Bangerter Neal K, Tarbox Grayson J, Taylor Meredith D, Kaggie Joshua D
Department of Electrical & Computer Engineering, Brigham Young University, Provo, UT, USA;; Department of Radiology, University of Utah, Salt Lake City, UT, USA.
Department of Electrical & Computer Engineering, Brigham Young University, Provo, UT, USA.
Quant Imaging Med Surg. 2016 Dec;6(6):699-714. doi: 10.21037/qims.2016.12.10.
Sodium magnetic resonance imaging (MRI), or imaging of the 23Na nucleus, has been under exploration for several decades, and holds promise for potentially revealing additional biochemical information about the health of tissues that cannot currently be obtained from conventional hydrogen (or proton) MRI. This additional information could serve as an important complement to conventional MRI for many applications. However, despite these exciting possibilities, sodium MRI is not yet used routinely in clinical practice, and will likely remain strictly in the domain of exploratory research for the coming decade. This paper begins with a technical overview of sodium MRI, including the nuclear magnetic resonance (NMR) signal characteristics of the sodium nucleus, the challenges associated with sodium MRI, and the specialized pulse sequences, hardware, and reconstruction techniques required. Various applications of sodium MRI for quantitative analysis of the musculoskeletal system are then reviewed, including the non-invasive assessment of cartilage degeneration , imaging of tendinopathy, applications in the assessment of various muscular pathologies, and assessment of muscle response to exercise.
钠磁共振成像(MRI),即对23Na原子核的成像,已经探索了几十年,有望揭示目前传统氢(或质子)MRI无法获得的有关组织健康状况的额外生化信息。这些额外信息对于许多应用而言可作为传统MRI的重要补充。然而,尽管有这些令人兴奋的可能性,钠MRI尚未在临床实践中常规使用,并且在未来十年可能仍将严格局限于探索性研究领域。本文首先对钠MRI进行技术概述,包括钠原子核的核磁共振(NMR)信号特征、与钠MRI相关的挑战以及所需的专门脉冲序列、硬件和重建技术。然后回顾了钠MRI在肌肉骨骼系统定量分析中的各种应用,包括软骨退变的无创评估、肌腱病成像、在各种肌肉病变评估中的应用以及肌肉对运动反应的评估。