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Updated: Sep 8, 2025

Diffusion Tensor Magnetic Resonance Imaging in the Analysis of Neurodegenerative Diseases
Published on: July 28, 2013
The role of low subcortical iron, white matter myelin, and oligodendrocytes in schizophrenia: a quantitative
Luke J Vano1,2,3,4, Robert A McCutcheon5,6,7, Jan Sedlacik8,9,10
1Department of Psychosis Studies, Institute of Psychiatry, Psychology & Neuroscience, King's College London, London, UK. luke.vano@kcl.ac.uk.
Abstract:
Iron-the most abundant magnetic brain substance-is essential for many biological processes, including dopamine and myelin synthesis. Quantitative susceptibility mapping (QSM) MRI has recently linked altered subcortical magnetic susceptibility (χ) to schizophrenia. Since χ is increased by iron and decreased by myelin, abnormal levels of either could underlie these QSM differences. In white matter tracts, magnetic susceptibility anisotropy (δχ) serves as a myelin-specific marker that is insensitive to iron content. To clarify the origin of case-control χ differences, we employed QSM in 85 individuals with schizophrenia, from first-episode mental health teams, and 86 healthy controls. A subset also underwent diffusion tensor imaging (DTI) to calculate subcortical tissue mean diffusivity, which inversely correlates with myelin concentration and fractional anisotropy. White matter δχ was calculated by combining QSM and DTI. Schizophrenia was associated with lower subcortical χ (d = -0.36, p = 0.023). This was significant in the caudate nucleus (d = -0.37, p = 0.037), putamen (d = -0.36, p = 0.037), globus pallidus (d = -0.57, p = 0.001), and SN-VTA (as previously reported). Additionally, schizophrenia was linked to higher subcortical mean diffusivity (d = 0.44, p = 0.018), and lower white matter δχ (d = -0.37, p = 0.047). These findings suggest that both subcortical iron and brain myelin levels are lower in schizophrenia. By comparing our voxelwise χ maps with postmortem gene expression data, we reveal that regions with lower subcortical χ in schizophrenia are enriched for oligodendrocyte-related genes (p < 0.001). As oligodendrocytes are both the most iron-rich brain cells and essential for myelin synthesis, our results implicate oligodendrocyte dysfunction in schizophrenia pathophysiology.
Insights
Schizophrenia is linked to lower brain iron and myelin levels, indicated by altered magnetic susceptibility. This suggests oligodendrocyte dysfunction plays a key role in the condition.
Area of Science:
- Neuroimaging
- Neuroscience
- Magnetic Resonance Imaging
Background:
- Iron is crucial for brain function, including dopamine and myelin synthesis.
- Quantitative susceptibility mapping (QSM) has shown altered magnetic susceptibility (χ) in schizophrenia.
- Distinguishing between iron and myelin contributions to QSM differences is challenging.
Purpose of the Study:
- To investigate the origins of altered subcortical magnetic susceptibility in schizophrenia.
- To differentiate between iron and myelin contributions to QSM findings.
- To explore the role of oligodendrocyte dysfunction in schizophrenia.
Main Methods:
- Employed QSM and diffusion tensor imaging (DTI) in individuals with schizophrenia and healthy controls.
- Calculated subcortical magnetic susceptibility (χ) and white matter magnetic susceptibility anisotropy (δχ).
- Combined QSM and DTI data to assess myelin-specific markers and mean diffusivity.
Main Results:
- Individuals with schizophrenia exhibited lower subcortical χ and higher mean diffusivity.
- Lower white matter δχ was observed in schizophrenia, indicating reduced myelin.
- Regions with lower χ in schizophrenia showed enrichment for oligodendrocyte-related genes.
Conclusions:
- Schizophrenia is associated with reduced subcortical iron and myelin levels.
- Findings implicate oligodendrocyte dysfunction in the pathophysiology of schizophrenia.
- QSM and DTI offer valuable insights into brain alterations in schizophrenia.
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