首页> 外文期刊>Journal of Craniovertebral Junction and Spine >Biomechanics of the upper cervical spine ligaments in axial rotation and flexion-extension: Considerations into the clinical framework
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Biomechanics of the upper cervical spine ligaments in axial rotation and flexion-extension: Considerations into the clinical framework

机译:轴向旋转和屈曲 - 伸展中上部颈椎韧带的生物力学:考虑临床框架

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Context: The motion of the upper cervical spine (UCS) has a great interest for analyzing the biomechanical features of this joint complex, especially in case of instability. Although investigators have analyzed numerous kinematics and musculoskeletal characteristics, there are still little data available regarding several suboccipital ligaments such as occipito-atlantal, atlantoaxial, and cruciform ligaments. Objective: The aim of this study is to quantify the length and moment arm magnitudes of suboccipital ligaments and to integrate data into specific 3D-model, including musculoskeletal and motion representation. Materials and Methods: Based on a recent method, suboccipital ligaments were identified using UCS anatomical modeling. Biomechanical characteristics of these anatomical structures were assessed for sagittal and transversal displacements regarding length and moment arm alterations. Results: Outcomes data indicated length alterations 25% for occipito-atlantal, atlanto-axial and apical ligaments. The length alteration of unique ligaments was negligible. Length variation was dependent on the motion direction considered. Regarding moment arm, larger magnitudes were observed for posterior ligaments, and consistent alteration was depicted for these structures. Conclusion: These outcomes supply relevant biomechanical characteristics of the UCS ligaments in flexion-extension and axial rotation by quantifying length and moment arm magnitude. Moreover, 3D anatomical modeling and motion representation can help in the process of understanding of musculoskeletal behaviors of the craniovertebral junction.
机译:背景:上颈椎(UCS)的运动很令人兴趣,用于分析该关节复合物的生物力学特征,特别是在不稳定的情况下。虽然调查人员分析了许多运动学和肌肉骨骼特征,但仍然有几乎没有关于几个子可释放的韧带,如枕骨,寰癣和十字形韧带。目的:本研究的目的是量化亚古科能力韧带的长度和力矩臂幅度,并将数据集成到特定的3D模型中,包括肌肉骨骼和运动表示。材料和方法:基于最近的方法,使用UCS解剖建模鉴定了子可病性韧带。评估这些解剖结构的生物力学特性,用于关于长度和时刻臂改变的矢状和横向位移。结果:结果表明数据表示长度改变> 25%,适用于Ancripito-Atlantal,寰枢连接和顶端韧带。独特韧带的长度改变可忽略不计。长度变化取决于考虑的运动方向。关于时刻臂,观察到后韧带的较大幅度,对这些结构描绘了一致的改变。结论:这些结果通过量化长度和力矩臂幅度提供屈曲 - 延伸和轴向旋转中的UCS韧带的相关生物力学特性。此外,3D解剖学建模和运动表示可以帮助理解颅骨交界处的肌肉骨骼行为的过程。

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