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首页> 外文期刊>Surgical and radiologic anatomy : >In vitro 3D-kinematics of the upper cervical spine: helical axis and simulation for axial rotation and flexion extension
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In vitro 3D-kinematics of the upper cervical spine: helical axis and simulation for axial rotation and flexion extension

机译:上颈椎的体外3D运动学:螺旋轴和轴向旋转和屈伸的模拟

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Purpose Registration of 3D-anatomical model and kinematics data is reported to be an accurate method to provide 3D-joint simulation. We applied this approach to discrete kinematics analysis of upper cervical spine (UCS) during axial rotation (AR) and flexion extension (FE) to create anatomical models with movement simulation including helical axis.Methods Kinematics and CT imaging data were sampled in ten anatomical specimens. Using technical and anatomical marker digitizing, spatial position of segments was computed for five discrete positions of AR and FE using a 3D-digitizer. Computerized tomography was used to create anatomical models and to assure kinematics and imaging data registration for simulation. Kinematics was processed using orientation vector and helical axis (HA) computation. Results Maximal standard error on marker digitizing was 0.47 mm. Range of motion and coupled movement during AR was in agreement with previous in vitro studies. HA location and orientation have shown low variation at theoccipitoaxial and atlantoaxial levels for FE and AR, respectively.Conclusions We developed a protocol to create UCS anatomical model simulations including three-dimensional discrete kinematics, using previously validated methods. In this study, simultaneous segmental movement simulation and display of HA variations was shown to be feasible. Although partially confirming previous results, helical axis computation showed variations of motion patterns dependent on movement, level and specimen. Further in vivo investigations are needed to confirm relevance of this method in the clinical field.
机译:目的据报道,对3D解剖模型和运动学数据进行配准是提供3D关节仿真的准确方法。我们将该方法应用于上颈椎(UCS)在轴向旋转(AR)和屈伸(FE)期间的离散运动学分析,以创建包括螺旋轴运动模拟的解剖模型。方法在十个解剖样本中采样了运动学和CT成像数据。使用技术和解剖标记数字化技术,使用3D数字化仪为AR和FE的五个离散位置计算了节段的空间位置。使用计算机断层扫描来创建解剖模型,并确保运动学和成像数据的配准。使用方向矢量和螺旋轴(HA)计算来处理运动学。结果标记数字化的最大标准误差为0.47 mm。 AR期间的运动范围和耦合运动与以前的体外研究一致。 HA的位置和方向分别在FE和AR的枕轴和寰轴水平上显示出较低的变化。结论我们使用先前验证的方法,开发了一种协议来创建包括三维离散运动学在内的UCS解剖模型仿真。在这项研究中,同时进行分段运动模拟和HA变化的显示被证明是可行的。尽管部分证实了先前的结果,但螺旋轴计算显示出运动模式的变化取决于运动,水平和样本。需要进一步的体内研究以确认该方法在临床领域中的相关性。

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