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Personalized biomechanical simulations of orthotic treatment in idiopathic scoliosis.

机译:特发性脊柱侧凸矫形治疗的个性化生物力学模拟。

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Objectives. To analyse patient-specific bracing biomechanics in the treatment of scoliosis. Design. Two complementary computer tools have been developed to quantify the brace action on scoliotic spine from pressure measurements, and to simulate its effect on patient-adapted finite element model. Background. Brace pad forces and brace effect on spine deformities have been reported. However, the brace mechanisms still need to be better understood to obtain more effective treatments. Methods. The 3D geometry of the spine and rib cage of three scoliotic adolescents treated by the Boston brace was obtained using a multiview radiographic reconstruction technique. A personalized biomechanical model was constructed for each patient. Pressures generated by the brace on the thorax were measured using pressure sensors. For each zone with a threshold pressure higher than 30 mmHg, a total equivalent force was calculated and applied to the corresponding model nodes. Results. The pressure were generally scattered on the overall torso, with the highest pressures measured on five distinct regions: right thoracic, left lumbar, abdominal, right and left sides of the pelvis. The equivalent forces were of 18-73 N. Differences between simulated deformed shapes and real in-brace geometry of the patients were less than 6 and 9.8 mm for the vertebral positions in the coronal and sagittal planes, and 7.7 degrees for the Cobb angles. Conclusion. The results supported the feasibility of such approach to analyse patient-specific bracing biomechanics, which may be useful in the design of more effective braces.Relevance The analysis of bracing biomechanics in the treatment of scoliosis requires the development of biomedical engineering techniques allowing both a personalized evaluation and a design improvement of the treatment. The in-demand benefits of "computer assisted medicine" for the scoliotic patients are an improved brace treatment, prevention from invasive surgery, and an increased quality of life.
机译:目标。分析患者特定的支撑生物力学在脊柱侧弯的治疗。设计。已经开发了两个互补的计算机工具,用于通过压力测量来量化对脊柱侧弯的支撑作用,并模拟其对患者适应性有限元模型的影响。背景。已经报道了支撑垫力和支撑对脊柱畸形的作用。但是,仍然需要更好地理解支撑机构,以获得更有效的治疗。方法。使用多视图射线照相重建技术,获得了由波士顿支架治疗的三个脊柱侧弯青少年的脊柱和肋骨笼的3D几何形状。为每位患者构建了个性化的生物力学模型。使用压力传感器测量在胸廓上的支架产生的压力。对于阈值压力高于30 mmHg的每个区域,计算了总等效力并将其应用于相应的模型节点。结果。压力通常散布在整个躯干上,最高压力分布在五个不同的区域:右胸,左腰,腹,骨盆的右侧和左侧。等效力为18-73N。在患者的冠状和矢状面中,椎体位置的模拟变形形状与真实的支架几何形状之间的差异分别小于6和9.8 mm,Cobb角的差异为7.7度。结论。结果支持了这种分析患者特定支架生物力学方法的可行性,这可能对设计更有效的支架有用。相关性分析治疗脊柱侧弯的支架生物力学需要开发生物医学工程技术,以实现个性化评估和治疗的设计改进。对于脊柱侧弯患者,“计算机辅助医学”的需求优势在于改善了支架治疗,预防了侵入性手术并提高了生活质量。

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