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绵羊骨碎片间运动随肌肉骨骼负荷条件变化的分析

Analysis of inter-fragmentary movement as a function of musculoskeletal loading conditions in sheep.

作者信息

Duda G N, Eckert-Hübner K, Sokiranski R, Kreutner A, Miller R, Claes L

机构信息

Department of Unfallchirurgische Forschung und Biomechanik, University of Ulm, Germany.

出版信息

J Biomech. 1998 Mar;31(3):201-10. doi: 10.1016/s0021-9290(97)00127-9.

Abstract

It is well accepted that inter-fragmentary movement influences the fracture healing process. Small axial movement can stimulate callus formation whereas larger shear movement delays the healing process. It is, therefore, essential for optimal fracture healing to minimize shear and to control axial movement. Unfortunately, the complex gap movements are mostly unknown under the large variety of clinical as well as experimental conditions of fracture fixation. To further understand the complex interactions of musculoskeletal loading and inter-fragmentary movements in bones and to reduce the need for animal experiments, a three-dimensional (3D) musculoskeletal model of the left hind limb of a sheep was developed. From 3D ground reaction forces and inverse dynamics, resultant joint loading was determined over a gait cycle. Muscle and joint contact forces were derived from an optimization routine and internal loads in the tibia and metatarsus from beam theory. Finally, inter-fragmentary movements were calculated from the bony loading condition and experimentally determined stiffness matrices of monolateral AISF external fixator constructs. Both the joint contact forces at the hip and gap movement of a mid-shaft tibial fracture agree with in vivo data reported in the literature. The bones proved to be mainly axially loaded with slightly increasing shear forces toward their ends. The results suggest that inter-fragmentary movement of metatarsal fractures is fairly independent of the fracture location whereas the movement increases in proximal tibial fractures compared to those in the distal and diaphyseal tibia. Considerable shear movement was found for all locations and external fixator mountings. However, shear movement could be minimized with a cranio-lateral rather than a cranio-medial shift from the cranial fixator plane.

摘要

骨折块间的运动影响骨折愈合过程,这一点已得到广泛认可。小幅度的轴向运动会刺激骨痂形成,而较大的剪切运动会延迟愈合过程。因此,为实现最佳骨折愈合,尽量减少剪切力并控制轴向运动至关重要。不幸的是,在各种临床和骨折固定实验条件下,复杂的间隙运动大多尚不明确。为进一步了解骨骼肌肉负荷与骨内骨折块间运动的复杂相互作用,并减少动物实验的需求,构建了绵羊左后肢的三维(3D)肌肉骨骼模型。根据3D地面反作用力和逆动力学,确定了一个步态周期内的合成关节负荷。肌肉和关节接触力通过优化程序得出,胫骨和跖骨内的负荷根据梁理论计算。最后,根据骨负荷情况和实验确定的单侧AISF外固定器结构刚度矩阵计算骨折块间的运动。髋部的关节接触力和胫骨干中段骨折的间隙运动均与文献报道的体内数据相符。结果表明,跖骨骨折的骨折块间运动与骨折位置相当无关,而与胫骨远端和骨干骨折相比,胫骨近端骨折的运动增加。在所有位置和外固定器安装方式下均发现了相当大的剪切运动。然而,通过将颅骨固定器平面从颅内侧向颅外侧移动,可将剪切运动降至最低。

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