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Updated: Apr 28, 2026

A Method to Study the Correlation Between Local Collagen Structure and Mechanical Properties of Atherosclerotic Plaque Fibrous Tissue
Published on: November 11, 2022
Mechanisms of plaque formation and rupture
Jacob Fog Bentzon1, Fumiyuki Otsuka1, Renu Virmani1
1From the Department of Clinical Medicine (J.F.B., E.F.), Aarhus University, and Department of Cardiology (J.F.B., E.F.), Aarhus University Hospital, Aarhus, Denmark; and CVPath Institute Inc, Gaithersburg, MD (F.O., R.V.).
Insights
Atherosclerosis, a lipoprotein-driven disease, causes plaque buildup leading to coronary heart disease, ischemic stroke, and peripheral vascular disease. Understanding plaque rupture and erosion is key to preventing life-threatening thrombi.
Area of Science:
- Cardiovascular Medicine
- Pathology
- Biomedical Engineering
Background:
- Atherosclerosis is a lipoprotein-driven inflammatory disease characterized by arterial plaque formation.
- Clinical manifestations include coronary heart disease, ischemic stroke, and peripheral vascular disease, often due to luminal narrowing or thrombi.
- Plaque progression involves intimal inflammation, necrosis, fibrosis, and calcification over decades.
Purpose of the Study:
- To review the mechanisms of atherosclerotic plaque initiation and progression.
- To elucidate how plaques precipitate life-threatening thrombi.
- To define and discuss plaque burden, activity, and vulnerability.
Main Methods:
- Literature review ofPathogenesis of Atherosclerosis
- Analysis of plaque morphology and rupture/erosion mechanisms
- Discussion of plaque characterization terms (burden, activity, vulnerability)
Main Results:
- Plaque rupture, often from thin-cap fibroatheromas, exposes thrombogenic material, leading to thrombosis.
- Plaque erosion, a less understood mechanism, also causes thrombi, with coronary spasm suspected.
- Calcified nodules are a rare cause of thrombosis in specific arterial conditions.
Conclusions:
- Atherosclerotic plaques can suddenly cause life-threatening thrombosis via rupture or erosion.
- Understanding plaque morphology and vulnerability is crucial for predicting and preventing acute coronary syndromes and other thrombotic events.
- Further research is needed into the mechanisms of plaque erosion.
Abstract:
Atherosclerosis causes clinical disease through luminal narrowing or by precipitating thrombi that obstruct blood flow to the heart (coronary heart disease), brain (ischemic stroke), or lower extremities (peripheral vascular disease). The most common of these manifestations is coronary heart disease, including stable angina pectoris and the acute coronary syndromes. Atherosclerosis is a lipoprotein-driven disease that leads to plaque formation at specific sites of the arterial tree through intimal inflammation, necrosis, fibrosis, and calcification. After decades of indolent progression, such plaques may suddenly cause life-threatening coronary thrombosis presenting as an acute coronary syndrome. Most often, the culprit morphology is plaque rupture with exposure of highly thrombogenic, red cell-rich necrotic core material. The permissive structural requirement for this to occur is an extremely thin fibrous cap, and thus, ruptures occur mainly among lesions defined as thin-cap fibroatheromas. Also common are thrombi forming on lesions without rupture (plaque erosion), most often on pathological intimal thickening or fibroatheromas. However, the mechanisms involved in plaque erosion remain largely unknown, although coronary spasm is suspected. The calcified nodule has been suggested as a rare cause of coronary thrombosis in highly calcified and tortious arteries in older individuals. To characterize the severity and prognosis of plaques, several terms are used. Plaque burden denotes the extent of disease, whereas plaque activity is an ambiguous term, which may refer to one of several processes that characterize progression. Plaque vulnerability describes the short-term risk of precipitating symptomatic thrombosis. In this review, we discuss mechanisms of atherosclerotic plaque initiation and progression; how plaques suddenly precipitate life-threatening thrombi; and the concepts of plaque burden, activity, and vulnerability.
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