False cerebral activation on BOLD functional MR images: study of low-amplitude motion weakly correlated to stimulus

A S Field1, Y F Yen, J H Burdette

  • 1Division of Radiologic Sciences, Wake Forest University School of Medicine, Winston-Salem, NC 27157-1022, USA.

Abstract

Insights

Even minimal head motion (<1 mm) during functional MRI can create false activation signals. These subtle movements, when correlated with stimuli, can mimic real brain activity, impacting study results.

Area of Science:

  • Neuroimaging
  • Medical Physics
  • Biomedical Engineering

Background:

  • Participant motion during functional MRI (fMRI) can cause false activation signals.
  • Large movements (>3 mm) are known to cause artifacts, but the effect of minimal movements is less understood.

Purpose of the Study:

  • To investigate if minimal (<1 mm) and weakly correlated movements can produce false activation artifacts in fMRI.
  • To determine if these artifacts can mimic true activation in size, location, and statistical significance.

Main Methods:

  • A life-size brain phantom with embedded vials was imaged at 1.5 T.
  • Controlled submillimeter phantom movements were generated and correlated with a boxcar stimulus (0.31 < r < 0.96).
  • Standard statistical methods (SPM96) were used to identify false activation regions, excluding phantom edges and correcting for multiple comparisons.

Main Results:

  • Submillimeter movements correlated with stimuli (r > 0.67) consistently produced false activation artifacts.
  • At P = .001, median false activation regions numbered 3.5 with a mean size of 71.7 voxels (approx. 5 cc).
  • Similar artifacts were observed in a resting volunteer, indicating potential real-world impact.

Conclusions:

  • Participant movements of 1 mm or less, modestly correlated with stimuli, can generate significant false activation artifacts in BOLD fMRI.
  • These artifacts can occur even with strict image realignment techniques.
  • Researchers must be cautious of subtle motion artifacts in fMRI studies.