Taylor William R, Schütz Pascal, Bergmann Georg, List Renate, Postolka Barbara, Hitz Marco, Dymke Jörn, Damm Philipp, Duda Georg, Gerber Hans, Schwachmeyer Verena, Hosseini Nasab Seyyed Hamed, Trepczynski Adam, Kutzner Ines
Institute for Biomechanics, ETH Zürich, Switzerland. Electronic address: http://www.movement.ethz.ch.
Institute for Biomechanics, ETH Zürich, Switzerland.
J Biomech. 2017 Dec 8;65:32-39. doi: 10.1016/j.jbiomech.2017.09.022. Epub 2017 Oct 6.
Combined knowledge of the functional kinematics and kinetics of the human body is critical for understanding a wide range of biomechanical processes including musculoskeletal adaptation, injury mechanics, and orthopaedic treatment outcome, but also for validation of musculoskeletal models. Until now, however, no datasets that include internal loading conditions (kinetics), synchronized with advanced kinematic analyses in multiple subjects have been available. Our goal was to provide such datasets and thereby foster a new understanding of how in vivo knee joint movement and contact forces are interlinked - and thereby impact biomechanical interpretation of any new knee replacement design. In this collaborative study, we have created unique kinematic and kinetic datasets of the lower limb musculoskeletal system for worldwide dissemination by assessing a unique cohort of 6 subjects with instrumented knee implants (Charité - Universitätsmedizin Berlin) synchronized with a moving fluoroscope (ETH Zürich) and other measurement techniques (including whole body kinematics, ground reaction forces, video data, and electromyography data) for multiple complete cycles of 5 activities of daily living. Maximal tibio-femoral joint contact forces during walking (mean peak 2.74 BW), sit-to-stand (2.73 BW), stand-to-sit (2.57 BW), squats (2.64 BW), stair descent (3.38 BW), and ramp descent (3.39 BW) were observed. Internal rotation of the tibia ranged from 3° external to 9.3° internal. The greatest range of anterio-posterior translation was measured during stair descent (medial 9.3 ± 1.0 mm, lateral 7.5 ± 1.6 mm), and the lowest during stand-to-sit (medial 4.5 ± 1.1 mm, lateral 3.7 ± 1.4 mm). The complete and comprehensive datasets will soon be made available online for public use in biomechanical and orthopaedic research and development.
人体功能运动学和动力学的综合知识对于理解广泛的生物力学过程至关重要,这些过程包括肌肉骨骼适应性、损伤力学和骨科治疗结果,同时对于肌肉骨骼模型的验证也很关键。然而,到目前为止,还没有包含内部负荷条件(动力学)且与多个受试者的先进运动学分析同步的数据集。我们的目标是提供这样的数据集,从而促进对体内膝关节运动和接触力如何相互关联的新理解——进而影响对任何新型膝关节置换设计的生物力学解释。在这项合作研究中,我们通过评估一组独特的6名佩戴仪器化膝关节植入物的受试者(柏林夏里特大学医学中心),并使其与移动荧光透视仪(苏黎世联邦理工学院)以及其他测量技术(包括全身运动学、地面反作用力、视频数据和肌电图数据)同步,针对5种日常生活活动的多个完整周期,创建了下肢肌肉骨骼系统独特的运动学和动力学数据集,以供全球传播。观察到步行(平均峰值2.74倍体重)、从坐到站(2.73倍体重)、从站到坐(2.57倍体重)、深蹲(2.64倍体重)、下楼梯(3.38倍体重)和下斜坡(3.39倍体重)过程中最大胫股关节接触力。胫骨内旋范围从3°外旋到9.3°内旋。最大前后平移范围在楼梯下降过程中测得(内侧9.3±1.0毫米,外侧7.5±1.6毫米),而在从站到坐过程中最低(内侧4.5±1.1毫米,外侧3.7±1.4毫米)。这些完整且全面的数据集很快将在网上公开,供生物力学和骨科研发领域的公众使用。