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Updated: Jun 3, 2026

Assessment and Communication for People with Disorders of Consciousness
Published on: August 1, 2017
Quality Assurance Strategies for Brain State Characterization by MEMRI
Taylor W Uselman1, Russell E Jacobs2,3, Elaine L Bearer1,3
1University of New Mexico, School of Medicine, Albuquerque, NM.
Background:
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful approach for mapping brain-wide neural activity and axonal projections in vivo. Yet standardized computational frameworks for voxel-wise and atlas-based characterization of brain states across large experimental cohorts remain limited.
New Method:
Here, we present methodological advances for preprocessing and statistical analysis of MEMRI datasets to support scalable, reproducible cohort-level analyses. Quality assurance metrics were developed to evaluate images, cohort-level anatomical alignment, and intensity normalization. Using simulated data, we optimized smoothing, effect-size, and cluster-size thresholds to balance sensitivity and specificity in voxel-wise statistical mapping. We developed 'InVivoSegment' software to apply to our new InVivo Atlas for segmentation of MEMRI data and interpretation of brain-wide activity.
Results:
Quality assurance analyses established benchmarks for Mn(II)-induced signal- and contrast-to-noise evaluation, precise cohort-level alignment at 100 μm isotropic resolution, and robust intensity normalization. Balanced accuracy and Youden's J statistics were calculated from simulated true positive and noise-only intensities, which defined optimal parameters for smoothing kernel, cluster-size and effect-size thresholds during voxel-wise mapping. Segmentation of simulated data demonstrated reliable transformation of voxel-wise results into regional summaries and identified secondary thresholds that minimize noise-driven artifacts.
Comparison With Existing Methods:
Approach to optimize correction parameters for statistical mapping using simulated images improves voxel- and segment-wise sensitivity compared to FDR/FWE-based correction procedures.
Conclusions:
These methodological advances enable scalable, reproducible, brain-wide quantification of longitudinal changes in MEMRI studies, strengthen mechanistic investigation of brain-state dynamics relevant to human health, and provide broadly applicable tools for neuroimaging analyses beyond MEMRI applications.

