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Published on: January 13, 2012
Intraplaque hemorrhage and progression of coronary atheroma
Frank D Kolodgie1, Herman K Gold, Allen P Burke
1Department of Cardiovascular Pathology, Armed Forces Institute of Pathology, Washington, DC 20306-6000, USA.
Insights
Intraplaque hemorrhage, indicated by erythrocyte membranes, promotes cholesterol buildup and necrotic core expansion in atherosclerotic plaques. This process may increase the risk of plaque rupture and coronary events.
Area of Science:
- Cardiovascular Pathology
- Atherosclerosis Research
- Cellular Biology
Background:
- Intraplaque hemorrhage is a frequent characteristic of advanced coronary atherosclerotic lesions.
- Erythrocyte membrane accumulation, particularly free cholesterol, is implicated in plaque vulnerability and disruption.
Purpose of the Study:
- To investigate the presence and impact of intraplaque hemorrhage in coronary atherosclerotic lesions.
- To elucidate the role of erythrocyte-derived components in plaque progression and destabilization.
Main Methods:
- Coronary lesions from human patients were stained for glycophorin A (erythrocyte marker) and iron (hemosiderin).
- Lesions were classified based on morphology, including pathologic intimal thickening and fibrous-cap atheromas.
- An experimental rabbit atherosclerosis model was used to study the arterial response to induced intramural hemorrhage.
Main Results:
- Significant accumulation of glycophorin A and iron was observed in advanced necrotic cores and thin-cap atheromas (vulnerable plaques).
- Increased erythrocyte markers correlated with larger necrotic cores, greater macrophage infiltration, and cholesterol clefts.
- Hemorrhagic rabbit lesions exhibited cholesterol crystals, erythrocyte fragments, foam cells, and iron deposits, unlike control lesions.
Conclusions:
- Accumulation of erythrocyte membranes within atherosclerotic plaques acts as a potent atherogenic stimulus.
- This process contributes to free cholesterol deposition, macrophage infiltration, and necrotic core enlargement, potentially increasing plaque destabilization risk.
Background:
Intraplaque hemorrhage is common in advanced coronary atherosclerotic lesions. The relation between hemorrhage and the vulnerability of plaque to disruption may involve the accumulation of free cholesterol from erythrocyte membranes.
Methods:
We stained multiple coronary lesions from 24 randomly selected patients who had died suddenly of coronary causes with an antibody against glycophorin A (a protein specific to erythrocytes that facilitates anion exchange) and Mallory's stain for iron (hemosiderin), markers of previous intraplaque hemorrhage. Coronary lesions were classified as lesions with pathologic intimal thickening, fibrous-cap atheromas with cores in an early or late stage of necrosis, or thin-cap fibrous atheromas (vulnerable plaques). The arterial response to plaque hemorrhage was further defined in a rabbit model of atherosclerosis.
Results:
Only traces of glycophorin A and iron were found in lesions with pathologic intimal thickening or fibrous-cap atheromas with cores in an early stage of necrosis. In contrast, fibroatheromas with cores in a late stage of necrosis or thin caps had a marked increase in glycophorin A in regions of cholesterol clefts surrounded by iron deposits. Larger amounts of both glycophorin A and iron were associated with larger necrotic cores and greater macrophage infiltration. Rabbit lesions with induced intramural hemorrhage consistently showed cholesterol crystals with erythrocyte fragments, foam cells, and iron deposits. In contrast, control lesions from the same animals had a marked reduction in macrophages and lipid content.
Conclusions:
By contributing to the deposition of free cholesterol, macrophage infiltration, and enlargement of the necrotic core, the accumulation of erythrocyte membranes within an atherosclerotic plaque may represent a potent atherogenic stimulus. These factors may increase the risk of plaque destabilization.
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