Steady-state free precession for T2* relaxometry: all echoes in every readout with k-space aliasing
Author(s)
Type
Journal Article
Abstract
Purpose
Multi-echo gradient echo imaging is useful for a range of applications including relaxometry, susceptibility mapping, and quantifying relative proportions of fat and water. This relies primarily on long-TR multi-echo gradient echo sequences (FLASH), which by design isolate one signal component (i.e., echo) at a time per readout. In this work, we propose an alternative strategy that simultaneously measures all signal components at once in every readout event with an N-periodic SSFP sequence. Essentially, we Fourier encode the signals into an “F-k space” similar to the “TE-k space” of a multi-echo gradient echo acquisition. This enables an efficient, short-TR relaxometry experiment where signals benefit from averaging effects over multiple excitations.
Theory and Methods
In the presented approach, multiple echoes are recorded simultaneously and separated by their differing phase evolution over multiple TRs. At low flip angles the relative echo amplitudes and phases are equivalent to those acquired sequentially from a multi-echo FLASH, in terms of both T2* weighting and spatial phase distributions. The two approaches were compared for the example of R2* relaxometry in a phantom and in human volunteers.
Results
The proposed approach shows close agreement in R2* estimation with multi-echo FLASH, with the advantage of more rapid temporal sampling.
Conclusion
The proposed approach is a promising alternative to other relaxometry approaches, by measuring signals from multiple echo pathways simultaneously and separating them based on a simple analytical model.
Multi-echo gradient echo imaging is useful for a range of applications including relaxometry, susceptibility mapping, and quantifying relative proportions of fat and water. This relies primarily on long-TR multi-echo gradient echo sequences (FLASH), which by design isolate one signal component (i.e., echo) at a time per readout. In this work, we propose an alternative strategy that simultaneously measures all signal components at once in every readout event with an N-periodic SSFP sequence. Essentially, we Fourier encode the signals into an “F-k space” similar to the “TE-k space” of a multi-echo gradient echo acquisition. This enables an efficient, short-TR relaxometry experiment where signals benefit from averaging effects over multiple excitations.
Theory and Methods
In the presented approach, multiple echoes are recorded simultaneously and separated by their differing phase evolution over multiple TRs. At low flip angles the relative echo amplitudes and phases are equivalent to those acquired sequentially from a multi-echo FLASH, in terms of both T2* weighting and spatial phase distributions. The two approaches were compared for the example of R2* relaxometry in a phantom and in human volunteers.
Results
The proposed approach shows close agreement in R2* estimation with multi-echo FLASH, with the advantage of more rapid temporal sampling.
Conclusion
The proposed approach is a promising alternative to other relaxometry approaches, by measuring signals from multiple echo pathways simultaneously and separating them based on a simple analytical model.
Date Issued
2025-10-01
Date Acceptance
2025-05-11
Citation
Magnetic Resonance in Medicine, 2025, 94 (4), pp.1563-1576
ISSN
0740-3194
Publisher
Wiley
Start Page
1563
End Page
1576
Journal / Book Title
Magnetic Resonance in Medicine
Volume
94
Issue
4
Copyright Statement
© 2025 The Author(s). Magnetic Resonance in Medicine published by Wiley Periodicals LLC on behalf of International Society for Magnetic Resonance in Medicine. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
License URL
Identifier
10.1002/mrm.30590
Publication Status
Published
Date Publish Online
2025-06-02