Department of Biology, Quinlan Life Sciences Education and Research Center, Loyola University Chicago, 1032 W. Sheridan Rd, Chicago, IL, 60660, USA.
Med Biol Eng Comput. 2018 Oct;56(10):1793-1805. doi: 10.1007/s11517-018-1814-3. Epub 2018 Mar 19.
Bone cells sense mechanical load, which is essential for bone growth and remodeling. In a fracture, this mechanism is compromised. Electromagnetic stimulation has been widely used to assist in bone healing, but the underlying mechanisms are largely unknown. A recent hypothesis suggests that electromagnetic stimulation could influence tissue biomechanics; however, a detailed quantitative understanding of EM-induced biomechanical changes in the bone is unavailable. This paper used a muscle/bone model to study the biomechanics of the bone under EM exposure. Due to the dielectric properties of the muscle/bone interface, a time-varying magnetic field can generate both compressing and shear stresses on the bone surface, where many mechanical sensing cells are available for cellular mechanotransduction. I calculated these stresses and found that the shear stress is significantly greater than the compressing stress. Detailed parametric analysis suggests that both the compressing and shear stresses are dependent on the geometrical and electrical properties of the muscle and the bone. These stresses are also functions of the orientation of the coil and the frequency of the magnetic field. It is speculated that the EM field could apply biomechanical influence to fractured bone, through the fine-tuning of the controllable field parameters. Graphical abstract Mechanic stress on bone surface in a time-varying magnetic field.
骨细胞感知机械负荷,这对于骨生长和重塑至关重要。在骨折中,这种机制受到了损害。电磁刺激已被广泛用于辅助骨愈合,但潜在的机制在很大程度上尚不清楚。最近的一个假设表明,电磁刺激可能会影响组织生物力学;然而,关于 EM 诱导的骨生物力学变化的详细定量理解尚不清楚。本文使用肌肉/骨骼模型研究了 EM 暴露下骨骼的生物力学。由于肌肉/骨骼界面的介电特性,时变磁场可以在骨骼表面产生压缩和剪切应力,而许多机械敏感细胞可用于细胞机械转导。我们计算了这些应力,发现剪切应力明显大于压缩应力。详细的参数分析表明,压缩和剪切应力都取决于肌肉和骨骼的几何和电气特性。这些应力也是线圈方向和磁场频率的函数。可以推测,通过对可控场参数的微调,电磁场可以对骨折骨施加生物力学影响。