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Segmental in vivo vertebral motion during functional human lumbar spine activities

机译:功能性人腰椎活动期间的体内椎体节段运动

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Quantitative data on the range of in vivo vertebral motion is critical to enhance our understanding of spinal pathology and to improve the current surgical treatment methods for spinal diseases. Little data have been reported on the range of lumbar vertebral motion during functional body activities. In this study, we measured in vivo 6 degrees-of-freedom (DOF) vertebral motion during unrestricted weightbearing functional body activities using a combined MR and dual fluoroscopic imaging technique. Eight asymptomatic living subjects were recruited and underwent MRI scans in order to create 3D vertebral models from L2 to L5 for each subject. The lumbar spine was then imaged using two fluoroscopes while the subject performed primary flexion-extension, left-right bending, and left-right twisting. The range of vertebral motion during each activity was determined through a previously described imaging-model matching technique at L2-3, L3-4, and L4-5 levels. Our data revealed that the upper vertebrae had a higher range of flexion than the lower vertebrae during flexion-extension of the body (L2-3, 5.4 ± 3.8°; L3-4, 4.3 ± 3.4°; L4-5, 1.9 ± 1.1°, respectively). During bending activity, the L4-5 had a higher (but not significant) range of left-right bending motion (4.7 ± 2.4°) than both L2-3 (2.9 ± 2.4°) and L3-4 (3.4 ± 2.1°), while no statistical difference was observed in left-right twisting among the three vertebral levels (L2-3, 2.5 ± 2.3°; L3-4, 2.4 ± 2.6°; and L4-5, 2.9 ± 2.1°, respectively). Besides the primary rotations reported, coupled motions were quantified in all DOFs. The coupled translation in left-right and anterior-posterior directions, on average, reached greater than 1 mm, while in the proximal-distal direction this was less than 1 mm. Overall, each vertebral level responds differently to flexion-extension and left-right bending, but similarly to the left-right twisting. This data may provide new insight into the in vivo function of human spines and can be used as baseline data for investigation of pathological spine kinematics.
机译:体内椎体运动范围的定量数据对于增强我们对脊柱病理学的了解以及改善当前脊柱疾病的外科治疗方法至关重要。关于功能性身体活动期间腰椎运动范围的报道很少。在这项研究中,我们结合了MR和双荧光透视成像技术,在不受限制的负重功能性身体活动期间测量了体内6自由度(DOF)椎体运动。招募了八名无症状的活体受试者并进行了MRI扫描,以便为每个受试者创建从L2到L5的3D椎骨模型。然后,使用两个荧光镜对腰椎进行成像,而对象进行一次主屈屈,左右弯曲和左右扭曲。通过先前描述的成像模型匹配技术在L2-3,L3-4和L4-5水平上确定每个活动期间的椎骨运动范围。我们的数据显示,在身体屈伸期间,上椎骨的屈伸范围比下椎骨的屈伸范围更大(L2-3,5.4±3.8°; L3-4,4.3±3.4°; L4-5,1.9±1.1 °)。在弯曲活动期间,L4-5的左右弯曲运动范围(4.7±2.4°)比L2-3(2.9±2.4°)和L3-4(3.4±2.1°)高(但不明显) ,而在三个椎骨水平(L2-3,2.5±2.3°; L3-4,2.4±2.6°; L4-5,2.9±2.1°)之间,左右扭转均无统计学差异。除了所报告的主要旋转,还对所有自由度中的耦合运动进行了量化。左右和前后方向的耦合平移平均大于1 mm,而近端-远侧方向小于1 mm。总体而言,每个椎骨水平对屈伸和左右弯曲的反应不同,但对左右扭曲的反应相似。此数据可能会提供有关人类脊柱的体内功能的新见解,并可用作病理脊柱运动学研究的基准数据。

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