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Published on: August 28, 2018
Arterial Calcification Alters Lumen Surface Roughness of Branches of the Circle of Willis
Justin Weiner1, Michael Akhavan1, Michelle Raja1
1NYIT College of Osteopathic Medicine, Old Westbury, New York, USA.
Insights
Arterial calcification significantly increases surface roughness in carotid and cerebral vessels, impacting blood flow dynamics. This finding offers new insights into atherosclerosis and neurodegenerative diseases like Alzheimer's.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Cardiovascular Research
Background:
- Atherosclerosis in carotid and cerebral vessels affects hemodynamics, potentially leading to Alzheimer's Disease and stroke.
- Vessel lumen topography, including surface roughness, influences wall shear stress and vortex formation.
Purpose of the Study:
- To quantitatively assess the surface metrology of carotid and cerebral arteries.
- To investigate the relationship between surface roughness, calcification, vessel size, and location.
Main Methods:
- Collected carotid and Circle of Willis artery samples from 10 human donors.
- Quantified arterial calcification using Alizarin red staining and image analysis.
- Analyzed arterial surface metrology and scale-sensitive fractal analyses (SSFA) using 3D optical profilometry.
Main Results:
- Vessel calcification percentage was significantly correlated with increased surface roughness.
- Larger diameter vessels showed greater surface roughness.
- No significant differences in SSFA were found based on vessel identity, individual, age, sex, or cause of death.
Conclusions:
- Arterial calcification plays a crucial role in altering hemodynamics within intracranial vessels.
- Findings suggest calcification impacts vortex formation and wall shear stress, similar to coronary arteries.
- Further research can elucidate the pathophysiology of intracranial atherosclerosis and its role in neurodegenerative disorders.
Abstract:
Atherosclerotic lesions within carotid and cerebral vessels are likely to influence hemodynamics and manifest into vascular pathologies, including Alzheimer's Disease and ischemic stroke. Hemodynamics are influenced by changes in luminal diameter of vessels and wall shear stress derived from vortex formation which directly relates to the surface topography of the lumen. In this study, we performed a quantitative assessment of surface metrology of carotid and cerebral arteries in relation to calcification, vessel size and location among individuals. We speculate intracranial vessels will follow suit of extracranial vessels, with increased surface roughness in larger-diameter vessels. Samples of the internal carotid, common carotid, and multiple branches of the Circle of Willis were collected at 18 different sites from 10 human whole body donors. For each vessel, arterial calcification was quantified from image analyses of Alizarin red stained histological sections. The arterial surface metrology of the adjacent parts of the same segments was opened and gently cleaned, and then analyzed using a Sensofar S Neox 3D optical profiler, from which scale-sensitive fractal analyses (SSFA) were analyzed using SensoMap software. ANOVAs testing for the influence of calcification percentage, vessel identity, vessel size, individual differences, age, sex, and the role of cardiovascular disease in the donor's cause of death found no significant differences in SSFA variables for vessel identity, individuals, age, sex, and cause of death. The most significant differences are correlated with vessel calcification percentage, though surface roughness appears also greater in the larger vessels. These findings support ideas that calcification plays a role in alterations of vortex formation and wall shear stresses in intracranial vessels as they do in coronaries. With further research in this field, the pathophysiology of intracranial atherosclerosis and the role of atherosclerosis in neurodegenerative disorders might be understood at another, more granular level.
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