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Derivation of a finite-element model of lingual deformation during swallowing from the mechanics of mesoscale myofiber tracts obtained by MRI

机译:吞咽期间舌形变形的有限元模型从MRI获得的中尺度肌纤维束力学中推导

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摘要

To demonstrate the relationship between lingual myoarchitecture and mechanics during swallowing, we performed a finite-element (FE) simulation of lingual deformation employing mesh aligned with the vector coordinates of myofiber tracts obtained by diffusion tensor imaging with tractography in humans. Material properties of individual elements were depicted in terms of Hill's three-component phenomenological model, assuming that the FE mesh was composed of anisotropic muscle and isotropic connective tissue. Moreover, the mechanical model accounted for elastic constraints by passive and active elements from the superior and inferior directions and the effect of out-of-plane muscles and connective tissue. Passive bolus effects were negligible. Myofiber tract activation was simulated over 500 ms in 1-ms steps following lingual tip association with the hard palate and incorporated specifically the accommodative and propulsive phases of the swallow. Examining the displacement field, active and passive muscle stress, elemental stretch, and strain rate relative to changes of global shape, we demonstrate that lingual reconfiguration during these swallow phases is characterized by (in sequence) the following: 1) lingual tip elevation and shortening in the anterior-posterior direction; 2) inferior displacement related to hyoglossus contraction at its inferior-most position; and 3) dominant clockwise rotation related to regional contraction of the genioglossus and contraction of the hyoglossus following anterior displacement. These simulations demonstrate that lingual deformation during the indicated phases of swallowing requires temporally patterned activation of intrinsic and extrinsic muscles and delineate a method to ascertain the mechanics of normal and pathological swallowing.
机译:为了证明吞咽过程中舌肌结构与力学之间的关系,我们对人体进行了有限元(FE)的舌头变形模拟,方法是将网格与通过人体的张量成像和张量成像得到的肌纤维束的矢量坐标对齐。假设希尔曼有限元网格由各向异性的肌肉和各向同性的结缔组织组成,则根据希尔的三成分现象学模型描述了各个元素的材料特性。此外,机械模型考虑了来自上,下方向的被动和主动元素的弹性约束以及平面外肌肉和结缔组织的影响。被动推注作用可忽略不计。舌尖与硬pa结合后,肌纤维束激活以1 ms的步长以500 ms进行了模拟,并特别纳入了吞咽的适应性和推进性阶段。通过检查位移场,主动和被动肌肉压力,基本拉伸以及相对于整体形状变化的应变率,我们证明了这些吞咽阶段的舌头重构具有(依次)以下特征:1)舌尖升高和缩短在前后方向2)在最下方的位置引起与舌下收缩有关的下移位; 3)顺时针旋转占优势,与舌肌的局部收缩和前移后的舌突收缩有关。这些模拟表明,在吞咽指示的阶段中的舌头变形需要内部和外部肌肉的时间模式激活,并描绘出确定正常吞咽和病理吞咽机制的方法。

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