论文标题

英国生物库的Iliopsoas肌肉量的大规模分析

Large-Scale Analysis of Iliopsoas Muscle Volumes in the UK Biobank

论文作者

Fitzpatrick, Julie, Basty, Nicolas, Cule, Madeleine, Liu, Yi, Bell, Jimmy D., Thomas, E. Louise, Whitcher, Brandon

论文摘要

PSOAS肌肉测量经常用作肌肉减少症和健康预测指标。手动测量的横截面区域是最常用的,但是对于大型人群研究而言,测量和手动注释的位置缺乏一致性。我们已经开发了一种全自动方法,可以使用卷积神经网络测量Iliopsoas肌肉体积(由PSOA和Iliacus肌肉组成)。磁共振图像是从英国生物库中获得的5,000名男性和女性参与者,即年龄,性别和BMI。可用于模型培训和验证90个手动注释。该模型在样本外数据(骰子得分系数为0.912 +/- 0.018)方面表现出了出色的性能。在所有5,000名参与者中,成功测量了Iliopsoas肌肉量。与女性受试者相比,男性的Iliopsoas体积更大。左右与肌体积之间存在很小但显着的不对称性。我们还发现,Iliopsoas的体积与身高,BMI和年龄显着相关,并且随着年龄的增长,肌肉体积降低加速。我们的方法提供了一种可用于测量可以应用于大型队列的Iliopsoas肌肉体积的强大技术。

Psoas muscle measurements are frequently used as markers of sarcopenia and predictors of health. Manually measured cross-sectional areas are most commonly used, but there is a lack of consistency regarding the position of the measurementand manual annotations are not practical for large population studies. We have developed a fully automated method to measure iliopsoas muscle volume (comprised of the psoas and iliacus muscles) using a convolutional neural network. Magnetic resonance images were obtained from the UK Biobank for 5,000 male and female participants, balanced for age, gender and BMI. Ninety manual annotations were available for model training and validation. The model showed excellent performance against out-of-sample data (dice score coefficient of 0.912 +/- 0.018). Iliopsoas muscle volumes were successfully measured in all 5,000 participants. Iliopsoas volume was greater in male compared with female subjects. There was a small but significant asymmetry between left and right iliopsoas muscle volumes. We also found that iliopsoas volume was significantly related to height, BMI and age, and that there was an acceleration in muscle volume decrease in men with age. Our method provides a robust technique for measuring iliopsoas muscle volume that can be applied to large cohorts.

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