» Articles » PMID: 30593904

Maximising BOLD Sensitivity Through Automated EPI Protocol Optimisation

Overview
Journal Neuroimage
Specialty Radiology
Date 2018 Dec 30
PMID 30593904
Citations 10
Authors
Affiliations
Soon will be listed here.
Abstract

Gradient echo echo-planar imaging (GE EPI) is used for most fMRI studies but can suffer substantially from image distortions and BOLD sensitivity (BS) loss due to susceptibility-induced magnetic field inhomogeneities. While there are various post-processing methods for correcting image distortions, signal dropouts cannot be recovered and therefore need to be addressed at the data acquisition stage. Common approaches for reducing susceptibility-related BS loss in selected brain areas are: z-shimming, inverting the phase encoding (PE) gradient polarity, optimizing the slice tilt and increasing spatial resolution. The optimization of these parameters can be based on atlases derived from multiple echo-planar imaging (EPI) acquisitions. However, this requires resource and time, which imposes a practical limitation on the range over which parameters can be optimised meaning that the chosen settings may still be sub-optimal. To address this issue, we have developed an automated method that can be used to optimize across a large parameter space. It is based on numerical signal simulations of the BS loss predicted by physical models informed by a large database of magnetic field (B) maps acquired on a broad cohort of participants. The advantage of our simulation-based approach compared to previous methods is that it saves time and expensive measurements and allows for optimizing EPI protocols by incorporating a broad range of factors, including different resolutions, echo times or slice orientations. To verify the numerical optimisation, results are compared to those from an earlier study and to experimental BS measurements carried out in six healthy volunteers.

Citing Articles

Functional specialization of medial and lateral orbitofrontal cortex in inferential decision-making.

Qiu L, Qiu Y, Liao J, Li J, Zhang X, Chen K iScience. 2024; 27(6):110007.

PMID: 38868183 PMC: 11167445. DOI: 10.1016/j.isci.2024.110007.


Forming cognitive maps for abstract spaces: the roles of the human hippocampus and orbitofrontal cortex.

Qiu Y, Li H, Liao J, Chen K, Wu X, Liu B Commun Biol. 2024; 7(1):517.

PMID: 38693344 PMC: 11063219. DOI: 10.1038/s42003-024-06214-5.


Mitigating susceptibility-induced distortions in high-resolution 3DEPI fMRI at 7T.

Malekian V, Graedel N, Hickling A, Aghaeifar A, Dymerska B, Corbin N Neuroimage. 2023; 279:120294.

PMID: 37517572 PMC: 10951962. DOI: 10.1016/j.neuroimage.2023.120294.


Frequency dependent emotion differentiation and directional coupling in amygdala, orbitofrontal and medial prefrontal cortex network with intracranial recordings.

Sonkusare S, Qiong D, Zhao Y, Liu W, Yang R, Mandali A Mol Psychiatry. 2022; 28(4):1636-1646.

PMID: 36460724 PMC: 10208964. DOI: 10.1038/s41380-022-01883-2.


Automated slice-specific z-shimming for functional magnetic resonance imaging of the human spinal cord.

Kaptan M, Vannesjo S, Mildner T, Horn U, Hartley-Davies R, Oliva V Hum Brain Mapp. 2022; 43(18):5389-5407.

PMID: 35938527 PMC: 9704784. DOI: 10.1002/hbm.26018.


References
1.
Todd N, Moeller S, Auerbach E, Yacoub E, Flandin G, Weiskopf N . Evaluation of 2D multiband EPI imaging for high-resolution, whole-brain, task-based fMRI studies at 3T: Sensitivity and slice leakage artifacts. Neuroimage. 2015; 124(Pt A):32-42. PMC: 4655914. DOI: 10.1016/j.neuroimage.2015.08.056. View

2.
Hutton C, Josephs O, Stadler J, Featherstone E, Reid A, Speck O . The impact of physiological noise correction on fMRI at 7 T. Neuroimage. 2011; 57(1):101-112. PMC: 3115139. DOI: 10.1016/j.neuroimage.2011.04.018. View

3.
Sutton B, Noll D, Fessler J . Dynamic field map estimation using a spiral-in/spiral-out acquisition. Magn Reson Med. 2004; 51(6):1194-204. DOI: 10.1002/mrm.20079. View

4.
Domsch S, Zapp J, Schad L, Nees F, Hill H, Hermann D . Optimized protocol for high resolution functional magnetic resonance imaging at 3T using single-shot echo planar imaging. J Neurosci Methods. 2014; 239:170-82. DOI: 10.1016/j.jneumeth.2014.10.014. View

5.
Yip C, Yoon D, Olafsson V, Lee S, Grissom W, Fessler J . Spectral-spatial pulse design for through-plane phase precompensatory slice selection in T2*-weighted functional MRI. Magn Reson Med. 2009; 61(5):1137-47. PMC: 2856348. DOI: 10.1002/mrm.21938. View