便携式超低场MRI多中心结构神经成像的特点

IF 3.3 2区 医学 Q1 NEUROIMAGING
Emil Ljungberg, Francesco Padormo, Megan Poorman, Petter Clemensson, Niall Bourke, John C. Evans, James Gholam, Irene Vavasour, Shannon H. Kollind, Samson L. Lafayette, Carly Bennallick, Kirsten A. Donald, Layla E. Bradford, Beatrice Lena, Maclean Vokhiwa, Talat Shama, Jasmine Siew, Lydia Sekoli, Jeanne van Rensburg, Michael S. Pepper, Amna Khan, Akber Madhwani, Frank A. Banda, Mwila L. Mwila, Adam R. Cassidy, Kebaiphe Moabi, Dolly Sephi, Richard A. Boakye, Kenneth A. Ae-Ngibise, Kwaku P. Asante, William J. Hollander, Todor Karaulanov, Steven C. R. Williams, Sean Deoni
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引用次数: 0

摘要

便携式超低场核磁共振(ULF-MRI)系统的基础设施要求较低,使其能够在各种环境中使用,如重症监护病房和远程医疗设施。UNITY项目是一个利用这项技术的国际神经成像网络,在全球部署便携式ULF-MRI系统,以扩大MRI在大脑发育研究中的使用范围。考虑到ULF-MRI系统可能运行的环境范围很广,存在可能影响图像质量的外部因素。这项工作旨在介绍UNITY项目使用的质量控制(QC)框架,以调查系统的健壮性以及QC指标如何在站点和时间之间进行比较。我们提出了一个QC框架,使用商用幻影,在四大洲12个国家的17个地点用64吨便携式MRI系统扫描。使用自动化的、开源的分析工具,我们量化了信噪比、图像对比度和几何失真。结果表明,该图像质量对电磁噪声干扰和温度等不同操作环境具有较强的鲁棒性。拉莫尔频率与室温、图像噪声和对比度显著相关。图像畸变小于2.5 mm,随着时间的推移具有很高的鲁棒性。与更高领域的研究类似,我们发现软件更新引起的脉冲序列参数的变化对QC指标有影响。该研究表明,便携式ULF-MRI系统可以部署在各种环境中进行多中心神经成像研究,并产生可靠的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Characterization of Portable Ultra-Low Field MRI Scanners for Multi-Center Structural Neuroimaging

Characterization of Portable Ultra-Low Field MRI Scanners for Multi-Center Structural Neuroimaging

The lower infrastructure requirements of portable ultra-low field MRI (ULF-MRI) systems have enabled their use in diverse settings such as intensive care units and remote medical facilities. The UNITY Project is an international neuroimaging network harnessing this technology, deploying portable ULF-MRI systems globally to expand access to MRI for studies into brain development. Given the wide range of environments where ULF-MRI systems may operate, there are external factors that might influence image quality. This work aims to introduce the quality control (QC) framework used by the UNITY Project to investigate how robust the systems are and how QC metrics compare between sites and over time. We present a QC framework using a commercially available phantom, scanned with 64 mT portable MRI systems at 17 sites across 12 countries on four continents. Using automated, open-source analysis tools, we quantify signal-to-noise, image contrast, and geometric distortions. Our results demonstrated that the image quality is robust to the varying operational environment, for example, electromagnetic noise interference and temperature. The Larmor frequency was significantly correlated to room temperature, as was image noise and contrast. Image distortions were less than 2.5 mm, with high robustness over time. Similar to studies at higher field, we found that changes in pulse sequence parameters from software updates had an impact on QC metrics. This study demonstrates that portable ULF-MRI systems can be deployed in a variety of environments for multi-center neuroimaging studies and produce robust results.

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来源期刊
Human Brain Mapping
Human Brain Mapping 医学-核医学
CiteScore
8.30
自引率
6.20%
发文量
401
审稿时长
3-6 weeks
期刊介绍: Human Brain Mapping publishes peer-reviewed basic, clinical, technical, and theoretical research in the interdisciplinary and rapidly expanding field of human brain mapping. The journal features research derived from non-invasive brain imaging modalities used to explore the spatial and temporal organization of the neural systems supporting human behavior. Imaging modalities of interest include positron emission tomography, event-related potentials, electro-and magnetoencephalography, magnetic resonance imaging, and single-photon emission tomography. Brain mapping research in both normal and clinical populations is encouraged. Article formats include Research Articles, Review Articles, Clinical Case Studies, and Technique, as well as Technological Developments, Theoretical Articles, and Synthetic Reviews. Technical advances, such as novel brain imaging methods, analyses for detecting or localizing neural activity, synergistic uses of multiple imaging modalities, and strategies for the design of behavioral paradigms and neural-systems modeling are of particular interest. The journal endorses the propagation of methodological standards and encourages database development in the field of human brain mapping.
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