Department of Bioengineering, School of Engineering & Applied Science, University of Pennsylvania, Philadelphia, Pennsylvania, USA.
Center for Neuroengineering and Therapeutics, University of Pennsylvania, Philadelphia, Pennsylvania, USA.
J Magn Reson Imaging. 2023 Jan;57(1):25-44. doi: 10.1002/jmri.28408. Epub 2022 Sep 19.
Modern MRI scanners have trended toward higher field strengths to maximize signal and resolution while minimizing scan time. However, high-field devices remain expensive to install and operate, making them scarce outside of high-income countries and major population centers. Low-field strength scanners have drawn renewed academic, industry, and philanthropic interest due to advantages that could dramatically increase imaging access, including lower cost and portability. Nevertheless, low-field MRI still faces inherent limitations in image quality that come with decreased signal. In this article, we review advantages and disadvantages of low-field MRI scanners, describe hardware and software innovations that accentuate advantages and mitigate disadvantages, and consider clinical applications for a new generation of low-field devices. In our review, we explore how these devices are being or could be used for high acuity brain imaging, outpatient neuroimaging, MRI-guided procedures, pediatric imaging, and musculoskeletal imaging. Challenges for their successful clinical translation include selecting and validating appropriate use cases, integrating with standards of care in high resource settings, expanding options with actionable information in low resource settings, and facilitating health care providers and clinical practice in new ways. By embracing both the promise and challenges of low-field MRI, clinicians and researchers have an opportunity to transform medical care for patients around the world. LEVEL OF EVIDENCE: 5 TECHNICAL EFFICACY: Stage 6.
现代磁共振成像扫描仪的场强逐渐增高,以在最小化扫描时间的同时最大化信号和分辨率。然而,高场设备的安装和运行成本仍然很高,因此除了高收入国家和主要人口中心外,它们的数量仍然很少。由于具有可以显著增加成像机会的优势,包括更低的成本和便携性,低场强扫描仪重新引起了学术界、工业界和慈善界的兴趣。然而,低场 MRI 仍然面临着图像质量的固有限制,这是由于信号减少带来的。在本文中,我们回顾了低场 MRI 扫描仪的优缺点,描述了突出优势和减轻劣势的硬件和软件创新,并考虑了新一代低场设备的临床应用。在我们的综述中,我们探讨了这些设备如何或可以用于高灵敏度脑成像、门诊神经成像、MRI 引导的程序、儿科成像和肌肉骨骼成像。成功进行临床转化的挑战包括选择和验证合适的应用案例、将其与高资源环境中的护理标准相结合、在低资源环境中通过可操作信息扩展选项,以及以新的方式为医疗保健提供者和临床实践提供便利。通过接受低场 MRI 的承诺和挑战,临床医生和研究人员有机会为全球患者改变医疗服务。证据水平:5 技术功效:第 6 阶段。