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Restricted Effect of Cerebral Microbleeds on Regional Magnetic Susceptibility
Amir Fazlollahi1, Parnesh Raniga1, Pierrick Bourgeat1
1CSIRO Health and Biosecurity, Brisbane, Australia.
Background:
Cortical iron accumulation has been reported as a pathological feature of Alzheimer's disease (AD). The cause of cortical iron elevation in AD is unknown but may be contributed by hemosiderin deposits in cerebral microbleeds that frequently occur in this disease.
Objective:
To investigate the impact of cerebral microbleeds (which are more frequent in AD) on the magnetic susceptibility of the surrounding brain tissue.
Methods:
32 MRI scans from the Australian Imaging, Biomarker and Lifestyle (AIBL) study were found to have cerebral microbleeds by manual assessment of susceptibility weighted images. Quantitative susceptibility mapping (QSM; an MRI technique that is sensitive to iron) was used to estimate iron content in the tissue surrounding the microbleed in four concentric radii. Furthermore, the mirror regions on the contralateral hemisphere were also demarcated. A simulation analysis was conducted to investigate the effect of QSM imaging on cerebral microbleeds with varying sizes.
Results:
77 microbleeds were identified from the available scans. The immediate proximal region to the cerebral microbleeds had enhanced tissue susceptibility (∼0.02 PPM), but importantly, this did not extend beyond one voxel radius. This finding with in vivo data was also replicated in a simulation study. However, the presence of microbleeds could lead to over-estimation of tissue QSM in unsupervised quantification, therefore processing methods to avoid this artefact without the need for their manual identification are proposed.
Conclusion:
The local changes in susceptibility due to microbleeds outside the focal lesion are restricted to 1 voxel and may be explained by partial voluming artefacts caused by limited imaging resolution. The susceptibly change induced by the microbleed is a relatively small proportion of tissue and could not account for regional iron changes observed in AD cortex.
Insights
Cerebral microbleeds in Alzheimer's disease (AD) cause minimal local magnetic susceptibility changes, not explaining overall cortical iron elevation. New methods are proposed to avoid over-estimation in quantitative susceptibility mapping (QSM).
Area of Science:
- Neuroimaging
- Biomarkers
- Neurodegeneration
Background:
- Cortical iron accumulation is a known hallmark of Alzheimer's disease (AD).
- Cerebral microbleeds are more frequent in AD and may contribute to iron deposition.
Purpose of the Study:
- To investigate the impact of cerebral microbleeds on surrounding brain tissue's magnetic susceptibility.
- To assess if microbleeds explain iron elevation in AD cortex.
Main Methods:
- Quantitative susceptibility mapping (QSM) was used on 32 MRI scans from the Australian Imaging, Biomarker and Lifestyle (AIBL) study.
- Iron content around 77 identified microbleeds was estimated, and simulations were performed.
Main Results:
- Enhanced tissue susceptibility was observed immediately around microbleeds (1 voxel radius).
- This local effect did not account for the broader cortical iron changes seen in AD.
- Microbleeds can cause QSM over-estimation, necessitating artifact-avoiding processing methods.
Conclusions:
- Local susceptibility changes from microbleeds are limited and likely due to imaging resolution.
- Microbleeds alone do not explain the significant regional iron changes observed in Alzheimer's disease cortex.
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