Eddy current‐induced artifact correction in high b‐value ex vivo human brain diffusion MRI with dynamic field monitoring

Author:

Ramos‐Llordén Gabriel1ORCID,Park Daniel J.1,Kirsch John E.1,Scholz Alina2ORCID,Keil Boris23ORCID,Maffei Chiara14,Lee Hong‐Hsi1ORCID,Bilgic Berkin1ORCID,Edlow Brian L.14,Mekkaoui Choukri1,Yendiki Anastasia1,Witzel Thomas5,Huang Susie Y.16ORCID

Affiliation:

1. Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital and Harvard Medical School Charlestown Massachusetts USA

2. Institute of Medical Physics and Radiation Protection Mittelhessen University of Applied Sciences Giessen Germany

3. Department of Diagnostic and Interventional Radiology University Hospital Marburg, Philipps University of Marburg Marburg Germany

4. Center for Neurotechnology and Neurorecovery, Department of Neurology Massachusetts General Hospital Boston Massachusetts USA

5. Q Bio Inc San Carlos California USA

6. Harvard‐MIT Division of Health Sciences and Technology, Massachusetts Institute of Technology Cambridge Massachusetts USA

Abstract

AbstractPurposeTo investigate whether spatiotemporal magnetic field monitoring can correct pronounced eddy current‐induced artifacts incurred by strong diffusion‐sensitizing gradients up to 300 mT/m used in high b‐value diffusion‐weighted (DW) EPI.MethodsA dynamic field camera equipped with 16 1H NMR field probes was first used to characterize field perturbations caused by residual eddy currents from diffusion gradients waveforms in a 3D multi‐shot EPI sequence on a 3T Connectom scanner for different gradient strengths (up to 300 mT/m), diffusion directions, and shots. The efficacy of dynamic field monitoring‐based image reconstruction was demonstrated on high‐gradient strength, submillimeter resolution whole‐brain ex vivo diffusion MRI. A 3D multi‐shot image reconstruction framework was developed that incorporated the nonlinear phase evolution measured with the dynamic field camera.ResultsPhase perturbations in the readout induced by residual eddy currents from strong diffusion gradients are highly nonlinear in space and time, vary among diffusion directions, and interfere significantly with the image encoding gradients, changing the k‐space trajectory. During the readout, phase modulations between odd and even EPI echoes become non‐static and diffusion encoding direction‐dependent. Superior reduction of ghosting and geometric distortion was achieved with dynamic field monitoring compared to ghosting reduction approaches such as navigator‐ and structured low‐rank‐based methods or MUSE followed by image‐based distortion correction with the FSL tool “eddy.”ConclusionStrong eddy current artifacts characteristic of high‐gradient strength DW‐EPI can be well corrected with dynamic field monitoring‐based image reconstruction.

Funder

James S. McDonnell Foundation

National Institutes of Health

U.S. Department of Defense

Publisher

Wiley

Subject

Radiology, Nuclear Medicine and imaging

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