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Modeling the biomechanics of fetal movements

机译:胎儿运动的生物力学建模

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Fetal movements in the uterus are a natural part of development and are known to play an important role in normal musculoskeletal development. However, very little is known about the biomechanical stimuli that arise during movements in utero, despite these stimuli being crucial to normal bone and joint formation. Therefore, the objective of this study was to create a series of computational steps by which the forces generated during a kick in utero could be predicted from clinically observed fetal movements using novel cine-MRI data of three fetuses, aged 20-22 weeks. A custom tracking software was designed to characterize the movements of joints in utero, and average uterus deflection of mm due to kicking was calculated. These observed displacements provided boundary conditions for a finite element model of the uterine environment, predicting an average reaction force of N generated by a kick against the uterine wall. Finally, these data were applied as inputs for a musculoskeletal model of a fetal kick, resulting in predicted maximum forces in the muscles surrounding the hip joint of approximately 8 N, while higher maximum forces of approximately 21 N were predicted for the muscles surrounding the knee joint. This study provides a novel insight into the closed mechanical environment of the uterus, with an innovative method allowing elucidation of the biomechanical interaction of the developing fetus with its surroundings.
机译:子宫中的胎儿运动是发育的自然部分,已知在正常的骨骼肌肉发育中起重要作用。但是,对子宫内运动期间产生的生物力学刺激知之甚少,尽管这些刺激对于正常的骨骼和关节形成至关重要。因此,本研究的目的是创建一系列计算步骤,从而可以使用三名年龄在20-22周的胎儿的最新cine-MRI数据,从临床观察到的胎儿运动预测子宫内踢动时产生的力。设计了一个定制的跟踪软件来表征子宫内关节的运动,并计算了因踢腿而引起的平均子宫偏斜。这些观察到的位移为子宫环境的有限元模型提供了边界条件,从而预测了由对子宫壁的撞击产生的N的平均反作用力。最后,这些数据被用作胎儿踢的肌肉骨骼模型的输入,从而导致髋关节周围肌肉的最大预测力约为8 N,而膝盖周围肌肉的最大预测力约为21 N联合。这项研究提供了一种新颖的洞察力,可以通过一种新颖的方法阐明子宫封闭的机械环境,从而阐明发育中的胎儿与其周围环境之间的生物力学相互作用。

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