Clinical Quantitative Susceptibility Mapping (QSM): Biometal Imaging and Its Emerging Roles in Patient Care
Yi Wang,Yi Wang,Pascal Spincemaille,Zhe Liu,Zhe Liu,Alexey Dimov,Alexey Dimov,Kofi Deh,Jianqi Li,Yan Zhang,Yihao Yao,Yihao Yao,Kelly M. Gillen,Alan H. Wilman,Ajay Gupta,Apostolos John Tsiouris,Ilhami Kovanlikaya,Gloria C. Chiang,Jonathan W. Weinsaft,Lawrence Tanenbaum,Weiwei Chen,Wenzhen Zhu,Shixin Chang,Min Lou,Brian H. Kopell,Michael G. Kaplitt,David Devos,Toshinori Hirai,Xuemei Huang,Yukunori Korogi,Alexander Shtilbans,Alexander Shtilbans,Geon Ho Jahng,Daniel Pelletier,Susan A. Gauthier,David Pitt,Ashley I. Bush,Gary M. Brittenham,Martin R. Prince +38 more
TL;DR: This review aims to organize pertinent information for implementing a robust automated QSM technique in routine MRI practice and to summarize available knowledge on diseases for which QSM can be used to improve patient care.
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Abstract: Quantitative susceptibility mapping (QSM) has enabled magnetic resonance imaging (MRI) of tissue magnetic susceptibility to advance from simple qualitative detection of hypointense blooming artifacts to precise quantitative measurement of spatial biodistributions. QSM technology may be regarded to be sufficiently developed and validated to warrant wide dissemination for clinical applications of imaging isotropic susceptibility, which is dominated by metals in tissue, including iron and calcium. These biometals are highly regulated as vital participants in normal cellular biochemistry, and their dysregulations are manifested in a variety of pathologic processes. Therefore, QSM can be used to assess important tissue functions and disease. To facilitate QSM clinical translation, this review aims to organize pertinent information for implementing a robust automated QSM technique in routine MRI practice and to summarize available knowledge on diseases for which QSM can be used to improve patient care. In brief, QSM can be generated with postprocessing whenever gradient echo MRI is performed. QSM can be useful for diseases that involve neurodegeneration, inflammation, hemorrhage, abnormal oxygen consumption, substantial alterations in highly paramagnetic cellular iron, bone mineralization, or pathologic calcification; and for all disorders in which MRI diagnosis or surveillance requires contrast agent injection. Clinicians may consider integrating QSM into their routine imaging practices by including gradient echo sequences in all relevant MRI protocols.
Level of Evidence: 1
Technical Efficacy: Stage 5
J. Magn. Reson. Imaging 2017;46:951–971.
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Citations
Improved Quantitative Susceptibility Mapping under Laplace Algorithm in Diagnosis of Parkinson’s Disease
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Incorporating the effect of white matter microstructure in the estimation of magnetic susceptibility in ex-vivo mouse brain
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TL;DR: In this article , an extension to Quantitative Sensitivity Mapping (QSM) is presented to account for local white matter (WM) magnetic microstructure by using a previously presented model for solid cylinders with arbitrary orientations to describe axons in terms of concentric cylinders.
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TL;DR: In this article, a new strategy for neuroprotection based on chelation conservatrice du fer was proposed, utilising deferiprone and mis en place des essais cliniques actuellement.
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