Scarton Alessandra, Guiotto Annamaria, Malaquias Tiago, Spolaor Fabiola, Sinigaglia Giacomo, Cobelli Claudio, Jonkers Ilse, Sawacha Zimi
Department of Information Engineering, University of Padova, Via Gradenigo 6b, Padova, 35131, Italy.
Department of Mechanical Engineering, Biomechanics Section, Celestijnenlaan 300-box 2419, 3001 Leuven, Belgium.
Gait Posture. 2018 Feb;60:279-285. doi: 10.1016/j.gaitpost.2017.08.036. Epub 2017 Sep 1.
Diabetic foot is one of the most debilitating complications of diabetes and may lead to plantar ulcers. In the last decade, gait analysis, musculoskeletal modelling (MSM) and finite element modelling (FEM) have shown their ability to contribute to diabetic foot prevention and suggested that the origin of the plantar ulcers is in deeper tissue layers rather than on the plantar surface. Hence the aim of the current work is to develop a methodology that improves FEM-derived foot internal stresses prediction, for diabetic foot prevention applications. A 3D foot FEM was combined with MSM derived force to predict the sites of excessive internal stresses on the foot. In vivo gait analysis data, and an MRI scan of a foot from a healthy subject were acquired and used to develop a six degrees of freedom (6 DOF) foot MSM and a 3D subject-specific foot FEM. Ankle kinematics were applied as boundary conditions to the FEM together with: 1. only Ground Reaction Forces (GRFs); 2. OpenSim derived extrinsic muscles forces estimated with a standard OpenSim MSM; 3. extrinsic muscle forces derived through the (6 DOF) foot MSM; 4. intrinsic and extrinsic muscles forces derived through the 6 DOF foot MSM. For model validation purposes, simulated peak pressures were extracted and compared with those measured experimentally. The importance of foot muscles in controlling plantar pressure distribution and internal stresses is confirmed by the improved accuracy in the estimation of the peak pressures obtained with the inclusion of intrinsic and extrinsic muscle forces.
糖尿病足是糖尿病最使人衰弱的并发症之一,可能导致足底溃疡。在过去十年中,步态分析、肌肉骨骼建模(MSM)和有限元建模(FEM)已显示出它们在预防糖尿病足方面的作用,并表明足底溃疡的起源在于更深的组织层而非足底表面。因此,当前工作的目的是开发一种方法,以改进基于有限元法得出的足部内部应力预测,用于糖尿病足的预防应用。将三维足部有限元模型与基于肌肉骨骼建模得出的力相结合,以预测足部内部应力过大的部位。采集了一名健康受试者的体内步态分析数据和足部磁共振成像扫描数据,并用于开发一个六自由度(6 DOF)足部肌肉骨骼模型和一个三维个体化足部有限元模型。将踝关节运动学作为边界条件应用于有限元模型,同时考虑以下因素:1. 仅地面反作用力(GRF);2. 通过标准OpenSim肌肉骨骼模型估计的OpenSim得出的外在肌肉力;3. 通过(6 DOF)足部肌肉骨骼模型得出的外在肌肉力;4. 通过6 DOF足部肌肉骨骼模型得出的内在和外在肌肉力。为了进行模型验证,提取了模拟峰值压力并与实验测量值进行比较。通过纳入内在和外在肌肉力获得的峰值压力估计精度的提高,证实了足部肌肉在控制足底压力分布和内部应力方面的重要性。