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Exploring Deep Space - Uncovering the Anatomy of Periventricular Structures to Reveal the Lateral Ventricles of the Human Brain
Published on: October 22, 2017
The structure of the perivascular compartment in the old canine brain: a case study
Theodore P Criswell1, Matthew MacGregor Sharp1, Howard Dobson2,3,4
1Faculty Of Medicine, Institute for Life Sciences, University of Southampton, Southampton General Hospital, South Academic Block, MP806, Tremona Road, Southampton, Hampshire SO16 6YD.
Abstract:
Dilatation of periarteriolar spaces in MRI of the ageing human brains occurs in white matter (WM), basal ganglia and midbrain but not in cerebral cortex. Perivenous collagenous occurs in periventricular but not in subcortical WM.Here we test the hypotheses that (a) the capacity for dilatation of periarteriolar spaces correlates with the anatomical distribution of leptomeningeal cells coating intracerebral arteries and (b) the regional development of perivenous collagenous in the WM correlates with the population of intramural cells in the walls of veins.The anatomical distribution of leptomeningeal and intramural cells related to cerebral blood vessels is best documented by electron microscopy, requiring perfusion-fixed tissue not available in human material. We therefore analysed perfusion-fixed brain from a 12-year-old Beagle dog as the canine brain represents the anatomical arrangement in the human brain. Results showed regional variation in the arrangement of leptomeningeal cells around blood vessels. Arterioles are enveloped by one complete layer of leptomeninges often with a second incomplete layer in the WM. Venules showed incomplete layers of leptomeningeal cells. Intramural cell expression was higher in the post-capillary venules of the subcortical WM when compared with periventricular WM, suggesting that periventricular collagenosis around venules may be due to a lower resistance in the venular walls. It appears that the regional variation in the capacity for dilatation of arteriolar perivascular spaces in the white WM may be related to the number of perivascular leptomeningeal cells surrounding vessels in different areas of the brain.
Insights
Ageing brains show dilated perivascular spaces in white matter, linked to leptomeningeal cells. Perivenous collagenous development in white matter correlates with intramural cell populations in veins.
Area of Science:
- Neuroscience
- Cerebrovascular Biology
- Aging Research
Background:
- Dilatation of periarteriolar spaces is observed in the aging human brain's white matter, basal ganglia, and midbrain.
- Perivenous collagenous is present in periventricular but not subcortical white matter.
Purpose of the Study:
- To investigate the correlation between periarteriolar space dilatation and leptomeningeal cell distribution.
- To examine the relationship between regional perivenous collagenous development and intramural cell populations in cerebral veins.
Main Methods:
- Analysis of perfusion-fixed canine brain tissue, chosen for its anatomical similarity to human brain vasculature.
- Electron microscopy to document the distribution of leptomeningeal and intramural cells around cerebral blood vessels.
Main Results:
- Regional variations in leptomeningeal cell arrangement around blood vessels were observed.
- Arterioles in white matter showed varying layers of leptomeninges, while venules had incomplete layers.
- Higher intramural cell expression was found in subcortical white matter venules compared to periventricular ones.
Conclusions:
- The capacity for arteriolar perivascular space dilatation in white matter may be associated with the number of surrounding perivascular leptomeningeal cells.
- Periventricular collagenosis around venules might result from lower resistance in venular walls.
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