内侧半月板
弯月面
流离失所(心理学)
压缩(物理)
拉伤
材料科学
磁共振成像
解剖
膝关节
接头(建筑物)
生物医学工程
骨关节炎
医学
结构工程
数学
外科
复合材料
几何学
放射科
心理学
替代医学
入射(几何)
病理
工程类
心理治疗师
作者
Maren Freutel,Andreas Martin Seitz,Fabio Galbusera,Axel Bornstedt,Volker Rasche,Melissa L. Knothe Tate,Anita Ignatius,Lutz Dürselen
摘要
Purpose To investigate the 3D displacement and the local strain of the medial meniscus and its attachments under compressive loading. Materials and Methods Magnetic resonance imaging (MRI) scans of six porcine knee joints were performed under unloaded and loaded conditions (100% and 200% body weight [BW]). Volumes were registered to obtain a 3D displacement field of the medial meniscus and its attachments, which were divided into five anatomic compartments. Finally, displacements of the center of mass of each compartment and the local strain were analyzed. Results The meniscus and its attachments significantly displaced by up to 2.6 ± 1.2 mm ( P < 0.01) under knee joint loads of 200% BW. An increase of 0.9 mm in the distance between posterior and anterior horn ( P < 0.001) was observed. The meniscus and its attachment showed an average radial stretch of 0.6%, an average circumferential stretch of 0.9%, and an average axial compression of 11.6% at 200% BW. Conclusion High‐resolution MRI was successfully combined with image registration to investigate the displacement and strain of the meniscus and its attachments under compression. The results of this study contribute to the basic understanding of meniscal movement which may impact the design of meniscal implants and the validation of finite element models in the future. J. Magn. Reson. Imaging 2014;40:1181–1188 . © 2013 Wiley Periodicals, Inc .
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