Is correction for gradient nonlinearity necessary in a brain diffusion tensor MRI clinical study?

P Praitayini Kanakaraj T Tianyuan Yao Z Zhiyuan Li N Nancy R. Newlin M Michael E. Kim C Chenyu Gao T Tian Yu A Aravind Krishnan B Baxter P. Rogers T Tim Hohman A Angela L. Jefferson N Niranjana Shashikumar K Kimberly R. Pechman L L. Taylor Davis D Daniel Moyer K Kurt G. Schilling D Derek Archer A Adam Anderson B Bennett A. Landman

Abstract

Nonlinear gradients alter the diffusion encoding in brain diffusion tensor imaging (DTI), leading to spatially varying diffusion weighting which bias quantitative measures if uncorrected. Although the overall effects of gradient nonlinearity correction in brain studies are typically minimal and often fall below the detection limits of traditional imaging resolutions and sensitivities, their cumulative impact on clinical outcomes requires further study. This study investigates the significance and effects of correcting gradient nonlinearity in DW-MRI, focusing on the microstructural and macrostructural changes in white matter (WM) and gray matter (GM) across a clinical cohort. Our primary aim is to clarify whether the observed nonlinearity significantly alters the interpretation of aging in clinical settings, particularly in studies comparing healthy individuals to those with neurological conditions. We assess the extent of nonlinear fields impact on individual scans, interscanner observations, and a tract-based analysis. Using data from the Vanderbilt Memory & Aging Project (n = 948 imaging sessions, 933 on Scanner B and 15 on Scanner A acquired with single-shell diffusion tensor imaging protocol), we find 1%, 3.3%, and 5-degree changes in microstructure measures, fractional anisotropy (FA), mean diffusivity (MD), and primary eigen vector (V1) respectively, affecting at least 20% of the brain. Across sessions, head positioning sampled typical clinical variability, with head offsets of approximately 0–10 mm and rotations of 0–10° relative to magnet isocenter. Subcortical regions in the superior regions, occipital lobules, and parietal lobules exhibit relatively higher impacts. Macrostructural measures show changes up to 12% after nonlinear field correction. GNL effects are 5% and 0.33% of FA and MD changes between mild cognitive impairment and controls. A simple power analysis indicates that these subtle effects of gradient nonlinearity correction can become statistically detectable in larger multi-site studies exceeding ~1000 subjects, suggesting that GNL should be considered and, where possible, corrected or at least quantified in such settings.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 21, Issue 7
Published July 06, 2026
Pages e0350808
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (19)

P

Praitayini Kanakaraj

T

Tianyuan Yao

Z

Zhiyuan Li

N

Nancy R. Newlin

M

Michael E. Kim

C

Chenyu Gao

T

Tian Yu

A

Aravind Krishnan

B

Baxter P. Rogers

T

Tim Hohman

A

Angela L. Jefferson

N

Niranjana Shashikumar

K

Kimberly R. Pechman

L

L. Taylor Davis

D

Daniel Moyer

K

Kurt G. Schilling

D

Derek Archer

A

Adam Anderson

B

Bennett A. Landman