Beyer Benoît, Sholukha Victor, Dugailly Pierre Michel, Rooze Marcel, Moiseev Fedor, Feipel Véronique, Van Sint Jan Serge
Laboratory of Anatomy, Biomechanics and Organogenesis, Université Libre de Bruxelles, Bruxelles, Belgium.
Laboratory of Anatomy, Biomechanics and Organogenesis, Université Libre de Bruxelles, Bruxelles, Belgium; Department of Applied Mathematics, State Polytechnical University (SPbSPU), Saint Petersburg, Russia.
Clin Biomech (Bristol). 2014 Apr;29(4):434-8. doi: 10.1016/j.clinbiomech.2014.01.007. Epub 2014 Jan 29.
The costovertebral joint complex is mechanically involved in both respiratory function and thoracic spine stability. The thorax has been studied for a long time to understand its involvement in the physiological mechanism leading to specific gas exchange. Few studies have focused on costovertebral joint complex kinematics, and most of them focused on experimental in vitro analysis related to loading tests or global thorax and/or lung volume change analysis. There is however a clinical need for new methods allowing to process in vivo clinical data. This paper presents results from in vivo analysis of the costovertebral joint complex kinematics from clinically-available retrospective data.
In this study, in vivo spiral computed tomography imaging data were obtained from 8 asymptomatic subjects at three different lung volumes (from total lung capacity to functional residual capacity) calibrated using a classical spirometer. Fusion methods including 3D modelling and kinematic analysis were used to provide 3D costovertebral joint complex visualization for the true ribs (i.e., first seven pairs of ribs).
The 3D models of the first seven pairs of costovertebral joint complexes were obtained. A continuous kinematics simulation was interpolated from the three discrete computerized tomography positions. Helical axis representation was also achieved.
Preliminary results show that the method leads to meaningful and relevant results for clinical and pedagogical applications. Research in progress compares data from a sample of healthy volunteers with data collected from patients with cystic fibrosis to obtain new insights about the costovertebral joint complex range of motion and helical axis assessment in different pathological conditions.
肋椎关节复合体在呼吸功能和胸椎稳定性方面均发挥着机械作用。长期以来,人们一直在研究胸部,以了解其在导致特定气体交换的生理机制中的作用。很少有研究关注肋椎关节复合体的运动学,其中大多数研究集中在与负荷试验相关的体外实验分析或整体胸部和/或肺容积变化分析。然而,临床上需要新的方法来处理体内临床数据。本文展示了从临床可用的回顾性数据中对肋椎关节复合体运动学进行体内分析的结果。
在本研究中,从8名无症状受试者获取了体内螺旋计算机断层扫描成像数据,这些数据是在使用经典肺活量计校准的三个不同肺容积(从肺总量到功能残气量)下采集的。使用包括三维建模和运动学分析在内的融合方法,为真肋(即前七对肋骨)提供肋椎关节复合体的三维可视化。
获得了前七对肋椎关节复合体的三维模型。从三个离散的计算机断层扫描位置插值得到了连续的运动学模拟。还实现了螺旋轴表示。
初步结果表明,该方法可为临床和教学应用带来有意义且相关的结果。正在进行的研究将健康志愿者样本的数据与从囊性纤维化患者收集的数据进行比较,以获取有关肋椎关节复合体在不同病理状况下的运动范围和螺旋轴评估的新见解。