Complement activation: an emerging player in the pathogenesis of cardiovascular disease
1Division of Epidemiology, Leeds Institute of Genetics, Health and Therapeutics, Faculty of Medicine and Health and the Multidisciplinary Cardiovascular Research Centre, University of Leeds, Clarendon Way, Leeds LS2 9JT, UK.
Insights
Inflammation drives cardiovascular disease (CVD) pathogenesis. The complement system, particularly C5a and C5b-9, exacerbates atherosclerosis, plaque rupture, and thrombosis, contributing to poor cardiovascular outcomes.
Area of Science:
- Cardiovascular Science
- Immunology
- Pathophysiology
Background:
- Inflammation is a key driver in cardiovascular disease (CVD) development, influencing atherosclerosis, plaque rupture, and thrombosis.
- The complement system, a crucial part of innate immunity, has emerging roles in CVD pathogenesis.
- Pleiotropic effects of complement activation impact endothelial and hematopoietic cells, and hemostasis.
Purpose of the Study:
- To elucidate the functional role of complement activation in cardiovascular disease.
- To investigate how complement components like C5a and C5b-9 influence atherosclerotic processes.
- To examine the impact of complement on thrombosis in the context of CVD.
Main Methods:
- Review of prospective, case-control, in vitro, and animal model studies.
- Analysis of relationships between complement components and cardiovascular outcomes.
- Examination of complement activation pathways (e.g., mannose-binding lectin) and their effects.
Main Results:
- Strong associations found between complement components and adverse cardiovascular outcomes.
- Complement activation (C5a, C5b-9) promotes endothelial activation, leukocyte infiltration, and cytokine release.
- Complement system influences thrombosis via platelet activation, fibrin formation, and impaired fibrinolysis.
Conclusions:
- The complement system plays a significant role in the pathogenesis of atherosclerosis, plaque rupture, and thrombosis.
- While protective in vessel injury, complement activation contributes to CVD development.
- Targeting complement pathways may offer therapeutic strategies for cardiovascular disease.
Abstract:
A wealth of evidence indicates a fundamental role for inflammation in the pathogenesis of cardiovascular disease (CVD), contributing to the development and progression of atherosclerotic lesion formation, plaque rupture, and thrombosis. An increasing body of evidence supports a functional role for complement activation in the pathogenesis of CVD through pleiotropic effects on endothelial and haematopoietic cell function and haemostasis. Prospective and case control studies have reported strong relationships between several complement components and cardiovascular outcomes, and in vitro studies and animal models support a functional effect. Complement activation, in particular, generation of C5a and C5b-9, influences many processes involved in the development and progression of atherosclerosis, including promotion of endothelial cell activation, leukocyte infiltration into the extracellular matrix, stimulation of cytokine release from vascular smooth muscle cells, and promotion of plaque rupture. Complement activation also influences thrombosis, involving components of the mannose-binding lectin pathway, and C5b-9 in particular, through activation of platelets, promotion of fibrin formation, and impairment of fibrinolysis. The participation of the complement system in inflammation and thrombosis is consistent with the physiological role of the complement system as a rapid effector system conferring protection following vessel injury. However, in the context of CVD, these same processes contribute to development of atherosclerosis, plaque rupture, and thrombosis.
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