Morgan Oliver J, Hillstrom Howard J, Bitar Rogerio, Sturnick Daniel, Koff Matthew F, Ellis Scott J, Deland Jonathan T, Hillstrom Rajshree
Faculty of Science and Engineering, Anglia Ruskin University, Chelmsford, Essex CM1 1SQ, UK.
Leon Root, MD Motion Analysis Laboratory, Hospital for Special Surgery, New York, NY 10021.
J Biomech Eng. 2022 Aug 1;144(8). doi: 10.1115/1.4053791.
The foot is a highly complex biomechanical system for which finite element (FE) modeling has been used to evaluate its loading environment. However, there is limited knowledge of first metatarsophalangeal (MTP) and first metatarsocuneiform (MTC) joint contact mechanics. Our goal was to develop a framework for FE modeling of the medial forefoot which could accurately predict experimental measurements of first MTP and first MTC joint loading. Simulations of planus and rectus foot types were conducted for midstance of gait. A custom-built force-controlled cadaveric test-rig was used to derive intracapsular pressure sensor measurements of contact pressure, force, and area during quasi-static loading. The FE model was driven under the same boundary and loading conditions as the cadaver. Mesh sensitivity analyses and best-fit calibrations of moduli for first MTP and first MTC joint cartilage were performed. Consistent with previous experimental research, a lower compressive modulus was best-fit to the first MTP compared to first MTC joint at 10 MPa and 20 MPa, respectively. Mean errors in contact pressures, forces, and areas were 24%, 4%, and 40% at the first MTP joint and 23%, 12%, and 19% at the first MTC joint, respectively. The present developmental framework may provide a basis for future modeling of first MTP and first MTC joint contact mechanics. This study acts as a precursor to validation of realistic physiological loading across gait to investigate joint loading, foot type biomechanics, and surgical interventions of the medial forefoot.
足部是一个高度复杂的生物力学系统,有限元(FE)建模已被用于评估其负荷环境。然而,对于第一跖趾(MTP)和第一跖楔(MTC)关节的接触力学,人们了解有限。我们的目标是开发一种用于前足内侧有限元建模的框架,该框架能够准确预测第一MTP和第一MTC关节负荷的实验测量值。针对步态中期,对扁平足和直足类型进行了模拟。使用定制的力控尸体试验台,在准静态负荷期间获取囊内压力传感器测量的接触压力、力和面积。有限元模型在与尸体相同的边界和负荷条件下驱动。对第一MTP和第一MTC关节软骨的模量进行了网格敏感性分析和最佳拟合校准。与先前的实验研究一致,在10 MPa和20 MPa时,与第一MTC关节相比,较低的压缩模量最适合第一MTP关节。第一MTP关节处接触压力、力和面积的平均误差分别为24%、4%和40%,第一MTC关节处分别为23%、12%和19%。目前的开发框架可为未来第一MTP和第一MTC关节接触力学的建模提供基础。本研究是验证整个步态中实际生理负荷以研究关节负荷、足型生物力学和前足内侧手术干预的先驱。