MRI Section, Radiology Department, SERCOSA, HT Médica, Carmelo Torres 2, 23007, Jaén, Spain.
Centro Rossi, Buenos Aires, Argentina.
Eur Radiol. 2022 Nov;32(11):7623-7631. doi: 10.1007/s00330-022-08837-w. Epub 2022 May 12.
Magnetic resonance imaging (MRI) of skeletal muscle is routinely performed using morphological sequences to acquire anatomical information. Recently, there is an increasing interest in applying advanced MRI techniques that provide pathophysiologic information for skeletal muscle evaluation to complement standard morphologic information. Among these advanced techniques, diffusion tensor imaging (DTI) has emerged as a potential tool to explore muscle microstructure. DTI can noninvasively assess the movement of water molecules in well-organized tissues with anisotropic diffusion, such as skeletal muscle. The acquisition of DTI studies for skeletal muscle assessment requires specific technical adjustments. Besides, knowledge of DTI physical basis and skeletal muscle physiopathology facilitates the evaluation of this advanced sequence and both image and parameter interpretation. Parameters derived from DTI provide a quantitative assessment of muscle microstructure with potential to become imaging biomarkers of normal and pathological skeletal muscle. KEY POINTS: • Diffusion tensor imaging (DTI) allows to evaluate the three-dimensional movement of water molecules inside biological tissues. • The skeletal muscle structure makes it suitable for being evaluated with DTI. • Several technical adjustments have to be considered for obtaining robust and reproducible DTI studies for skeletal muscle assessment, minimizing potential artifacts.
磁共振成像(MRI)在骨骼肌肉常规应用形态学序列来获取解剖学信息。最近,人们越来越感兴趣地应用提供骨骼肌肉评估的病理生理学信息的高级 MRI 技术来补充标准形态学信息。在这些高级技术中,扩散张量成像(DTI)已成为探索肌肉微观结构的潜在工具。DTI 可以非侵入性地评估具有各向异性扩散的组织(如骨骼肌肉)中水分子的运动。用于骨骼肌肉评估的 DTI 研究的采集需要特定的技术调整。此外,了解 DTI 的物理基础和骨骼肌肉病理生理学有助于评估这种高级序列以及图像和参数解释。从 DTI 得出的参数提供了对肌肉微观结构的定量评估,有可能成为正常和病理骨骼肌肉的成像生物标志物。
扩散张量成像(DTI)允许评估生物组织内水分子的三维运动。
骨骼肌肉结构使其适合用 DTI 进行评估。
为了获得用于骨骼肌肉评估的稳健且可重复的 DTI 研究,必须考虑一些技术调整,以最大程度地减少潜在伪影。