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Experimental evaluation of current and novel approximations of articular surfaces of the ankle joint

机译:踝关节关节表面的电流和新近似的实验评价

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Kinematics and flexibility properties of both natural and replaced ankle joints are affected by the geometry of the articulating surfaces. Recent studies proposed an original saddle-shaped, skewed, truncated cone with laterally oriented apex, as tibiotalar contact surfaces for ankle prosthesis. The goal of this study was to compare in vitro this novel design with traditional cylindrical or medially centered conic geometries in terms of their ability to replicate the natural ankle joint mechanics. Ten lower limb cadaver specimens underwent a validated process of custom design for the replacement of the natural ankle joint. The process included medical imaging, 3D modeling and printing of implantable sets of artificial articular surfaces based on these three geometries. Kinematics and flexibility of the overall ankle complex, along with the separate ankle and subtalar joints, were measured under cyclic loading. In the neutral and in maximum plantarflexion positions, the range of motion under torques in the three anatomical planes of the three custom artificial surfaces was not significantly different from that of the natural surfaces. In maximum dorsiflexion the difference was significant for all three artificial surfaces at the ankle complex, and only for the cylindrical and medially centered conic geometries at the tibiotalar joint. Natural joint flexibility was restored by the artificial surfaces nearly in all positions. The present study provides experimental support for designing articular surfaces matching the specific morphology of the ankle to be replace, and lays the foundations of the overall process for designing and manufacturing patient-specific total ankle replacements. (C) 2018 Elsevier Ltd. All rights reserved.
机译:天然和更换脚踝关节的运动学和灵活性受关节表面的几何形状的影响。最近的研究提出了一种原始的鞍形倾斜,截头锥,横向面向顶点,作为踝假体的纤维锥接触表面。本研究的目标是在体外与传统的圆柱形或内部以圆锥形圆锥形几何形式进行比较,以便它们复制天然踝关节力学的能力。十个下肢尸体标本验证了定制设计的验证过程,用于更换天然踝关节。该过程包括基于这三个几何形状的医学成像,3D建模和印刷人工关节表面的植入套。在循环载荷下测量了整个踝部复合物的运动学和整个踝关节复合物的灵活性,以及​​单独的脚踝和子间隙接头。在中性和最大的Plantarflexion位置中,三种定制人造表面的三个解剖面上的扭矩下的运动范围与天然表面的三个解剖结构没有显着差异。在最大背屈中,踝部复合物的所有三个人造表面具有重要意义,并且仅针对胫骨关节的圆柱形和内部居中的圆锥形圆锥形几何形状。人造表面几乎在所有位置恢复了自然的关节灵活性。本研究提供了设计与往复式的特定形态匹配的关节表面的实验支持,并为设计和制造患者特定的总踝置换的整体过程的基础。 (c)2018年elestvier有限公司保留所有权利。

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