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Atherosclerosis, platelets and thrombosis in acute ischaemic heart disease
Lina Badimon1, Teresa Padró, Gemma Vilahur
1Cardiovascular Research Center, CSIC-ICCC, HSCSP, Barcelona, Spain ; CIBER OBN -Instituto Salud Carlos III, Madrid, Spain ; Cardiovascular Research Chair, UAB, Barcelona, Spain.
Insights
Atherosclerosis, a major cause of heart disease and stroke, involves lipid buildup and inflammation in arteries. Platelets play a key role in this process, influencing plaque development, rupture, and thrombosis.
Area of Science:
- Cardiovascular Biology
- Inflammation Research
- Hematology
Background:
- Atherosclerosis underlies coronary artery disease, peripheral arterial disease, and stroke.
- It's a systemic inflammatory process involving lipid and immune cell accumulation in artery walls.
- Lesions can progress from fatty streaks to vulnerable plaques, leading to ischemic events.
Purpose of the Study:
- To review the pathophysiological mechanisms of atherogenesis.
- To highlight the role of platelets in atherosclerosis progression and thrombosis.
- To discuss the clinical implications of these processes.
Main Methods:
- Review of current understanding of atherogenesis.
- Discussion of platelet molecular machinery in atherothrombosis.
- Analysis of clinical relevance.
Main Results:
- Atherosclerosis progresses from initial fatty streaks to complex atheromas.
- Platelets are crucial in initiating atherothrombosis upon plaque rupture.
- Platelets also transport regulatory molecules and drive inflammation.
Conclusions:
- Understanding platelet function is key to managing atherosclerosis and its complications.
- Targeting platelet activity may offer therapeutic strategies.
- Platelet-mediated inflammation and thrombosis are central to atherogenesis.
Abstract:
Atherosclerosis is the underlying reason for nearly all causes of coronary artery disease and peripheral arterial disease and many cases of stroke. Atherosclerosis is a systemic inflammatory process characterised by the accumulation of lipids and macrophages/lymphocytes within the intima of large arteries. The deposition of these blood borne materials and the subsequent thickening of the wall often significantly compromise the residual lumen leading to ischaemic events distal to the arterial stenosis. However, these initial fatty streak lesions may also evolve into vulnerable plaques susceptible to rupture or erosion. Plaque disruption initiates both platelet adhesion and aggregation on the exposed vascular surface and the activation of the clotting cascade leading to the so-called atherothrombotic process. Yet, platelets have also been shown to be transporters of regulatory molecules (micro-RNA), to drive the inflammatory response and mediate atherosclerosis progression. Here we discuss our current understanding of the pathophysiological mechanisms involved in atherogenesis - from fatty streaks to complex and vulnerable atheromas - and highlight the molecular machinery used by platelets to regulate the atherogenic process, thrombosis and its clinical implications.
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