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Intravascular Ultrasound Image-Based Finite Element Modeling Approach for Quantifying In Vivo Mechanical Properties of Human Coronary Artery
Published on: December 6, 2024
New Insights into the Pathophysiology of Coronary Artery Aneurysms
Iris Bararu-Bojan1, Oana-Viola Badulescu1, Minerva Codruta Badescu2
1Department of Pathophysiology, University of Medicine and Pharmacy Grigore T. Popa, 700115 Iasi, Romania.
Insights
Giant coronary artery aneurysms are rare, with unclear definitions and causes like atherosclerosis or Kawasaki disease. Understanding molecular pathways is key to developing targeted therapies for these serious vascular conditions.
Area of Science:
- Cardiovascular Medicine
- Vascular Biology
- Pathophysiology
Background:
- Coronary aneurysms are arterial dilatations >1.5x adjacent segments; giant forms are rare with undefined criteria.
- Etiologies vary, including atherosclerosis in adults and Kawasaki disease/Takayasu arteritis in children.
- Complications include thrombosis, embolization, rupture, leading to ischemia, heart failure, and arrhythmias.
Purpose of the Study:
- To review current knowledge on coronary artery aneurysms, focusing on definition, pathophysiology, causes, complications, and management.
- To consolidate information on the molecular mechanisms underlying aneurysm formation and progression.
- To highlight the need for further research into optimal treatment strategies.
Main Methods:
- Literature review consolidating existing research on coronary artery aneurysms.
- Analysis of proposed etiologies and risk factors.
- Exploration of molecular pathways and biomarkers involved in aneurysm development.
Main Results:
- Atherosclerosis is the leading cause in adults (up to 50%); Kawasaki disease and Takayasu arteritis in pediatric populations.
- Matrix metalloproteinases (MMPs), inflammatory cytokines (TNF-α, IL-1β, IL-6), and growth factors (VEGF) are implicated in vascular wall degradation.
- Management strategies remain debated, necessitating further investigation.
Conclusions:
- Understanding the molecular basis of coronary artery aneurysms is crucial for targeted therapy development.
- Further research is needed to define giant coronary artery aneurysms and establish optimal treatment guidelines.
- Targeting molecular pathways like MMPs and inflammatory cytokines may offer future therapeutic avenues.
Abstract:
Coronary aneurysms are typically defined as sections of a coronary artery where the diameter is more than 1.5 times that of an adjacent normal segment. In rare circumstances, these aneurysms can become exceedingly large, leading to the classification of giant coronary artery aneurysms. Despite their occurrence, there is no clear consensus on the precise definition of giant coronary artery aneurysms, and their etiology remains somewhat ambiguous. Numerous potential causes have been suggested, with atherosclerosis being the most prevalent in adults, accounting for up to 50% of cases. In pediatric populations, Kawasaki disease and Takayasu arteritis are the primary causes. Although often discovered incidentally, coronary artery aneurysms can lead to severe complications. These complications include local thrombosis, distal embolization, rupture, and vasospasm, which can result in ischemia, heart failure, and arrhythmias. The optimal approach to medical, interventional, or surgical management of these aneurysms is still under debate and requires further clarification. This literature review aims to consolidate current knowledge regarding coronary artery aneurysms' pathophysiology, emphasizing their definition, causes, complications, and treatment strategies. Recent research has begun to explore the molecular mechanisms involved in the formation and progression of coronary artery aneurysms. Various molecules, such as matrix metalloproteinases (MMPs), inflammatory cytokines, and growth factors, play crucial roles in the degradation of the extracellular matrix and the remodeling of vascular walls. Elevated levels of MMPs, particularly MMP-9, have been associated with the weakening of the arterial wall, contributing to aneurysm development. Inflammatory cytokines such as tumor necrosis factor-alpha (TNF-α) and interleukins (IL-1β and IL-6) have been implicated in promoting inflammatory responses that further degrade vascular integrity. Additionally, growth factors such as vascular endothelial growth factor (VEGF) may influence angiogenesis and vascular remodeling processes. Understanding these molecular pathways is essential for developing targeted therapies aimed at preventing the progression of coronary artery aneurysms and improving patient outcomes.
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