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Assessing Cortical Cerebral Microinfarcts on High Resolution MR Images
Published on: November 20, 2015
Molecular Disorganization of Axons Adjacent to Human Cortical Microinfarcts
Hamza Coban1, Spencer Tung1, Bryan Yoo2
1Department of Pathology and Laboratory Medicine, Section of Neuropathology, David Geffen School of Medicine, University of California Los Angeles, Los Angeles, CA, United States.
Abstract:
Cortical microinfarcts (CMIs) are microscopically identified wedge-shaped ischemic lesions that occur at or near the cortical surface and result from occlusion of penetrating arterioles. These microscopic lesions can be observed with high-resolution magnetic resonance imaging in aging brains and in patients with cerebrovascular disease. Recent studies have suggested that strategically located microinfarcts strongly correlate with cognitive deficits, which can contribute to Alzheimer's disease as well as other forms of dementia. We have recently shown that the molecular organization of axons into functional microdomains is altered in areas adjacent to white matter lacunar and microinfarcts, creating a peri-infarct penumbral injury in surviving axons. Whether similar changes in nodal, adjacent paranodal, and proximal axon initial segment molecular organization occur in the cortex adjacent to human CMIs is not known. Paraffin-embedded sections of autopsy brain tissue from five patients with CMIs were immunofluorescently labeled for nodal and paranodal markers including beta-IV spectrin, ankyrin-G, and contactin-associated protein. High magnification images from the peri-infarct cortical tissue were generated using confocal microscopy. In surviving cortical tissue adjacent to microinfarcts, we observed a dramatic loss of axon initial segments, suggesting that neuronal firing capacity in adjacent cortical tissue is likely compromised. The number of identifiable nodal/paranodal complexes in surviving cortical tissue is reduced adjacent to microinfarcts, while the average paranodal length is increased indicating a breakdown of axoglial contact. This axonal microdomain disorganization occurs in the relative absence of changes in the structural integrity of myelinated axons as measured by myelin basic protein and neurofilament staining. These findings indicate that the molecular organization of surviving axons adjacent to human CMIs is abnormal, reflecting lost axoglial contact and the functional elements necessary for neural transmission. This study provides support for the concept of a microinfarct penumbral injury that may account for the cumulative cognitive effect of these tiny strokes.
Insights
Cortical microinfarcts damage surviving axons, disrupting neural transmission and potentially causing cognitive deficits. This study reveals abnormal axonal organization near these tiny strokes, supporting the concept of a microinfarct penumbral injury.
Area of Science:
- Neuroscience
- Neuropathology
- Cerebrovascular Disease
Background:
- Cortical microinfarcts (CMIs) are small ischemic lesions in the brain cortex.
- CMIs are linked to cognitive decline and dementia, including Alzheimer's disease.
- Previous research indicated axonal damage near white matter infarcts, but cortical CMI effects were unknown.
Purpose of the Study:
- To investigate axonal molecular organization in human cortical tissue adjacent to microinfarcts.
- To determine if nodal, paranodal, and axon initial segment structures are altered near CMIs.
Main Methods:
- Autopsy brain tissue from five CMI patients was analyzed.
- Immunofluorescence labeling used nodal and paranodal markers (beta-IV spectrin, ankyrin-G, contactin-associated protein).
- Confocal microscopy examined peri-infarct cortical tissue.
Main Results:
- Significant loss of axon initial segments was observed in surviving cortical tissue.
- Reduced nodal/paranodal complexes and increased paranodal length indicated disrupted axoglial contact.
- Axonal microdomain disorganization occurred without major changes in myelin or neurofilament integrity.
Conclusions:
- Surviving axons near human CMIs exhibit abnormal molecular organization.
- Lost axoglial contact and compromised neural transmission elements contribute to peri-infarct injury.
- Findings support the 'microinfarct penumbral injury' concept, explaining cognitive effects of CMIs.

