arXiv:2506.20206eess.IV2025-06

用活体成像精准分割手指屈肌的肌室,助力运动功能研究

Volumetric segmentation of muscle compartments using in vivo imaging and architectural validation in human finger flexors

  • 结合超声与MRI,分两步实现肌室三维分割
  • 95%肌电中心落在对应肌室,验证分割精度
  • 首次获得活体肌室结构参数,适用于运动建模

肌室分割与结构测量可促进运动功能评估、精准肌肉骨骼建模及基于协同作用的肌电模拟。本研究提出一种基于活体成像的肌室体积分割新方法,聚焦于指屈肌浅层肌(FDS)独立控制的肌室。利用10名健康受试者的超声与磁共振成像(MRI)进行分割与测量,肌电图用于验证。采用两步法:先在横断面超声图像上依据肌室运动标注区域,再通过最小能量匹配将超声数据配准至三维MRI坐标系。利用MRI纤维追踪技术在分割掩码内测量肌室结构特性。解剖正确性通过与尸体照片纤维走向对比及测量参数验证;分割准确性以肌电中心落于对应肌室的比例衡量。结果显示纤维走向与尸体照片高度一致;各肌室间结构特性差异显著(P < 0.001),FDS及其肌室参数均在生理范围内(P < 0.01)。40个肌电中心中有38个(95%)落入对应肌室,仅示指和小指出现2处误差。该验证后的分割方法与所得结构参数可推动生物医学应用。

原文摘要 · Abstract (English)

Segmenting muscle compartments and measuring their architecture can facilitate movement function assessment, accurate musculoskeletal modeling, and synergy-based electromyogram simulation. Here, we presented a novel method for volumetric segmentation of muscle compartments using in vivo imaging, focusing on the independent compartments for finger control of flexor digitorum superficialis (FDS). Besides, we measured the architectural properties of FDS compartments and validated the segmentation. Specifically, ultrasound and magnetic resonance imaging (MRI) from 10 healthy subjects were used for segmentation and measurement, while electromyography was utilized for validation. A two-step piecewise segmentation was proposed, first annotating compartment regions in the cross-sectional ultrasound image based on compartment movement, and then performing minimum energy matching to register the ultrasound data to the three-dimensional MRI coordinate system. Additionally, the architectural properties were measured in the compartment masks from the segmentation using MRI tractography. Anatomical correctness was verified by comparing known anatomy with reconstructed fiber tracts and measured properties, while segmentation accuracy was quantified as the percentage of finger electromyogram centers falling within their corresponding compartments. Results demonstrated agreement for the fiber orientation between the tractography and cadaveric photographs. Significant differences in architectural properties (P < 0.001) were observed between compartments. The properties of FDS and its compartments were within the physiological ranges (P < 0.01). 95% (38/40) of the electromyogram centers were located within respective compartments, with 2 errors occurring in the index and little fingers. The validated segmentation method and derived architectural properties may advance biomedical applications.

肌室分割活体成像运动建模超声融合

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