOKKAIDO 060,JAPAN
关键词
biomechanics; coupled motions; kinematics; lumbar spine;
D O I
10.1097/00007632-199611010-00003
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Study Design. A biomechanical lumbar spine model was constructed to simulate three-dimensional spinal kinematics under the application of pure moments. Parametric analysis of the model allowed for the estimation of how much of the coupled motions could be predicted by the lumbar lordosis and the intrinsic mechanical properties of the spine. Objectives. To evaluate the relative effects of lordosis and intrinsic mechanical spine properties on the magnitude and direction of coupled rotations. Summary of Background Data. Clinical evidence Suggests that abnormal coupled motion in the lumbar spine may be an indicator of low back disorders. Methods. The biomechanical lumbar spine model consisted of five vertebrae separated by intervertebral joints that provided three rotational degrees of freedom. In vitro experimental data, obtained from nine fresh-frozen (L1-S1) cadaveric specimens, were used to established the mechanical properties of the intervertebral joints. Two different submodels were considered in simulating the three-dimensional intervertebral rotations in response to the applied moments. In the first, it was assumed that the coupled motions were generated solely as a result of the vertebral orientation caused by lordosis. In the second, additional intrinsic motion coupling was assumed. Results. Intervertebral coupling was partially predicted by lumbar lordosis; however, the inclusion of intrinsic mechanical coupling dramatically improved the simulation of the intervertebral rotations (root mean square error <1 degrees). Comparison of the results from the two models demonstrated that the lumbar lordosis and intrinsic mechanical properties of the spine had about an equal effect in predicting the coupling between axial rotation and lateral bending. In contrast, coupled flexion, associated with lateral bending, was almost fully accounted for by the presence of lumbar lordosis. Conclusions. The lumbar lordosis and intrinsic mechanical properties of the spine were equally important in predicting the magnitude and direction of the coupled rotations.
引用
收藏
页码:2421 / 2428
页数:8
相关论文
共 24 条
[1]   HAS THE LUMBAR SPINE A MARGIN OF SAFETY IN FORWARD BENDING [J].
ADAMS, MA ;
HUTTON, WC .
CLINICAL BIOMECHANICS, 1986, 1 (01) :3-6
[3]   EULER STABILITY OF THE HUMAN LIGAMENTOUS LUMBAR SPINE .2. EXPERIMENT [J].
CRISCO, JJ ;
PANJABI, MM ;
YAMAMOTO, I ;
OXLAND, TR .
CLINICAL BIOMECHANICS, 1992, 7 (01) :27-32
[4]  
DUNCAN NA, 1989, ADV BIOENG, V15, P81
[5]   MECHANICAL AND KINEMATIC ANALYSIS OF THE LUMBAR SPINE IN NORMAL LIVING HUMAN SUBJECTS INVIVO [J].
FRYMOYER, JW ;
FRYMOYER, WW ;
WILDER, DG ;
POPE, MH .
JOURNAL OF BIOMECHANICS, 1979, 12 (02) :165-&
[6]   ELASTICITY OF SOFT TISSUES IN SIMPLE ELONGATION [J].
FUNG, YCB .
AMERICAN JOURNAL OF PHYSIOLOGY, 1967, 213 (06) :1532-+
[7]   KINEMATICS OF THE WHOLE LUMBAR SPINE - EFFECT OF DISCECTOMY [J].
GOEL, VK ;
GOYAL, S ;
CLARK, C ;
NISHIYAMA, K ;
NYE, T .
SPINE, 1985, 10 (06) :543-554
[8]   The mechanism of the normal spine and its relation to scoliosis [J].
Lovett, RW .
BOSTON MEDICAL AND SURGICAL JOURNAL, 1905, 153 :349-358
[9]   LOAD DISPLACEMENT BEHAVIOR OF THE HUMAN LUMBOSACRAL JOINT [J].
MCGLASHEN, KM ;
MILLER, JAA ;
SCHULTZ, AB ;
ANDERSSON, GBJ .
JOURNAL OF ORTHOPAEDIC RESEARCH, 1987, 5 (04) :488-496
[10]   THE EFFECT OF INJURY ON ROTATIONAL COUPLING AT THE LUMBOSACRAL JOINT - A BIOMECHANICAL INVESTIGATION [J].
OXLAND, TR ;
CRISCO, JJ ;
PANJABI, MM ;
YAMAMOTO, I .
SPINE, 1992, 17 (01) :74-80