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Updated: Aug 11, 2025

Quantitative Analysis of Cellular Composition in Advanced Atherosclerotic Lesions of Smooth Muscle Cell Lineage-Tracing Mice
Published on: February 20, 2019
Pathophysiology, cellular and molecular mechanisms of large and small vessel diseases
Joyce Koueik1, Umadevi V Wesley1, Robert J Dempsey1
1Department of Neurological Surgery, School of Medicine and Public Health, University of Wisconsin, Madison, WI, 53792, USA.
Insights
Cerebrovascular disease (CVD), affecting large and small brain vessels, is a major cause of cognitive decline and dementia in older adults. Understanding its mechanisms, including inflammation and genetics, is key to improving patient outcomes.
Area of Science:
- Neurology
- Vascular Biology
- Geriatrics
Background:
- Cerebrovascular disease (CVD) is the second leading cause of cognitive impairment and dementia in the elderly.
- Vascular cognitive decline associated with CVD is under-recognized, impacting millions.
- CVD involves both large vessel diseases (LVD) and small vessel diseases (SVD), each with distinct pathologies and consequences.
Purpose of the Study:
- To review the relationship between large and small vessel diseases and vascular cognitive decline.
- To emphasize the molecular and cellular mechanisms underlying CVD.
- To explore genetic and epigenetic factors contributing to LVD and SVD.
Main Methods:
- Literature review focusing on cerebrovascular disease, cognitive decline, and neurodegeneration.
- Analysis of cellular and molecular mechanisms, including inflammatory processes.
- Examination of genetic and epigenetic influences on large and small vessel diseases.
Main Results:
- LVD is linked to atherosclerosis, embolism, and stroke, causing significant disability.
- SVD is critically involved in stroke, hemorrhage, and cognitive and functional loss in the elderly.
- Inflammatory vascular changes play a role in central nervous system pathology and cognitive decline.
Conclusions:
- Advances in understanding CVD pathophysiology and therapeutics are crucial for improving outcomes.
- Targeting molecular and cellular mechanisms, including inflammation, may mitigate cognitive decline.
- Genetic and epigenetic factors warrant further investigation in the context of LVD and SVD.
Abstract:
Cerebrovascular disease (CVD) is the second most common cause of cognitive impairment and dementia in aged population. CVD presents in a myriad number of clinical ways based on the functional location of pathology. While primary clinical emphasis has been placed on motor, speech and visual deficits, vascular cognitive decline is a vastly under recognized and devastating condition afflicting millions of Americans. CVD, a disease of the blood vessels that supply blood to brain involves an integration between small and large vessels. Cerebral large vessel diseases (LVD) are associated with atherosclerosis, artery-to-artery embolism, intracardiac embolism and a large vessel stroke leading to substantial functional disability. Cerebral small vessel disease (SVD) is critically involved in stroke, brain hemorrhages, cognitive decline and functional loss in elderly patients. An evolving understanding of cellular and molecular mechanisms emphasizes that inflammatory vascular changes contribute to systemic pathologic conditions of the central nervous systems (CNS), with specific clinical presentations including, cognitive decline. Advances in an understanding of pathophysiology of disease processes and therapeutic interventions may help improve outcomes. This review will focus on large and small vessels diseases and their relationship to vascular cognitive decline, atherosclerosis, stroke, and inflammatory neurodegeneration. We will also emphasize the molecular and cellular mechanisms, as well as genetic and epigenetic factors associated with LVD and SVD.
Related Concept Videos
Coronary Artery Disease II: Pathophysiology
Peripheral Artery Disease I: Introduction
Atherosclerosis I: Introduction
Overview of the Vascular System
Structure of Blood Vessels
Hypertension II: Pathophysiology

