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Alternative pathway dysregulation in tissues drives sustained complement activation and predicts outcome across the
Matthew K Siggins1, Kate Davies2, Rosie Fellows3
1National Heart & Lung Institute, Imperial College London, London, UK.
Insights
Complement system activation drives severe COVID-19 pathology. Early alternative pathway amplification predicts disease severity and death, suggesting complement blockade as a therapeutic strategy.
Area of Science:
- Immunology
- Pathophysiology
- Infectious Disease
Background:
- The complement system, crucial for pathogen defense, is implicated in COVID-19 severity.
- Complement activation products are found in COVID-19 patients, prompting interest in complement blockade therapies.
Purpose of the Study:
- To comprehensively study complement biomarkers in COVID-19 patients.
- To delineate the role of complement in COVID-19 immunopathogenesis and disease progression.
Main Methods:
- Profiling 16 complement biomarkers in 966 plasma samples from hospitalized COVID-19 patients.
- Utilizing unsupervised clustering and machine learning to correlate biomarkers with disease severity.
- Analyzing complement component, regulator, and activation product levels over the hospitalization period.
Main Results:
- Significant alterations in complement proteins and activation products (Ba, iC3b, TCC) were observed in COVID-19 patients compared to controls.
- Elevated alternative pathway activation markers (Ba, iC3b) and reduced properdin correlated with increased disease severity and mortality risk.
- Early increase in Ba trajectory strongly predicted peak COVID-19 severity and death, indicating consumption in severe cases.
Conclusions:
- Uncontrolled early complement activation, particularly via the alternative pathway, is a hallmark of COVID-19 immunopathogenesis.
- This sustained amplification is exacerbated in severe disease, highlighting its pathogenic role.
- Findings support complement-targeted therapies for COVID-19 management.
Abstract:
Complement, a critical defence against pathogens, has been implicated as a driver of pathology in COVID-19. Complement activation products are detected in plasma and tissues and complement blockade is considered for therapy. To delineate roles of complement in immunopathogenesis, we undertook the largest comprehensive study of complement in COVID-19 to date, comprehensive profiling of 16 complement biomarkers, including key components, regulators and activation products, in 966 plasma samples from 682 hospitalized COVID-19 patients collected across the hospitalization period as part of the UK ISARIC4C (International Acute Respiratory and Emerging Infection Consortium) study. Unsupervised clustering of complement biomarkers mapped to disease severity and supervised machine learning identified marker sets in early samples that predicted peak severity. Compared to healthy controls, complement proteins and activation products (Ba, iC3b, terminal complement complex) were significantly altered in COVID-19 admission samples in all severity groups. Elevated alternative pathway activation markers (Ba and iC3b) and decreased alternative pathway regulator (properdin) in admission samples were associated with more severe disease and risk of death. Levels of most complement biomarkers were reduced in severe disease, consistent with consumption and tissue deposition. Latent class mixed modelling and cumulative incidence analysis identified the trajectory of increase of Ba to be a strong predictor of peak COVID-19 disease severity and death. The data demonstrate that early-onset, uncontrolled activation of complement, driven by sustained and progressive amplification through the alternative pathway amplification loop is a ubiquitous feature of COVID-19, further exacerbated in severe disease. These findings provide novel insights into COVID-19 immunopathogenesis and inform strategies for therapeutic intervention.
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