Su Yifan, Tsirikos Athanasios I, Koutsos Vasileios, Pankaj Pankaj
Institute for Bioengineering, School of Engineering, The University of Edinburgh, Edinburgh, UK.
Scottish National Spine Deformity Centre - Royal Hospital for Children and Young People, Edinburgh, UK.
Int J Numer Method Biomed Eng. 2025 Sep;41(9):e70098. doi: 10.1002/cnm.70098.
Numerical modeling has been extensively employed to understand the biomechanics of the spine. Often, patient-specific models developed from medical scans, which are specific to an individual and their particular clinical case, are used. The aim of this study was to develop a generic model of the full adolescent spine, which includes ribs, muscles, and ligaments, that can effectively simulate realistic spinal biomechanics. The model was developed using computer-aided design, incorporating anatomical parameters to represent a 15-year-old adolescent full-spine geometry. Essential components like the ribcage and related musculature were included to capture realistic biomechanics. The model appraisal involved mesh sensitivity analysis and tests on selected functional spinal units (FSUs) in each spinal region to assess the biomechanics of specific components of the full spine. Biomechanical responses, including range of motion, intradiscal pressure, and facet joint forces, were evaluated across multiple simulated loading tasks. Results were compared to previous in vitro and in silico studies. Our model demonstrated good agreement with previous experimental and numerical studies. The ribcage inclusion simulated the stiffening effect observed in vivo satisfactorily. Ligamentous effect tests on thoracic and lumbar FSUs indicated that the model satisfactorily replicated expected biomechanical responses. The study shows that the developed model can be employed effectively to simulate real-life spine motions. The developed model will be used for future AIS research, enabling the investigation of surgical treatment outcomes across diverse clinical scenarios.
数值模拟已被广泛用于理解脊柱的生物力学。通常会使用根据医学扫描开发的特定患者模型,这些模型针对个体及其特定临床病例。本研究的目的是开发一个涵盖肋骨、肌肉和韧带的青少年全脊柱通用模型,该模型能够有效模拟真实的脊柱生物力学。该模型使用计算机辅助设计开发,纳入解剖学参数以呈现一名15岁青少年的全脊柱几何形状。纳入了胸腔和相关肌肉组织等关键组件以捕捉真实的生物力学。模型评估包括网格敏感性分析以及对每个脊柱区域选定的功能脊柱单元(FSU)进行测试,以评估全脊柱特定组件的生物力学。在多个模拟加载任务中评估了包括运动范围、椎间盘内压力和小关节力在内的生物力学响应。将结果与先前的体外和计算机模拟研究进行了比较。我们的模型与先前的实验和数值研究显示出良好的一致性。胸腔的纳入令人满意地模拟了体内观察到的强化效果。对胸椎和腰椎FSU的韧带效应测试表明,该模型令人满意地复制了预期的生物力学响应。研究表明,所开发的模型可有效用于模拟现实生活中的脊柱运动。所开发的模型将用于未来的特发性脊柱侧弯(AIS)研究,从而能够在各种临床场景中研究手术治疗结果。