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Updated: Nov 23, 2025

Whole-brain Segmentation and Change-point Analysis of Anatomical Brain MRI—Application in Premanifest Huntington's Disease
Published on: June 9, 2018
Pathological characterization of T2*-weighted MRI contrast in the striatum of Huntington's disease patients
Marjolein Bulk1, Ingrid Hegeman-Kleinn2, Boyd Kenkhuis1
1Department of Radiology, Leiden University Medical Center, Leiden, the Netherlands; Department of Human Genetics, Leiden University Medical Center, Leiden, the Netherlands.
Abstract:
Previous MRI studies consistently reported iron accumulation within the striatum of patients with Huntington's disease (HD). However, the pattern and origin of iron accumulation is poorly understood. This study aimed to characterize the histopathological correlates of iron-sensitive ex vivo MRI contrast change in HD brains. To this end, T2*-weighted 7T MRI was performed on postmortem tissue of the striatum of three control subjects and 10 HD patients followed by histological examination. In addition, formalin-fixed paraffin-embedded material of three control subjects and 14 HD patients was selected for only histology to identify the cellular localization of iron using stainings for iron, myelin, microglia and astrocytes. As expected HD striata showed prominent atrophy. Compared to controls, the striatum of HD patients was in general more hypointense on T2*-weighted high-field MRI and showed a more intense histopathological staining for iron. In addition, T2*-weighted MRI identified large focal hypointensities within the striatum of HD patients. Upon histological examination, these large focal hypointensities frequently colocalized with enlarged perivascular spaces and iron was found within the vessel wall and reactive astrocytes. In conclusion, we show that the striatum of HD patients has a distinctive phenotype on T2*-weighted MRI compared to control subjects. On ex vivo MRI, these contrast changes are heavily biased by enlarged perivascular spaces from which it is currently unknown whether this is a fixation artefact or a disease specific observation. Clinically, the observation of iron within reactive astrocytes is of importance for the interpretation and understanding of the potential underlying mechanisms of T2*-weighted MRI results in HD patients.
Insights
Huntington's disease (HD) brains show increased iron in the striatum, visible on MRI. This iron accumulation is linked to enlarged perivascular spaces and reactive astrocytes, offering insights into MRI findings in HD patients.
Area of Science:
- Neuroimaging
- Neuropathology
- Neurodegenerative Diseases
Background:
- Iron accumulation in the striatum is a known feature of Huntington's disease (HD).
- The precise pattern and cellular origin of this iron accumulation remain poorly understood.
- Understanding these correlates is crucial for interpreting MRI findings in HD.
Purpose of the Study:
- To characterize the histopathological basis of iron-sensitive MRI contrast changes in the striatum of HD brains.
- To investigate the cellular localization of iron in HD striata.
- To correlate ex vivo MRI findings with histological observations.
Main Methods:
- High-field (7T) T2*-weighted MRI was performed on postmortem striatal tissue from control subjects and HD patients.
- Histological examination included stainings for iron, myelin, microglia, and astrocytes.
- Formalin-fixed paraffin-embedded tissues were used for cellular iron localization.
Main Results:
- HD striata exhibited atrophy and were more hypointense on T2*-weighted MRI compared to controls.
- Histopathology confirmed increased iron staining in HD striata.
- Focal MRI hypointensities in HD correlated with enlarged perivascular spaces, iron in vessel walls, and reactive astrocytes.
Conclusions:
- The striatum of HD patients displays a distinct T2*-weighted MRI phenotype.
- Ex vivo MRI contrast changes are influenced by enlarged perivascular spaces, whose origin (artefact vs. disease-specific) requires further investigation.
- Iron presence in reactive astrocytes is significant for understanding HD MRI signal alterations.

