Related Experiment Video
Updated: Oct 7, 2025

Using En Face Immunofluorescence Staining to Observe Vascular Endothelial Cells Directly
Published on: August 20, 2019
Dysfunctional Vascular Endothelium as a Driver of Atherosclerosis: Emerging Insights Into Pathogenesis and Treatment
Steven R Botts1,2,3, Jason E Fish1,2,4,5, Kathryn L Howe1,2,5,6
1Toronto General Hospital Research Institute, University Health Network, Toronto, ON, Canada.
Insights
Atherosclerosis, a leading cause of death, involves complex cell interactions. The activated endothelium drives plaque formation and progression, highlighting it as a key target for new therapies.
Area of Science:
- Cardiovascular Biology
- Cellular Mechanisms of Disease
- Vascular Biology
Background:
- Atherosclerosis, characterized by arterial plaque buildup, is a major global cause of mortality, increasing in low- and middle-income countries.
- Understanding the cellular mechanisms driving atherosclerosis is crucial for developing novel therapeutic targets.
- The vascular endothelium plays a critical role in atherogenesis, influencing plaque development and progression.
Purpose of the Study:
- To review emerging evidence implicating the activated endothelium in driving atherosclerosis.
- To highlight novel mechanisms of endothelial cell communication and their role in modulating vascular cell activity.
- To discuss the endothelium's contribution to resolution biology and identify future research directions.
Main Methods:
- Review of current scientific literature on endothelial cell function in atherosclerosis.
- Analysis of emerging evidence on intracellular processes regulating endothelial cells.
- Examination of intercellular communication pathways involving endothelial cells.
Main Results:
- The activated endothelium directs plaque formation site-specificity and promotes plaque development.
- Endothelial cells regulate key processes including proliferation, metabolism, permeability, and plasticity.
- Endothelial cells modulate other vascular cell populations and contribute to resolution biology, which is often dysregulated in advanced plaques.
Conclusions:
- The endothelium is a central driver of atherosclerosis, influencing plaque initiation and progression.
- Novel therapeutic strategies targeting endothelial cell function and intercellular communication hold promise for treating atherosclerosis.
- Future research should focus on epigenetic and targeted therapies to limit atherosclerosis progression.
Abstract:
Atherosclerosis, the chronic accumulation of cholesterol-rich plaque within arteries, is associated with a broad spectrum of cardiovascular diseases including myocardial infarction, aortic aneurysm, peripheral vascular disease, and stroke. Atherosclerotic cardiovascular disease remains a leading cause of mortality in high-income countries and recent years have witnessed a notable increase in prevalence within low- and middle-income regions of the world. Considering this prominent and evolving global burden, there is a need to identify the cellular mechanisms that underlie the pathogenesis of atherosclerosis to discover novel therapeutic targets for preventing or mitigating its clinical sequelae. Despite decades of research, we still do not fully understand the complex cell-cell interactions that drive atherosclerosis, but new investigative approaches are rapidly shedding light on these essential mechanisms. The vascular endothelium resides at the interface of systemic circulation and the underlying vessel wall and plays an essential role in governing pathophysiological processes during atherogenesis. In this review, we present emerging evidence that implicates the activated endothelium as a driver of atherosclerosis by directing site-specificity of plaque formation and by promoting plaque development through intracellular processes, which regulate endothelial cell proliferation and turnover, metabolism, permeability, and plasticity. Moreover, we highlight novel mechanisms of intercellular communication by which endothelial cells modulate the activity of key vascular cell populations involved in atherogenesis, and discuss how endothelial cells contribute to resolution biology - a process that is dysregulated in advanced plaques. Finally, we describe important future directions for preclinical atherosclerosis research, including epigenetic and targeted therapies, to limit the progression of atherosclerosis in at-risk or affected patients.
More Related Videos
Related Concept Videos
Atherosclerosis I: Introduction
Coronary Artery Disease II: Pathophysiology
Peripheral Artery Disease I: Introduction
Atherosclerosis III: Management
Regulation of Angiogenesis and Blood Supply
Coronary Artery Disease I: Introduction

