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Isolation of Functional Cardiac Immune Cells
Published on: December 5, 2011
Functional Roles of the Complement Immune System in Cardiac Inflammation and Hypertrophy
Kathryn D Hok1, Haydn E Rich1, Anthony Shadid1
1Center for Metabolic and Degenerative Diseases, The Brown Foundation Institute of Molecular Medicine for Prevention of Human Diseases, UTHealth-McGovern Medical School, Houston, TX 77030, USA.
Insights
Cardiac hypertrophy, a pathological response to heart damage, can be inhibited by targeting the complement system. This immune pathway plays a key role in inflammation and cardiac remodeling, offering new therapeutic targets.
Area of Science:
- Cardiovascular Research
- Immunology
- Molecular Medicine
Background:
- Cardiac inflammation and hypertrophy are pathological responses to various insults, increasing cardiovascular mortality.
- Inhibition of cardiac hypertrophy is crucial for reducing deaths from arrhythmias, heart failure, and sudden cardiac death.
- The complement system, a key immune mediator, is implicated in cardiac damage and hypertrophy development.
Purpose of the Study:
- To comprehensively review the role of the complement system's classical, lectin, and alternative pathways in cardiac inflammation and hypertrophy.
- To discuss the involvement of complement pathways in various diseases contributing to cardiac damage.
- To provide an overview of clinical trials targeting the complement system for cardiovascular mortality prevention.
Main Methods:
- Literature review of scientific articles and clinical trial data.
- Analysis of the roles of complement pathways in infectious, chronic inflammatory, genetic, and metabolic diseases.
- Examination of current treatments and emerging anti-complement therapeutics.
Main Results:
- All three complement activation pathways contribute to cardiac damage, inflammation, and hypertrophy.
- Complement dysregulation is linked to various conditions causing cardiac pathology.
- Clinical trials targeting the complement system show potential for preventing cardiovascular mortality.
Conclusions:
- The complement system is a significant driver of cardiac inflammation and hypertrophy.
- Emerging anti-complement therapeutics offer a promising strategy to inhibit the inflammatory response underlying cardiac hypertrophy.
- Targeting the complement system may represent a future therapeutic approach beyond current RAAS-focused treatments.
Abstract:
Cardiac inflammation and hypertrophy develop as a pathologic response to an array of insults, such as myocardial infarctions, chronic systemic hypertension, and valvular defects. Due to the high prevalence of such conditions, there is an increasing need to prevent and halt cardiac hypertrophy. Because cardiac damage and subsequent remodeling can lead to arrhythmias, heart failure, and even sudden cardiac death, inhibition of cardiac hypertrophy is key to reducing cardiovascular-related mortality. The immune system is the driving force behind inflammatory reactions. All three pathways of complement system activation-classical, lectin, and alternative-are implicated in developing cardiac damage, inflammation, and hypertrophy due to infectious and non-infectious causes, autoimmune diseases, genetic polymorphisms, and forms of complement dysregulation. Of interest in this review is the role of the complement system, a collection of soluble and membrane-bound proteins that mediate inflammatory processes through interactions with signaling molecules and immune cells. This review comprehensively discusses the roles of these complement pathways in contagious, chronic inflammatory, genetic, and metabolic diseases. An overview of the completed and terminated clinical trials aimed at preventing cardiovascular mortality by targeting various aspects of the complement system and inflammatory reaction is included. Most current treatments for cardiac inflammation and remodeling primarily target the renin-angiotensin-aldosterone system (RAAS), which prevents further remodeling by reducing myocardial workload. However, moving forward, there may be a place for emerging anti-complement therapeutics, which impair the inflammatory response that generates hypertrophy itself.
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