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Published on: May 19, 2015
The spectrum of age-associated brain abnormalities: their measurement and histopathological correlates
F Fazekas1, R Schmidt, R Kleinert
1Department of Neurology, Karl-Franzens University, Graz, Austria.
Abstract:
Magnetic resonance imaging (MRI) has dramatically increased our ability to detect morphological abnormalities in relation to aging of the brain. Among those changes are alterations of the white matter which display high signal intensity on both proton density and T2-weighted images. They may be seen in the deep and subcortical white matter or in a periventricular location. In clinically asymptomatic individuals the reported prevalence ranges from 20% to 60% for deep and subcortical white matter hyperintensities and from 15% to 94% for periventricular changes. Besides different characteristics of the populations examined these wide ranges are a consequence of quite diverse rating schemes and measurement approaches. Inadequate grading of MRI hyperintensities may also explain some of the inconsistencies in the reported associations of white matter damage with cerebrovascular risk factors or cognitive functions. Therefore development of a commonly accepted rating scheme would be desirable. Histopathologic observations could lay the basis. Hyperintense periventricular capping of the frontal horns and a smooth halo of periventricular hyperintensity have been linked to disruption of the ependymal lining, subependymal gliosis and concomitant loss of myelin. Punctate lesions in the deep and subcortical white matter corresponded to minor perivascular reduction in myelin content possibly because of a lower permeability of thickened arteriolar walls. Larger patchy and confluent hyperintensities, however, appear to indicate more extensive ischemic damage consistent with advanced microangiopathy. In parallel, newer MRI techniques may also contribute to the delineation and separation of these various types of tissue alteration.
Insights
Brain aging involves white matter changes visible on MRI. Standardized rating schemes are needed to accurately assess these hyperintensities and their link to cognitive function and risk factors.
Area of Science:
- Neurology
- Radiology
- Neuroimaging
Background:
- Magnetic resonance imaging (MRI) reveals brain aging changes, particularly white matter hyperintensities.
- These hyperintensities appear in deep, subcortical, or periventricular locations, with prevalence varying widely in asymptomatic individuals.
- Current inconsistencies in prevalence and associations stem from diverse rating schemes and measurement approaches.
Purpose of the Study:
- To highlight the need for a standardized rating scheme for white matter hyperintensities observed on MRI.
- To correlate histopathologic findings with MRI characteristics of white matter damage.
- To explore the role of advanced MRI techniques in characterizing these alterations.
Main Methods:
- Review of MRI findings in aging brains, focusing on white matter hyperintensities.
- Correlation of MRI signal changes with histopathologic observations.
- Discussion of newer MRI techniques for tissue alteration delineation.
Main Results:
- Periventricular hyperintensities linked to ependymal lining disruption, gliosis, and myelin loss.
- Punctate deep white matter lesions associated with minor perivascular myelin reduction.
- Larger confluent lesions suggest significant ischemic damage and microangiopathy.
Conclusions:
- Standardized MRI rating schemes are crucial for consistent assessment of white matter changes in aging.
- Histopathology provides insights into the underlying causes of different MRI hyperintensity patterns.
- Advanced MRI techniques may improve the characterization of age-related white matter alterations.
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