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Quantification of patellofemoral cartilage deformation and contact area changes in response to static loading via high‐resolution MRI with prospective motion correction

机译:通过高分辨率MRI具有前瞻性运动校正的高分辨率MRI的静态负荷,定量Patellofemoral软骨变形和接触面积的变化

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Background Higher‐resolution MRI of the patellofemoral cartilage under loading is hampered by subject motion since knee flexion is required during the scan. Purpose To demonstrate robust quantification of cartilage compression and contact area changes in response to in situ loading by means of MRI with prospective motion correction and regularized image postprocessing. Study Type Cohort study. Subjects Fifteen healthy male subjects. Field Strength 3?T. Sequence Spoiled 3D gradient‐echo sequence augmented with prospective motion correction based on optical tracking. Measurements were performed with three different loads (0/200/400?N). Assessment Bone and cartilage segmentation was performed manually and regularized with a deep‐learning approach. Average patellar and femoral cartilage thickness and contact area were calculated for the three loading situations. Reproducibility was assessed via repeated measurements in one subject. Statistical Tests Comparison of the three loading situations was performed by Wilcoxon signed‐rank tests. Results Regularization using a deep convolutional neural network reduced the variance of the quantified relative load‐induced changes of cartilage thickness and contact area compared to purely manual segmentation (average reduction of standard deviation by ~50%) and repeated measurements performed on the same subject demonstrated high reproducibility of the method. For the three loading situations (0/200/400?N), the patellofemoral cartilage contact area as well as the mean patellar and femoral cartilage thickness were significantly different from each other ( P ??0.05). While the patellofemoral cartilage contact area increased under loading (by 14.5/19.0% for loads of 200/400?N), patellar and femoral cartilage thickness exhibited a load‐dependent thickness decrease (patella: –4.4/–7.4%, femur: –3.4/–7.1% for loads of 200/400?N). Data Conclusion MRI with prospective motion correction enables quantitative evaluation of patellofemoral cartilage deformation and contact area changes in response to in situ loading. Regularizing the manual segmentations using a neural network enables robust quantification of the load‐induced changes. Level of Evidence: 2 Technical Efficacy: Stage 2 J. Magn. Reson. Imaging 2019;50:1561–1570.
机译:由于在扫描期间需要膝关节弯曲,因此载荷下的髌粉型软骨的更高分辨率MRI被主题运动受到阻碍。目的展示软骨压缩和接触面积的鲁棒量化响应于通过MRI与预期运动校正和正则化图像进行后处理和正则化图像的变化。研究类型队列研究。受试者十五岁健康的男性受试者。场强3?T.序列被损坏的3D梯度回声序列采用基于光学跟踪的前瞻性运动校正来增强。用三种不同的载荷进行测量(0/200/400?n)进行。通过深度学习方法手动和规范评估骨和软骨分割。为三个加载情况计算平均髌骨和股骨软骨厚度和接触面积。通过一个主题的重复测量评估再现性。统计试验三个加载情况的比较是由Wilcoxon签名级别测试进行的。结果使用深度卷积神经网络的正则化降低了与纯手动分割(标准偏差的平均降低〜50%)和在同一主题上进行的重复测量相比降低了量化的相对载荷诱导的混凝土的变化和接触面积的变化。该方法的高再现性。对于三个加载情况(0/200/400?N),Patellofemoral软骨接触面积以及平均髌骨和股骨软骨厚度彼此显着不同(P?&?0.05)。虽然髌户软骨接触面积在载荷下增加(载荷为200/400·n的载荷14.5 / 19.0%),但髌骨和股骨软骨厚度表现出负载依赖性厚度(髌骨:-4.4 / -7.4%,股骨: - 3.4 / -7.1%的负载200/400?n)。具有前瞻性运动校正的数据结论MRI能够对Patelloforal软骨变形和接触面积的定量评估响应于原位载荷。使用神经网络进行规范的手动分段,使得能够鲁棒量化的负载引起的变化。证据水平:2技术疗效:第2阶段J. MANG。恢复。 2019年成像; 50:1561-1570。

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