Perez M Tyler, Owen John R, Wayne Jennifer S
Orthopaedic Research Laboratory, Departments of Biomedical Engineering and Orthopaedic Surgery, Virginia Commonwealth University, Richmond, Virginia, USA.
Orthopaedic Research Laboratory, Department of Biomedical Engineering and Mechanics, Virginia Tech, Blacksburg, Virginia, USA.
J Orthop Res. 2021 Dec;39(12):2725-2731. doi: 10.1002/jor.25013. Epub 2021 Mar 4.
Lisfranc injuries in the midfoot disrupt key arches of the foot which, if left untreated, can progress to pain, dysfunction, and arthritis. A clinical challenge is that 30-40% of Lisfranc injuries are missed in initial evaluations. The objective of this study was to explore different conditions of limb loading that could influence the biomechanics of the Lisfranc joint in a validated computational model. A computational model was created using SolidWorks software to represent the bones and soft tissues of the lower leg and foot. The model was compared to a cadaveric study of healthy and injured Lisfranc joints. The model was then used to simulate weight-bearing radiographs and evaluate how muscle activity and foot position impacted the diastasis of the Lisfranc joint, a key indicator used to diagnose Lisfranc injuries. The computational model was within one standard deviation of the cadaveric study in all measurements for the healthy and injured foot. When simulating weight-bearing radiographs, the presence of muscle activity or inversion/eversion resulted in less joint separation for the model with ligamentous Lisfranc injuries. While previous research has noted that weight-bearing radiographs provide better conditions to assess Lisfranc injuries than nonweight-bearing, this study suggests that in weight-bearing radiographs both altering the position of the foot, possibly due to pain, and the active contraction of the extrinsic flexor muscles can obfuscate indications of a Lisfranc injury.
中足的Lisfranc损伤会破坏足部的关键足弓,若不治疗,可能会发展为疼痛、功能障碍和关节炎。临床面临的一个挑战是,在初始评估中,30%至40%的Lisfranc损伤会被漏诊。本研究的目的是在一个经过验证的计算模型中,探索可能影响Lisfranc关节生物力学的不同肢体负荷条件。使用SolidWorks软件创建了一个计算模型,以呈现小腿和足部的骨骼及软组织。该模型与一项关于健康和受伤Lisfranc关节的尸体研究进行了比较。然后,该模型被用于模拟负重X线片,并评估肌肉活动和足部位置如何影响Lisfranc关节的分离,这是诊断Lisfranc损伤的一个关键指标。在对健康和受伤足部的所有测量中,该计算模型与尸体研究的结果相差在一个标准差以内。在模拟负重X线片时,对于存在韧带性Lisfranc损伤的模型,肌肉活动或内翻/外翻的存在会导致关节分离减少。虽然先前的研究指出,负重X线片比非负重X线片能提供更好的条件来评估Lisfranc损伤,但本研究表明,在负重X线片中,可能由于疼痛而改变足部位置以及外在屈肌的主动收缩,都可能掩盖Lisfranc损伤的迹象。